Estudios recientes en el océano Pacífico mexicano

Autores/as

Alfredo Pérez Morales (ed.)
Universidad de Colima
https://orcid.org/0000-0002-2784-9480
María del Carmen Álvarez García (ed.)

Palabras clave:

Océano Pacífico, organismos marinos, México

Sinopsis

El presente libro es una obra académica y de divulgación científica que presenta resultados de proyectos de investigación y de análisis de información actual, concerniente a estudios en el océano Pacífico mexicano como una plataforma para la formación científica y académica de estudiantes de licenciatura y posgrado. En esta obra participan diversas universidades, institutos y centros de Investigación de todo el país que han enfocado sus esfuerzos en aportar conocimiento a esta región del mundo.

Descargas

Los datos de descarga aún no están disponibles.

Biografía del autor/a

Alfredo Pérez Morales, Universidad de Colima

Doctor en ciencias marinas. Líneas de investigación: fitoplancton tóxico, toxinología, ecotoxicología y acuacultura.

María del Carmen Álvarez García

Doctora. Línea de investigación: paleoceanografía.

Referencias

1. Aubin, J. E. (1979). Autofluorescence of viable cultured mammalian cells. Journal Histochemistry and Cytochemistry, 27, 36-43. https://doi.org/10.1177/27.1.220325

2. Benson, R. C., Meyer, R. A., Zaruba, M. E. & McKhann, G. M. (1979). Cellular autofluorescence-is it due to flavins? Journal Histochemistry and Cytochemistry, 27, 44-48. https://doi.org/10.1177/27.1.438504

3. Carpenter, E. J., Chang, J. & Shapiro, L. P. (1991). Green and blue fluorescing dinoflagellates in Bahamian waters. Marine Biology, 108, 145-149. https://doi.org/10.1007/BF01313482

4. Coats, D. W. & Bockstahler, K. R. (1994) Occurrence of the parasitic dinoflagellate Amoebophrya ceratii in the Chesapeake Bay populati ons of Gymnodinium sanguineum. Journal of Eukaryotic Microbiology, 41, 586-593. https://doi.org/10.1111/j.1550-7408.1994.tb01520.x

5. Coats, D. W. & Park, M. G. (2002) Parasitism of photosynthetic dinoflagellates by three strains of Amoebophrya (Dinophyta): parasite survival, infectivity, generation time, and host specificity. Journal of Phycology, 38, 520-528. https://doi.org/10.1046/j.1529-8817.2002.01200.x

6. Foster, R. A., Kuypers, M. M. M., Vagner, T., Paerl, R. W., Musat, N. & Zehr J. P. (2011). Nitrogen fixation and transfer in open ocean diatom-cyanobacterial symbioses. ISME Journal, 5, 1484-1493. https://doi.org/10.1038/ismej.2011.26

7. González-Gil, S., Velo-Suárez, L., Gentien, P., Ramilo, I. & Reguera, B. (2010). Phytoplankton assemblages and characterization of a Dinophysis acuminata population during an upwelling-downwelling cycle. Aquatic Microbiology and Ecology, 58, 273-286. https://doi.org/10.3354/ame01372

8. Gordon, N., Angel, D. L., Neori, A., Kress, N. & Kimor, B. (1994) Heterotrophic dinoflagellates with symbiotic cyanobacteria and nitrogen limitation in the Gulf of Aqaba. Marine Ecology Progress Series, 107, 83-88. https://doi.org/10.3354/meps107083

9. Granéli, E., Carlsson, P. & Legrand, C. (1999). The role of C, N and P in dissolved and particulate organic matter as a nutrient source for phytoplankton growth, including toxic species. Aquatic Ecology, 33, 17-27. https://doi.org/10.1023/A:1009925515059

10. Hakspiel-Segura, C. (2014). Rutas y procesos fisiológicos del ciclo del nitrógeno en Cuenca Alfonso, Golfo de California. (Tesis Doctoral). Centro Interdisciplinario de Ciencias Marinas, Baja California Sur, México.

11. Hallegraeff, G. M. & Lucas, I. A. N. (1988). The marine dinoflagellate genus Dinophysis (Dinophyceae): photosynthetic, neritic and non-photosynthetic, oceanic species. Phycologia, 27, 25-42. https://doi.org/10.2216/i0031-8884-27-1-25.1

12. Hernández-Becerril, D. U., Ceballos-Corona, J.G.A., Esqueda-Lara, K., Tovar-Salazar, M. A. & León-Álvarez, D. (2008). Marine planktonic dinoflagellates of the order Dinophysiales (Dinophyta) from coasts of the tropical Mexican Pacific, including two new species of the genus Amphisolenia. https://doi.org/10.1017/S0025315408000143

13. Journal of the Marine Biological Association of the United Kingdom, 8, 1-15. https://doi.org/10.1017/S0025315408000143

14. Higuera P. J. & Ortiz, J. R. (2007). Comportamiento del fitoplancton durante el evento ENOS en el océano Pacífico colombiano. En: Colombia ingeniería de recursos naturales y del ambiente. pp. 5-15. Colombia: Universidad del Valle.

15. Kim, S., Park, M, Yih, W. & Coats, W. D. (2004). Infection of the bloom-forming thecate dinoflagellates Alexandrium affine and Gonyaulax spinifera by two strains of Amoebophrya (Dinophyta). Journal of Phycology, 40, 815-822. https://doi.org/10.1111/j.1529-8817.2004.04002.x

16. Knox, R. B. & Singh, M. B. (1985). Immunofluorescence applications in plant cells. En: Robards, A. W. (ed.) Botanical microscopy. pp. 205-232, E.U.A. Oxford University Press, Oxford.

17. Licea Durán, S., Moreno, J. L., Santoyo, H. & Figueroa, G. (1995). Dinoflagelados del Golfo de California. Universidad Autónoma de Baja California, SEPFO- MEX. México.

18. Lu, Y. (2016). Control of toxigenic dinoflagellates through parasitism: Implications for host-parasite coevolution. (Ph.D dissertation). University of Bremen, Germany.

19. Martínez-Pérez, C., Mohr, W., Löscher, C. R., Dekaezemacker, J., Littmann, S., Yilmaz, P., Lehnen, N., Fuchs, B. M., Lavik, G., Schmitz, R. A., LaRoche, J. & Kuypers, M. M. M. (2016). The small unicellular diazotrophic symbiont, UCYN-A, is a key player in the marine nitrogen cycle. Nature Microbiology. https://doi.org/10.1038/nmicrobiol.2016.163

20. Masquelier, S. & Vaulot, D. (2008). Distribution of micro-organisms along a transect in the South-East Pacific Ocean (BIOSOPE cruise) from epifluorescence microscopy. Biogeosciences 5, 311-321.https://doi.org/10.5194/bg-5-311-2008

21. Okolodkov, Y. B. (1999). Differentiation of phototrophic and heterotrophic dinoflagellates (Dinophyceae) by epifluorescence microscopy in the northern Greenland Sea. Botanical Journal, Russian Academic of Sciences, 84, 53-61.

22. Salomon, P. S., S. Janson & Granéli, E. (2003). Multiple species of the dinophagous dinoflagellate genus Amoebophrya infect the same host species. Environmental Microbiology, 5, 1046−1052. https://doi.org/10.1046/j.1462-2920.2003.00511.x

23. Tang Y. Z. & Dobbs, F. C. (2007). Green autofluorescence in dinoflagellates, diatoms, and other microalgae and its implications for vital staining and morphological studies, Applied and Environmental Microbiology, 73, 2306-2313. https://doi.org/10.1128/AEM.01741-06

24. Verdugo-Díaz, G., Martínez-López, A., Gaxiola-Castro, G y Valdez-Holguín, J. E. (2012). Parámetros fotosintéticos del fitoplancton en la región sur del Golfo de California. Revista de Biología Marina y Oceanografía, 47, 527- 535. https://doi.org/10.4067/S0718-19572012000300014

25. Almeida, E., Diamantino, T. C., & De Sousa, O. (2007). Marine paints: the particular case of antifouling paints. Progress In Organic Coatings, 59, 2-20. https://doi.org/10.1016/j.porgcoat.2007.01.017

26. Bakker, D. P., Postmus, B. R., Busscher, H. J. & Van der Mei, H. C. (2004). Bacteria strains isolated from different niches can exhibit different patterns of adhesion to substrata. Applied and Environmental Microbiology, 70, 3758- 3760. https://doi.org/10.1128/AEM.70.6.3758-3760.2004

27. Beech, I. B. & Sunner, J. B. (2004). Biocorrosion: towards understanding interactions between biofilms and metals. Current Opinion in Biotechnology, 15, 181-186. https://doi.org/10.1016/j.copbio.2004.05.001

28. Bhosale, S. H., Nagle, V. L. & Jagtap, T. G. (2002). Antifouling potential of some marine organisms from India against species of Bacillus and Pseudomonas. Marine Biotechnology, 4, 111-118. https://doi.org/10.1007/s10126-001-0087-1

29. Bressy, C. & Lejars, M. (2014). Marine fouling: an overview. The Journal of Ocean Technology, 9, 19-28.

30. Buchan, L. A. J. (1999). Estimating the probability of long-distance overland dispersal of invading aquatic species. Ecological Applications, 9, 254-265. https://doi.org/10.1890/1051-0761(1999)009[0254:ETPOLD]2.0.CO;2

31. Carman, M. L., Estes, T. G., Feinberg, A. W., Schumacher, J. F., Wilkerson, W., Wilson, L. H., Callow, M. E., Callow, J. A. & Brennan, A. B. (2006). Engineered antifouling microtopographies correlating wettability with cell attachment. Biofouling, 22, 11-20. https://doi.org/10.1080/08927010500484854

32. Chamber, L. D., Stokes, F. C., Walsh, F. C. & Wood, R. J. K. (2006). Modern approaches to marine antifouling coatings. Surface and Coatings Technology, 201, 3642-3652. https://doi.org/10.1016/j.surfcoat.2006.08.129

33. Clare, A. S. (1996). Marine Natural product antifoulants: status and potential. Biofouling, 9, 211-229. https://doi.org/10.1080/08927019609378304

34. Connell, J. H. & Slatyer, R. O. (1977). Mechanisms of succession in natural communities and their role in community stability and organization. The americans naturalist, 982, 1119-1144. https://doi.org/10.1086/283241

35. Dang, H. & Lovell, C. R. (2000). Bacterial primary colonization and darle succession on surface in marine waters as determines bu amplificador rRNA gene restriction análisis and secuencia análisis of 16S ribosomal rRNA genes. Applied and Environmental Microbiology, 66, 467-475. https://doi.org/10.1128/AEM.66.2.467-475.2000

36. Dobretsov, S., Abed, R. M., & Teplitski, M. (2013). Inhibition of biofouling by marine microorganisms. Biofouling, 29, 423-441. https://doi.org/10.1080/08927014.2013.776042

37. Drovesot, S. & Thomanson, J. C. (2011). The devolpment of marine biofilms On two comercial non-biocidal coating: a comparasion berreen silicona an flouropolymer technologies. Biofouling, 27, 869-880. https://doi.org/10.1080/08927014.2011.607233

38. Evans, L. V. (1988). Marine biofouling. Algae and human affairs, 433-453.

39. Gonzalez, J., & Moran, M. (1997). Numerical dominance of a group of marine bacteria in the alpha-subclass of the class Proteobacteria in coastal seawater. Applied and Environmental Microbiology, 63, 4237-4242. https://doi.org/10.1128/aem.63.11.4237-4242.1997

40. Holmstrom, C. & Kjelleberg, S. (1994). The effect of external biological factors on settlement of marine invertebrates and new antifouling technologies. Biofouling, 8, 147-160.

https://doi.org/10.1080/08927019409378269

41. Ista, L. K., Callow, M. E., Finlay, J. A., Coleman, S. A., Nolasco, A. C., Simons, R. H., Callow, J. A. & Lopez, G. P. (2004). Effects of sub- stratum surface chemistry and surface energy on attachment of marine bacterial and algal spores. Applied and Environmental Microbiology, 70, 4151-4157. https://doi.org/10.1128/AEM.70.7.4151-4157.2004

42. Lambert, G. (2005). Invasive sea squirt: a growing global problem. Journal of Experimental Marine Biology and Ecology, 342, 3-4.

https://doi.org/10.1016/j.jembe.2006.10.009

43. Macheral, J. P. & Hellio, C. (2009). Challengens for the development of new non-toxic antifouling solutions. International Journal of Molecular Sciences, 4623-2637. https://doi.org/10.3390/ijms10114623

44. Marvasi, M., Visscher, P. T. & Casillas, L. (2010). Exopolymeric substances (EPS) from Bacillus subtilis: polymers and genes encoding their synthesis. FEMS Microbiology, 313, 1-10. https://doi.org/10.1111/j.1574-6968.2010.02085.x

45. Molino, P. J., Childs, S., Hubbard, M. R. E., Carey, J. M., Burgman, M. A. & Wetherbee, R. (2009). Development of the primary bacterial microfouling layer on antifouling and foul release coatings in temperate and tropical environments in Eastern Australia. Biofouling, 25, 149-162. https://doi.org/10.1080/08927010802592917

46. Morita, N., Takagi, M. & Murao, S. (1979). A new gel-forming polysaccharide produced by Bacillus subtilis FT-3 its structure and its physical and chemical characteristics. Bulletin of the University of Osaka Prefecture, Serie B. 31: 27-41.

47. Murosaki, T., Ahmed. N. & Gong, J.P. (2011). Antifouling properties of hydrogels. Science and Technology of Advanced Materials, 12, 1-7. https://doi.org/10.1088/1468-6996/12/6/064706

48. Muthukrishnan, T., Abed, R. M. M., Dobretsov, S., Kidd, B. & Finnie, A. A. (2014).

49. Long-term microfouling on commercial biocidal fouling control coatings. Biofouling, 30, 1155-1164. https://doi.org/10.1080/08927014.2014.972951

50. Qian, P., Lau, S. C., Dahms, H. U., & Dobretsov, S. (2007). Marine Biofilms as Mediators of Colonization by Marine Macroorganisms: Implications for Antifouling and Aquaculture. Marine Biotechnology, 399-410. https://doi.org/10.1007/s10126-007-9001-9

51. Schetelma, R. S. (1974). Biological interaction determining larval settlemen of marine invertebrates. Thalassia Jugosl, 10, 263-293.

52. Schultz, M. (2007). Effects of coating roughness and biofouling on ship resistance and powering. Biofouling, 23, 331-341.

https://doi.org/10.1080/08927010701461974

53. Sutherland, I. (2001). Biofilm exopolysaccharides: a strong and sticky framework. Microbiology. 147, 3-9. https://doi.org/10.1099/00221287-147-1-3

54. Terlizzi, A., Conte, E., Zupo, V. & Mazzela, L. (2000). Biological sucession on silicone fouling-release surfaces: long-term exposure test in the harbour of Ischia, Italy. Biofouling, 15(4), 327-342. https://doi.org/10.1080/08927010009386322

55. Thorson, G. (1964). Light as an ecological factor in the dispersal and settlement of larvae of marine bottom invertebrates. Ophelia, 1, 167-208. https://doi.org/10.1080/00785326.1964.10416277

56. Tovar-Hernandez, M. A., Villalobos-Guerrero, T. F., Yáñez-Rivera, B., Aguilar-Camacho J. M., y Ramírez-Santana I. D. (2012). Guía de invertebrados acuáticos exóticos en Sinaloa. Geomare, A. C., USFWS, INE-SEMARNAT. Mazatlán, Sinaloa, México.

57. Turon, X., Nishikawa, T. & Rius, M. (2007). Spread of Microcosmus squamiger (Ascidacea: Pyuridae) in the Mediterranean Sea and adjacent waters. Journal of Experimental Marine Biology and Ecology, 342, 185-188. https://doi.org/10.1016/j.jembe.2006.10.040

58. Van Mooy, B. A. S., Hmelo, L. R., Fredricks, H. F., Ossolinski, J. E., Ped-ler. B. R., Bogorff, D. J. B., & Smith, P. J. S. (2014). Quantitative exploration of the contribution of settlement, growth, dispersal and grazing to the accumulation of natural marine biofilms on antifouling and fouling-release coatings. Biofouling, 30, 223-236. https://doi.org/10.1080/08927014.2013.861422

59. Aceves-Medina, G., De Silva-Dávila, R., Cruz-Estudillo, I., Durazo, R. & Avendaño-Ibarra, R. (2017). Influence of the oceanographic dynamic in size distribution of cephalopod paralarvae in the southern Mexican Pacific Ocean (rainy seasons 2007 and 2008). Latin American Journal of Aquatic Research, 45(2), 356-369. https://doi.org/10.3856/vol45-issue2-fulltext-11

60. Alvariño, A. (1980). The relationship between the distribution of zooplankton predators and anchovy larvae. California Cooperative Oceanic Fisheries Investigations Reports, 21, 150-160.

61. Avendaño-Ibarra, R., De Silva-Dávila, R., Aceves-Medina, G., Urías-Leyva, H & Vázquez-López, G. (2009). Distributional atlas of fish larvae of the southern region of the Gulf of California (Febrary-March 2005). Oceánides. Atlas CICIMAR No. 16. La Paz, B.C.S., México: CICIMAR-IPN.

62. Beers, J. R. (1976). Determination of zooplankton biomass, En: Steedman, H. F. ed. Zooplankton Fixation and Preservation. Monographs on Oceanographic Methodology. pp. 35-38. The UNESCO Press.

63. Birk, M. A., Paight, C. & Seibel, B. A. (2016). Observations of multiple pelagic egg masses from small-sized jumbo squid (Dosidicus gigas) in the Gulf of California. Journal of natural History, 1-16. https://doi.org/10.1080/00222933.2016.1209248

64. Brewer, G. D., Kleppel, & M. Dempsey. (1984). Apparent predation on ichtioplankton by zooplankton and fishes in nearshore waters of Southern California. Marine Biology, 80,17-28. https://doi.org/10.1007/BF00393122

65. Camarillo-Coop, S., Salinas-Zavala, C., Lavaniegos, B. & Markaida, U. (2013). Food in early life stages of Dosidicus gigas (Cephalopoda: Ommastrephidae) from the Gulf of California, Mexico. Journal of the Marine Biological Association of the United Kingdom, 1-8. https://doi.org/10.1017/S0025315413000398

66. Cardoso, F., Baltazar, P. & Bautista J. (2005). The early development of the Patagonian squid Loligo gahi D'Orbigny (1835) in Peruvian Waters (Cephalopoda: Loliginidae) Revista Peruana de Biologia,12(3), 369-376. https://doi.org/10.15381/rpb.v12i3.2412

67. Dagg, M., Cowles, T., Whitledge, T., Smith, S., Howe, S. & Judkins, D. (1980). Grazing and excretion by zooplankton in the Peru upwelling system during April 1977. Deep-Sea Research, 27, 43-59. https://doi.org/10.1016/0198-0149(80)90071-0

68. De Silva-Dávila, R. (2013). Paralarvas de cefalópodos en el Golfo de California, México. (Tesis Doctoral). Universidad de Guadalajara, Centro Universitario de la Costa Sur, México.

69. De Silva-Dávila, R., Franco-Gordo, C., Hochberg, F. G., Godínez-Domínguez, E., Avendaño-Ibarra, R., Gómez-Gutiérrez, J. & Robinson, C. J. (2015). Cephalopod paralarval assemblages in the Gulf of California during 2004-2007. Marine Ecology Progress Series, 520, 123-141. https://doi.org/10.3354/meps11074

70. ERDDAP. (2016). Environmental Research Division's Data Access Program. Retrieved from http://coastwatch.pfeg.noaa.gov/erddap/index.html

71. Friedemann, K., Argüelles, J., Mariátegui, L., Tafur, R., Wolff, M. & Yamashiro, C. (2008). A hypothesis on range expansion and spatio-temporal shifts in size at maturity of jumbo squid (Dosidicus gigas) in the Eastern Tropical Pacific Ocean. California Cooperative Oceanic Fisheries Investigations Report, 49, 119-128.

72. Hoshiai, T. & Tanimura A. (1981). Copepods in the stomach of a Nototheniid fish, Trematomus borchgrevinki fry at Syowa Station, Antarctica National Institute Polar Research Series. Experimental Biology and Medicine Science, 34, 44-48.

73. Jereb, P. & Roper, C. F. E. (2010). Cephalopods of the world. An annotated and illustrated catalogue of species known to date. Volume 2. Myopsid and oegopsid squids. Rome: FAO.

74. Kang, Y. S., Kim, J. Y., Kim, H. G. & Park, J. H. (2002). Long-term changes in zooplankton and its relationship with squid Todarodes pacificus, catch in Japan/East Sea. Fisheries Oceanography, 11, 337-346. https://doi.org/10.1046/j.1365-2419.2002.00211.x

75. Lavín, M. F. & Marinone, S. G. (2003). An overview of the physical oceanography of the Gulf of California. En: Velasco Fuentes, O.; Sheinbaum, J. & Ochoa, J. eds. Nonlinear processes in geophysical fluid dynamics a tribute to the scientific work of Pedro Ripa. pp. 173-204. Dordrecht: Kluwer Academic Publishers. https://doi.org/10.1007/978-94-010-0074-1_11

76. Lampitt R. S., Weshner, K. F., Turley C. M. & Angel M. V. (1993). Marine snow studies m the Northeast Atlantic Ocean: distribution, composition and role as a food source for migrating plankton, Mar Rio, 116, 689-702. https://doi.org/10.1007/BF00355486

77. Nigmatullin, C. M., Nesis, K. N. & Arkhipkin, A. I. (2001). A review of the biology of the jumbo squid Dosidicus gigas (Cephalopoda: Ommastrephidae). Fishery Research, 54, 9-19. https://doi.org/10.1016/S0165-7836(01)00371-X

78. O'Dor, R. K., Foy, E. A., Helm, P. L. & Balch, N. (1986). The locomotion and energetics of hatchling squid, Ilex illecebrosus. American Malacology Bulletin, 4, 55-60.

79. Ohtsuka, S. & Kubo, N. (1991). Larvaceans and their houses as important food for some pelagic copepods. Bulletin of the Plankton Society of Japan, 535-551.

80. Okutani, T. & Watanabe, T. (1983). Stock assessment by larval surveys of the winter population of Todarodes pacificus Steenstrup (Cephalopoda: Ommastrephidae), with a review of early works. Biology and Oceanography, 2(2), 3-4.

81. Øresland, V. (1990). Feeding and predation impact of the chaetognath Eukronia hamata in Gerlache Strait Antartic Peninsula. Marine Ecology Progress Series, 63, 201-209. https://doi.org/10.3354/meps063201

82. Øresland, V. (1991). Feeding of the carnivorous copepod Euchaeta antartica in Antartic coastal and oceanic waters. Marine Ecology Progress Series, 78, 41- 47. https://doi.org/10.3354/meps078041

83. Øresland. V. & Ward, P. (1993). Summer and winter diet of four carnivorous copepod species around South Georgia. Marine Ecology Progresss Series, 98, 73-78. https://doi.org/10.3354/meps098073

84. Paffenhöfer, G. A. (1993). On the ecology of marine cyclopoid copepods (Crustacea, Copepoda). Journal of Plankton Research, 15, 37-55. https://doi.org/10.1093/plankt/15.1.37

85. Palomares-García, R. J. & Vera-Alejandre, R. (1995). Predation upon larvae of the Pacific sardine Sardinops sagax by cyclopoid copepods. Journal of Crustacean Biology, 15, 196-201. doi.10.1016/S0924-7963(96)00047-4. https://doi.org/10.1163/193724095X00686

86. Page's, F. & Schnack-Schiel, S. (1996). Distribution patterns of the mesozooplankton, principally siphonophores and medusae, in the vicinity of the Antarctic Slope Front (eastern Weddell Sea). Journal of Marine Systematics, 9, 231-248. https://doi.org/10.1016/S0924-7963(96)00047-4

87. Postel, L., Fock, H. & Hagen, W. (2000). Biomass and abundance. En: Harris, R. P. Wiebe, P. H., Lenz, J., Skjoldal, H. R. & Huntley, M. eds. Zooplankton Methodology Manual. pp. 83-92. Academic Press. https://doi.org/10.1016/B978-012327645-2/50005-0

88. Purcell, J. E. (1981). Dietary composition and diel feeding patterns of epipelagic siphonophores. Marine Biology, 65, 83-90. https://doi.org/10.1007/BF00397071

89. Roberts, M. J. (2005). Chokka squid (Loligo vulgaris reynaudii) abundance linked to changes in South Africa's Agulhas Bank ecosystem during spawning and the early life cycle. ICES, Journal of Marine Science, 62, 33-55. https://doi.org/10.1016/j.icesjms.2004.10.002

90. Roper, C. F. E. & Voss, G. L. (1983). Guidelines for taxonomic descriptions of cephalopod species. Memories of the National Museum of Victoria, 44, 49-63.

https://doi.org/10.24199/j.mmv.1983.44.03

91. Sakurai Y., Kiyofuji H., Saito S., Goto T. & Hiyama Y. (2000). Changes in inferred spawning areas of Todarodes pacificus (Cephalopoda: Ommastrephidae) due to changing environmental conditions. ICES Journal of Marine Science 57, 24-30. https://doi.org/10.1006/jmsc.2000.0667

92. Shea, E. (2005). Ontogeny of the fused tentacles in three species of ommastrephid squids (Cephalopoda, Ommastrephidae). Invertebrate Biology, 124, 25-38. https://doi.org/10.1111/j.1744-7410.2005.1241-04.x

93. Skjoldal, H. R. & Wassmann, P. (1986). Sedimentation of particulate matter and silicium during spring and summer in Lindaspollene, western Norway. Marine Ecology Progress Series, 30, 49-63. https://doi.org/10.3354/meps030049

94. Smith, P. E. & Richardson, S. (1979). Técnicas modelo para la prospección de huevos y larvas de peces pelágicos. FAO Documentos Técnicos de Pesca 175: 107 pp.

95. Staaf, D. J., Camarillo-Coop, S., Haddock, S. H. D., Nyack, A. C., Payne, J., Salinas-Zavala, C. A., Seibel, B. A., Trueblood, L., Widmer, C. & Gilly, W. F. (2008). Natural egg mass deposition by the Humboldt squid (Dosidicus gigas) in the Gulf of California and characteristics of hatchlings and paralarvae. Journal of the Marine Biological Association of the United Kingdom, 88, 759-770. https://doi.org/10.1017/S0025315408001422

96. Staaf, D. J., Ruiz-Cooley, R. I., Elliger, C., Lebaric, Z., Campos, B., Markaida, U. & Gilly, W. F. (2010). Ommastrephid squids Sthenoteuthis oualaniensis and Dosidicus gigas in the eastern Pacific show convergent biogeographic breaks but contrasting population structures. Marine Ecology Progress Series, 418, 165-178. https://doi.org/10.3354/meps08829

97. Staaf, D. J., Redfern, J. V., Gilly, W. F., Watson, W. & Balance, L. T. (2013). Distribution of Ommastrephidae paralarvae in the eastern tropical Pacific. Fishery Bulletin, 111, 78-89. https://doi.org/10.7755/FB.111.1.7

98. Sweeney, M. J., Roper, C. F. E., Mangold, K. M., Clarke, M. R. & Boletzky, S. V. (1992). "Larval" and juvenile cephalopods: A manual for their identification. Smithsonian Contributions in Zoology. Washington. Smithsonian Institution Press. https://doi.org/10.5479/si.00810282.513

99. Uchikawa, K., Sakai, M. & Wakabayashi, T. (2009). The relationship between paralarval feeding and morphological changes in the proboscis and beaks of the neon flying squid Ommastrephes bartramii. Fisheries Science, 75, 317-323. https://doi.org/10.1007/s12562-008-0036-2

100. Vidal E. A. G. & Haimovici, M. (1998). Feeding and the possible role of the proboscis and mucus cover in the ingestion of the microorganisms by rhynchoteuthion paralarvae (Cephalopoda: Ommastrephidae). Bulletin of Marine Science, 63, 305-316.

101. Vecchione, M. (1987). Juvenile ecology. En Boyle, P. R. ed. Cephalopod life cycles, Volume II. Comparative reviews. pp. 61-84. London: Academic Press.

102. Vecchione, M. (1991). A method for examining the structure and contents of the digestive tract in paralarvae squids, Bulletin of Marine Science, 49, 300-308.

103. Wickstead, J. H. (1962). Food and feeding in pelagic copepods. Proceedings of Zoological Society of London, 139, 545-555. https://doi.org/10.1111/j.1469-7998.1962.tb01593.x

104. GO, Y.-B., OH, B.-C. & Terazaki, M. (1998). Feeding behavior of the poecilostomatoid copepods Oncaea spp. on chaetognaths. Journal of Marine Systems, 15(1-4), 475-482. https://doi.org/10.1016/S0924-7963(97)00038-9

105. Zepeda-Benítez, V. Y., Morales-Bojórquez, E., Díaz-Uribe, J. G., Nevárez-Martínez, M. O., Hernández-Herrera, A. & López-Martínez, J. (2017). Implementation of catch-at-age model for the jumbo squid Dosidicus gigas. Ecological Modelling, 344, 6-16. https://doi.org/10.1016/j.ecolmodel.2016.10.019

106. Bracken, Matthew E. S., Hillebrand, Helmut, Borer, Elizabeth T., Seabloom, Eric W., Cebrian, Just, Cleland, Elsa E.,. Smith, Jennifer E. (2015). Signatures of nutrient limitation and co-limitation: responses of autotroph internal nutrient concentrations to nitrogen and phosphorus additions. Oikos, 124(2), 113-121. https://doi.org/10.1111/oik.01215

107. Brown, M.R., Jeffrey, S.W., Garland, C.D., & Laboratories, CSIRO. Marine. (1989). Nutritional Aspects of Microalgae Used in Mariculture: A Literature Review: CSIRO Marine Laboratories. https://doi.org/10.1080/07266472.1989.11083346

108. Cooksey, Keith E. (1972). The Metabolism of Organic Acids by a Marine Pennate Diatom. Plant Physiology, 50(1), 1-6. https://doi.org/10.1104/pp.50.1.1

109. Chavez Medrano, Catalina Ivone. (2008). Efecto de distintas variables ambientales en la fisiología y composición bioquimica de Navicula incerta. (Maestria), Centro de investigación cientifica y educación superior de ensenada, Ensenada, Baja California.

110. Gómez Luna, Liliana M. (2007). Microalgas: Aspectos ecológicos y biotecnológicos. Revista cubana de quimica, 19(2).

111. Guillard, R. R. L., & Hargraves, P. E. (1993). Stichochrysis immobilis is a diatom, not a chrysophyte. Phycologia, 32(3), 234-236. https://doi.org/10.2216/i0031-8884-32-3-234.1

112. Hoagland, Kyle D., Rosowski, James R., Gretz, Michael R., & Roemer, Stephen C. (1993). Diatom extracellular polymeric subtance: Function, fine structure, chemistry and physiology. Journal of Phicology, 29, 31. https://doi.org/10.1111/j.0022-3646.1993.00537.x

113. Jain, Ruchi, Raghukumar, Seshagiri, Tharanathan, R., & Bhosle, N.B. (2005). Extracellular Polysaccharide Production by Thraustochytrid Protists. Marine Biotechnology, 7(3), 184-192. https://doi.org/10.1007/s10126-004-4025-x

114. Kirst, G. O. (1990). Salinity Tolerance of Eukaryotic Marine Algae. Annual Review of Plant Physiology and Plant Molecular Biology, 41(1), 21-53. https://doi.org/10.1146/annurev.pp.41.060190.000321

115. Krishnika, A., Bhanupriya, P. B., & Beena, B. Nair. (2011). Antibacterial activity of eight marine microalgae against few gram negative bacterial pathogens. Journal of Farmacy Research, 4(9).

116. Mansour, Mohamed Magdy F., & Salama, Karima H. A. (2004). Cellular basis of salinity tolerance in plants. Environmental and Experimental Botany, 52(2), 113-122. https://doi.org/10.1016/j.envexpbot.2004.01.009

117. Myklestad, Sverre. (1977). Production of carbohydrates by marine planktonic diatoms. II. Influence of the NP ratio in the growth medium on the assimilation ratio, growth rate, and production of cellular and extracellular carbohydrates by Chaetoceros affinis var. willei (Gran) Hustedt and Skeletonema costatum (Grev.) Cleve. Journal of Experimental Marine Biology and Ecology, 29(2), 161-179. https://doi.org/10.1016/0022-0981(77)90046-6

118. Nathan, Carl. (2004). Antibiotics at the crossroads. Nature, 431(7011), 899-902. https://doi.org/10.1038/431899a

119. Navarro, J. N. (1983). A survey of marine diatoms of puerto Rico VI. Suborder Raphidineae: Family Naviculaceae (Genera haslea, Mastogloia navicula Botanica Marina, 26(3), 17. https://doi.org/10.1515/botm.1983.26.3.119

120. Navine, M., Bergé, J. P., Durand, P., & Le Bris, H. (1999). Antibacterial activity of the marine diatom Skeletonema costatum agains aqacultural pathogens. Aquacultura, 174, 9. https://doi.org/10.1016/S0044-8486(98)00513-4

121. Patil, Jagadish S., & Anil, Arga C. (2005). Influence of diatom exopolimers and biofilms in metamorphosis in the barnacle Balanus amphitrite. Marine ecology progress series, 301(231), 15. https://doi.org/10.3354/meps301231

122. Penna, Antonella, Berluti, Simone, Penna, Nunzio, & Magnani, Mauro. (1999). Influences of nutrient ratios on the in vitro extracelluar polysaccharide production by marine diatoms from the Adriatic Sea. Journal of plakton research, 21(9), 10. https://doi.org/10.1093/plankt/21.9.1681

123. Raposo, Maria Filomena, Morais, Rui Manuel Santos Costa, & Morais, Alcina Maria Miranda Bernardo. (2013). Bioactivity and Applications of Sulphated Polysaccharides from Marine Microalgae. Marine Drugs, 11(1), 233-252. https://doi.org/10.3390/md11010233

124. Renaud, S. M., & Parry, D. L. (1994). Microalgae for use in tropical aquaculture II: Effect of salinity on growth, gross chemical composition and fatty acid composition of three species of marine microalgae. Journal of Applied Phycology, 6(3), 347-356. https://doi.org/10.1007/BF02181949

125. Sánchez-Saavedra, M del Pilar, Licea-Navarro, Alexei, & Bernáldez-Sarabia, Johana. (2010). Evaluation of antibacterial activity of different species of phytoplancton. Revista de Biología marina y Oceanografía, 45(3), 5. https://doi.org/10.4067/S0718-19572010000300019

126. Spellberg, B., Powers, J. H., Brass, E. P., Miller, L. G., & Edwards, J. E., Jr. (2004). Trends in antimicrobial drug development: implications for the future. Clin Infect Dis, 38(9), 1279-1286. https://doi.org/10.1086/420937

127. Underwood, Graham J. C., & Paterson, David M. (2003). The importance of extracellular carbohidrate production by marine epipelic diatoms. Advences in botanical research, 40, 58.

https://doi.org/10.1016/S0065-2296(05)40005-1

128. Aguirre Gómez, R. (2002). Los mares mexicanos a través de la percepción remota. Instituto de Geografía. UNAM, México.

129. Amezcua-Ávila, A. V., Santiago-Morales, I. S. y Góngora-Servín, I. I. (2017). Especies reactivas de oxígeno y actividad hemolítica de una cepa de Chattonella aislada de la Costa de Oaxaca. p. 70. Memorias del IV Congreso de la Sociedad para el Estudio de los Florecimientos Algales Nocivos A. C. y II Reunión de la Asociación Latinoamericana para el Estudio de Algas Nocivas, 23-27 de octubre de 2017, Cancún, Quintana Roo, México.

130. Band-Schmidt, C. J., Bustillos-Guzmán, J. J., López-Cortés, D. J., Núñez-Vázquez, E. J. y Hernández-Sandoval, F. E. (2011). El estado actual del estudio de florecimientos algales nocivos en México. Hidrobiológica, 21(3), 381-413.

131. CENAPRED (2014). Marea roja tóxica en México, escala: 1:200000. Centro Nacional de Prevención de Desastres. Ciudad de México, Coyoacán. Recuperado de http://www.conabio.gob.mx/informacion/gis/.

132. Corté-Altamirano, R. (1998). Mareas rojas. AGT Editores. México Cortés-Lara, M. C., Cortés-Altamirano, R. & Magaña, A. C. (2003). First record of Fibrocapsa cf. japonica in Matanchen Bay, Nayarit, Mexican Pacific coast. Harmful Algae News IOC Newsletter on toxic algae and algal blooms 24, 1-4.

133. Cortés-Lara, M. C., Cortés-Altamirano, R. y Sierra-Beltrán, A. (2004). Presencia de Cochlodinium catenatum (Gymnodinales: Gymnodinaceae) en mareas rojas de Bahía Banderas en el Pacífico Mexicano. Revista Biología Tropical, 52 (Suppl. 1), 35-50.

134. Cortés-Lara, M. C., Cortés Altamirano, R. &. Cupul Magaña, A. L. (2011). Fish kill by Dictyocha californica in Banderas Bay, Jalisco, México. Harmful Algae News IOC Newsletter on toxic algae and algal blooms, 43, 14-15.

135. Cortés-Lara, M. C., Cortés Altamirano, R., Cupul Magaña, A. L., Rodríguez Nava, L. V. y F. Vega Villasante. (2012). Guía de Florecimientos Microalgales (2000-2011) Causantes de mareas rojas en Bahía de Banderas Jalisco-Nayarit. Universidad de Guadalajara, México.

136. Cortés-Lara, M. C., Cúpul-Magaña, A. L., Rodríguez Troncoso, A. P. & Cortés-Altamirano, R. (2015). Harmful Algae Blooms in Banderas Bay, Jalisco, México, 2013. Harmful Algae News IOC Newsletter on toxic algae and algal blooms, 6-7.

137. Esqueda-Lara, K. y Hernández-Becerril, D. U. (2010). Dinoflagelados microplanctónicos marinos del Pacífico central de México (Isla Isabel, Nayarit y costas de Jalisco y Colima). Instituto de Ciencias del Mar y Limnología, Universidad Nacional Autónoma de México.

138. Flamand, S. C. (1991). Pacífico Tropical Mexicano: Cabo Corrientes con la frontera con Guatemala. Oceanografía Geológica. En: de la Lanza, G. eds. Oceanografía de Mares Mexicanos pp. 117-148. México: AGT Editor.

139. Gárate-Lizárraga, I., Sevilla-Torres, G., Álvarez-Añorve, M., Aguirre-Bahena, F., Violante-González, J. & Rojas-Herrera, A. (2013). First record of a red tide caused by Gyrodinium instriatum (dinophyceae: gymnodiniales) in bahía de Acapulco, Guerrero. CICIMAR Oceánides, 28, 43-47. https://doi.org/10.37543/oceanides.v28i1.120

140. Gárate-Lizárraga, I., Pérez-Cruz, B., Díaz-Ortiz, J. A., Okolodkov, Y. B. y López-Silva, S. (2016). Florecimientos algales nocivos en las aguas costeras del estado de Guerrero, México. En: García-Mendoza, E., Quijano-Scheggia, S. I., Olivos-Ortiz, A. y Núñez-Vázquez, E. J. eds. Florecimientos Algales Nocivos en México. pp 228- 241.México. CICESE.

141. Gómez-Villarreal, M. C., Gárate-Lizárraga, I. y Bustillos-Guzmán, J. J. (2007). Toxinas paralizantes en ostión de piedra, Crassostrea iridescens en Bahía de Banderas. pp. 1-2. En: Recursos y Medio Ambiente: Memorias del XIV Congreso Nacional de Ciencia y Tecnología, 29-31 de Octubre de 2007, Nuevo Vallarta, Jalisco, México.

142. Hernández-Becerril, D. U., Alonso-Rodríguez, R. Álvarez-Góngora, C., Barón-Campis, S. A., Ceballos-Corona, G., Herrera-Silveira, J., Meave del Castillo, M. E., Juárez-Ruíz, N., Merino-Virgilio, F., Morales-Blake, A., Ochoa, J. L., Orellana-Cepeda, E., Ramírez-Camarena R. & Rodríguez-Raciel, S. (2007). Toxic and harmful marine phytoplankton microalgae (HABs) in Mexican coasts. Journal of Environmental Science Health Part A, 42 (10), 1349-1363. https://doi.org/10.1080/10934520701480219

143. Kim, C.S., Lee, S.G., Lee, C.K., Kim, H.G. & Jung, J. (1999). Reactive oxygen species as causative agents in the ichthyotoxicity of the red tide dinoflagellate Cochlodinium polykrikoides. Journal of Plankton Research, 21(11), 2105- 2115. https://doi.org/10.1093/plankt/21.11.2105

144. Maciel-Baltazar, E. (2015). Dinoflagelados (Dinoflagellata) tóxicos de la costa de Chiapas, México, Pacífico centro oriental. Cuadernos de Investigación UNED, 7, 39-48. https://doi.org/10.22458/urj.v7i1.860

145. Maciel-Baltazar, E. y Hernández-Becerril, D.U. (2013). Especies de dinoflagelados atecados (Dinophyta) de la costa de Chiapas, sur del Pacífico mexicano. Revista de biología marina y oceanografía, 48(2), 245-259. https://doi.org/10.4067/S0718-19572013000200005

146. Meave-del Castillo, M. E., Zamudio-Resendiz, M. E., y Castillo-Rivera, M. (2012). Riqueza fitoplanctónica de la Bahía de Acapulco y zona costera aledaña, Guerrero, México. Acta Botánica Mexicana, 100, 405-487. https://doi.org/10.21829/abm100.2012.41

147. Okolodkov, Y. B. & Gárate-Lizárraga, I. (2006). An annotated checklist of dinoflagellates (Dinophyceae) from the Mexican Pacific. Acta Botanica Mexicana, 74, 1-154. https://doi.org/10.21829/abm74.2006.1008

148. Paz, B., Daranas, A. H., Norte, M., Riobó, P., Franco, J. M. & Fernández, J. J. (2008). Yessotoxins, a group of marine polyether toxins: an overview. Marine Drugs, 6(2), 73-102. https://doi.org/10.3390/md6020073

149. Pérez-Morales, A., Band-Schmidt, C. J., Ortíz-Galindo, J. L. & Sobrino-Figueroa, A. S. (2014). Mortality in the initial ontogeny of Paralabrax maculatofasciatus (Actinopterygii, Perciformes, Serranidae) caused by Chattonella spp. (Raphidophyceae). Hydrobiologia, 722, 247-261. https://doi.org/10.1007/s10750-013-1707-2

150. Pérez-Morales, A., Band-Schmidt, C. J. & Martínez-Díaz, S. F. (2017). Mortality on zoea stage of the Pacific white shrimp Litopenaeus vannamei caused by Cochlodinium polykrikoides (Dinophyceae) and Chattonella spp. (Raphidophyceae). Marine Biology, 164, 57. https://doi.org/10.1007/s00227-017-3083-3

151. Quijano-Scheggia, S. I., Olivos-Ortiz, A., Pérez-Morales, A., Álvarez-García, C., Gaviño-Rodríguez, J. H. y Sosa-Avalos, R. (2016). Registros de microalgas nocivas o tóxicas formadoras de florecimientos algales en las bahías de Manzanillo, Colima, México. En: García-Mendoza, E., Quijano-Scheggia, S. I., Olivos-Ortiz, A. y Núñez-Vázquez, E. J. eds. Florecimientos Algales Nocivos en México. pp. 218- 227. México: CICESE.

152. Rodríguez-Palacio, M. C., Lozano-Ramírez, C., Álvarez-Hernández, S. & de Lara-Isassi, G. (2006). First Record of harmful bloom of Gymnodinium catenatum along the Michoacán coast, Mexico. p 270. 12th International Conference on Harmful Algae, 4-8 September 2006, Copenhagen, Denmark.

153. Rodríguez-Palacio, M.C., Lozano-Ramírez, C. y Álvarez-Hernández, S. (2010). Florecimiento algal nocivo causado por Cochlodinium polykrikoides y Ceratium divaricatum (Dinophyceae) en Acapulco, Guerrero, México. En: Chávez-Comparan, J. C. y J. Mimbela-López eds. Investigaciones Marinas y Acuícolas sobre el Pacifico Tropical Mexicano. pp 70-78. México: Universidad de Colima.

154. Ronsón-Paulín, J. A. (1999). Análisis retrospectivo y posibles causas de mareas rojas tóxicas en el litoral del sureste mexicano (Guerrero, Oaxaca, Chiapas). Ciencia y Mar. Universidad del Mar, 9, 49-55.

155. Sánchez-Flores, H. E. (2011). Envenenamiento paralizante severo por consumo de moluscos. Reporte de un caso. Archivos de Medicina de Urgencia de México, 3, 30-33.

156. Saldate-Castañeda, O., Vázquez-Castellanos, J. L., Galván, J., Sánchez-Anguiano, A., y Nazar, A. (1991). Intoxicaciones por toxina paralizante de molusco en Oaxaca. Salud Pública de México, 33, 240-247.

157. Santiago-Morales, I. S. (2016). Florecimientos algales nocivos en la costa de Oaxaca. En: García-Mendoza, E., Quijano-Scheggia, S. I., Olivos-Ortiz, A. y Núñez-Vázquez, E. J. eds. Florecimientos Algales Nocivos en México. pp. 242- 255. México: CICESE.

158. Sierra-Beltrán, A. P., Cruz, A., Núñez, E., Del Villar, M., Cerecero, J. & Ochoa, J. L. (1998). An overview of the marine food poisoning in Mexico. Toxicon, 36(11), 1493-1502. https://doi.org/10.1016/S0041-0101(98)00139-1

159. Tang, Y.Z. & Gobler, C.J. (2009). Cochlodinium polykrikoides blooms and clonal isolates from the northwest Atlantic coast cause rapid mortality in larvae of multiple bivalve species. Marine Biology, 156(12), 2601-2611. https://doi.org/10.1007/s00227-009-1285-z

160. Anderson, D. M. & White, A. W. (1992). Marine Biotoxins at the Top of the Food Chain. Oceanus, 35(3), 55-61.

161. Amzil, Z., Fresnel, J., Le-Gal, D. & Billard, C. (2001). Domoic acid accumulation in French shellfish in relation with the toxic species of Pseudo-nitzschia multiseries and P. pseudodelicatissima. Toxicon, 39, 1245-1251. https://doi.org/10.1016/S0041-0101(01)00096-4

162. Bargu S., Powell C. L., Coale S. L., Busman M., Doucette G. J. & Silver M. W. (2002). Krill: a potential vector for domoic acid in marine food webs. Marine Ecology Progress Series, 237, 209-216. https://doi.org/10.3354/meps237209

163. Bargu, S. & Silver, M. W. (2003). Field evidence of krill grazing on the toxic diatom genus Pseudo-nitzschia in Monterey Bay, California. Bulletin of Marine Science, 72, 629-638.

164. Bargu, S., Marinovic, B., Mansergh, S. & Silver, M. W. (2003). Feeding responses of krill to the toxin-producing diatom Pseudo-nitzschia. Journal of Experimental Marine Biology and Ecology, 284, 87-104. https://doi.org/10.1016/S0022-0981(02)00494-X

165. Bargu, S., Powell, C. L., Wang, Z. H., Doucette, G. J. & Silver, M. W. (2008). Note on the occurrence of Pseudo-nitzschia australis and domoic acid in squid from Monterey Bay, CA (USA). Harmful Algae, 7, 45-51. https://doi.org/10.1016/j.hal.2007.05.008

166. Bargu S., Smith, E. & Ozhan K. (2011). Toxic Diatom Pseudo-nitzschia and Its Primary Consumers (Vectors). In: Seckbach J., Kociolek, J. P. eds. The Diatom World, Cellular Origin, Life in Extreme Habitats and Astrobiology. Pp 491-512. https://doi.org/10.1007/978-94-007-1327-7_22

167. Bates, S. S. (1998). Ecophysiology and metabolism of ASP toxin production, In: Anderson, D. M., Cembella, A. D., Hallegraeff, G. M. (Ed.), Physiological ecology of harmful algal blooms. pp. 405-426. Germany: Springer-Verlag, Heidelberg.

168. Bates, S. S. & Trainer, V. L. (2006). The ecology of harmful diatoms, In: Granéli, E., Turners, J.T. (Ed.), Ecology of Harmful Algae. pp. 81-93. Germany: Springer-Verlag, Berlin Heidelberg. https://doi.org/10.1007/978-3-540-32210-8_7

169. Bell, A. (2003). Nonprotein amino acids of plants: significance in medicine, nutrition, and agriculture. Journal of Agricultural and Food Chemistry, 51, 2854-2865. https://doi.org/10.1021/jf020880w

170. Blanco, J., Acosta, C. P., de la Puente, M. B., Salgado, C. (2002). Depuration and anatomical distribution of the amnesic shellfish poisoning (ASP) toxin domoic acid in the king scallop Pecten maximus. Aquatic Toxicology, 60, 111-121.https://doi.org/10.1016/S0166-445X(01)00274-0

171. Blanco, J., Acosta, C. P., Mariño, C., Muñiz S., H. Martín, Á. Moroño, Correa, J. Arévalo, F. & Salgado, C. (2006). Depuration of domoic acid from different body compartments of the king scallop Pecten maximus grown in raft culture and natural bed. Aquatic Living Resources, 19, 257-265. https://doi.org/10.1051/alr:2006026

172. Bogan, Y. M., Bender, K., Hervas, A., Kennedy, D. J., Slater, J. W. & Hess, P. (2007). Spatial variability of domoic acid concentration in king scallops Pecten maximus off the southeast coast of Ireland. Harmful Algae, 6(1), 1-14. https://doi.org/10.1016/j.hal.2006.05.004

173. Coan E. V. & Valentich-Scott P. (2012). Bivalve Seashells of Tropical West America Marine Bivalve Mollusks from Baja California to Northern Perú. Santa Barbara Museum of Natural History (2 volúmenes) 1,258 pp.

174. Costa, P. R. & Garrido, S. (2004). Domoic acid accumulation in the sardine Sardina pilchardus and its relationship to Pseudo-nitzschia diatom ingestion. Marine Ecology Progress Series, 284, 261-268. https://doi.org/10.3354/meps284261

175. Dao, H. V., Takata, Y., Sato S., Fukuyo Y. & Kodama M. (2016). Domoic acid in a bivalve Spondylus cruentus in Nha Trang Bay, Khanh Hoal Province, Vietnam. Coastal Marine Science, 30(1), 130-132.

176. Del Río, R., Bargu, S., Baltz, D., Fire, S., Peterson, G. & Wang, Z. (2010). Gulf menhaden (Brevoortia patronus): A potential vector of domoic acid in coastal Louisiana food webs. Harmful Algae, 10, 19-29. https://doi.org/10.1016/j.hal.2010.05.006

177. Fire, S. E. & Silver, M. W. (2005). Domoic acid in the Santa Cruz wharf fishery. California Fish and Game, 91, 179-192.

178. Gallacher, S., Howard, G., Hess, P., MacDonald, E., Kelly, M. C., Bates, L. A., Brown, N., MacKenzie, M., Gillibrand, P. & Terrell, W. R. (2001). The occurrence of amnesic shellfish poisons in shellfish from Scottish waters. In: Hallegraeff, G.M., Blackburn, S. I., Bolch, C. J., Lewis, R. J. (Eds.), Harmful Algal Blooms 2000. pp. 30-33. France: Intergovernmental Oceanographic Commission of UNESCO.

179. Gilgan, M. W., Burns, B. G. & Landry, G. J. (1990). Distribution and magnitude of domoic acid contamination of shellfish in Atlantic Canada during 1988. In: Granéli, E., Sundström, B., Edler, L., Anderson, D.M. (Eds.), Toxic Marine Phytoplankton. pp. 469-474. E.U.A.: Elsevier.

180. GEOHAB (2005). Global Ecology and Oceanography of Harmful Algal Blooms, GEOHAB Core Research Project: HABs in Upwelling Systems, In: Pitcher, P., Moita, T., Trainer, V.L., Kudela, R., Figueiras, P., Probyn, T. (Ed.). IOC and SCOR, Paris and Baltimore.

181. Geraci J. R., Anderson D. M., Timperi R. J., Aubin D. J., Early G. A., Prescott J. H. & Mayo C. A. (1989). Humpback whales (Megaptera novaeangliae) fatally poisoned by dinoflagellate toxin. Canadian Journal of Fisheries and Aquatic Sciences, 46, 1895-1898. https://doi.org/10.1139/f89-238

182. Goldstein, T., Mazet, J. A. K., Zabka, T. S., Langlois, G., Colegrove, K. M. & Silver, M., (2008). Novel symptomatology and changing epidemiology of domoic acid toxicosis in California sea lions (Zalophus californianus): an increasing risk to marine mammal health. Proceedings of the Royal Society B, 275, 267-276. https://doi.org/10.1098/rspb.2007.1221

183. Holland, P. T., Selwood, A. I., Mountfort, D. O., Wilkins, A. L., McNabb, P., Rhodes, L. L., Doucette, G. J., Mikulski, C. M. & King, K. L. (2005). Isodomoic acid C, an unusual amnesic shellfish poisoning toxin from Pseudo-nitzschia australis. Chemical Research in Toxicology, 18, 814-816. https://doi.org/10.1021/tx0496845

184. Horner R. A. & Postel J. R. (1993). Toxic diatoms in western Washington waters (U.S. West Coast). Hydrobiologia 269/270, 197-205. https://doi.org/10.1007/BF00028018

185. Jeffery, B., Barlow, T., Moizer, K., Paul, S. & Boyle, C. (2004). Amnesic shellfish poison. Food Chemical Toxicology, 42, 545-557. https://doi.org/10.1016/j.fct.2003.11.010

186. Johnson, R. L. & Koerner, J. F. (1988). Excitatory Amino Acid Neurotransmission. Journal of Medicinal Chemistry, 31(11), 2057-2066. https://doi.org/10.1021/jm00119a001

187. Jones T. O., Whyte J. N. C., Townsend L. D., Ginther N. G. & Iwama G. K. (1995). Effects of domoic acid on haemolymph pH, PCO2 and PO2 in the Pacific oyster, Crassostrea gigas and the California mussel, Mytilus californianus. Aquatic Toxicology, 31, 43-55. https://doi.org/10.1016/0166-445X(94)00057-W

188. Kaniou-Grigoriadou, I., Mouratidou, T. & Katikou, P. (2005). Investigation on the presence of domoic acid in Greek shellfish. Harmful Algae, 4, 717-723. https://doi.org/10.1016/j.hal.2004.10.002

189. Kvitek, R. G., Goldberg, J. D., Smith, G. J., Doucette, G. J. & Silver, M. W. (2008). Domoic acid contamination within eight representative species from the benthic food web of Monterey Bay, California, USA. Marine Ecology Progress Series, 367, 35-47. https://doi.org/10.3354/meps07569

190. Langlois, G. W., Kizer K. W., Hansgen, R., Howell R. & Loscutoff, S. (1993). Preliminary results of the California phytoplankton monitoring program. P 118. In: 6th Int Conf Toxic Marine Phytoplankton, Nantes, France, October 18-22.

191. Lefebvre, K. A. & Robertson, A. (2010). Domoic acid and human exposure risks: a review. Toxicon, 56, 218-230. https://doi.org/10.1016/j.toxicon.2009.05.034

192. Lefebvre, K. A., Powell, C. L., Busman, M., Doucette, G. J., Moeller, P. D. R., Silver, J. B., Miller, P. E., Hughes, M. P., Singaram, S., Silver, M. W. & Tjeerdema, R. S. (1999). Detection of domoic acid in northern anchovies and California sea lions associated with an unusual mortality event. Natural toxins, 7, 85-92. https://doi.org/10.1002/(SICI)1522-7189(199905/06)7:3<85::AID-NT39>3.0.CO;2-Q

193. Lefebvre, K. A., Dovel, S. L. & Silver, M. W. (2001). Tissue distribution and neurotoxic effects of domoic acid in a prominent vector species, the northern anchovy Engraulis mordax. Marine Biology, 138, 693-700. https://doi.org/10.1007/s002270000509

194. Lefebvre, K. A., Bargu, S., Kieckhefer, T. & Silver, M. W. (2002). From sanddabs to blue whales: the pervasiveness of domoic acid. Toxicon, 40, 971-977. https://doi.org/10.1016/S0041-0101(02)00093-4

195. Liu, H., Kelly M. S., Campbell, D. A., Dong, S. L, .Zhu, J. X. & Wang, S. F. (2007). Exposure to domoic acid affects larval development of king scallop Pecten maximus (Linnaeus, 1758). Aquatic Toxicology, 81(2), 152-158. https://doi.org/10.1016/j.aquatox.2006.11.012

196. Loscutoff, S. (1992). The West Coast experience-overview. In: Domoic Acid Workshop, San Pedro, California, February 6-8. Proc -US Food and Drug Administration, Pacific Region, California.

197. Lund J. K., Barnett H. J., Hatfield, C. L. , Gauglitz Jr E. J., Wekell J. C. & Rasco, B. (1997). Domoic acid uptake and depuration in dungeness crab (Cancer magister Dana 1852). Journal of Shellfish Research, 16(1), 225-231.

198. Madhyastha, M. S., Novaczek, I., Ablett, R. F., Johnson, G., Nijjar, M. S. & Sims, D. E. (1991). In vitro study of domoic acid uptake by digestive gland tissue of blue mussel (Mytilus edulis). Aquatic Toxicology, 20, 73-81. https://doi.org/10.1016/0166-445X(91)90042-8

199. Mafra, L. L., Bricelj, V. M., C. Ouellette, Léger, C. & Bates, S. S. (2009). Mechanisms contributing to low domoic acid uptake by oysters feeding on Pseudo-nitzschia cells. I. Filtration and pseudofeces production. Aquatic Biology, 6, 201-212. https://doi.org/10.3354/ab00121

200. Mafra, L. L., Bricelj, V. M. & Fennel, K. (2010). Domoic acid uptake and elimination kinetics in oysters and mussels in relation to body size and anatomical distribution of toxin. Aquatic Toxicology, 100, 17-29. https://doi.org/10.1016/j.aquatox.2010.07.002

201. Mabry, T. J. (2001). Selected Topics from Forty Years of Natural Products Research: Betalains to Flavonoids, Antiviral Proteins, and Neurotoxic Nonprotein Amino Acids. Journal of Natural Products, 64, 1596-1604. https://doi.org/10.1021/np010524s

202. Novaczek, I., Madhyastha, M. S., Ablett, R. F., Johnson, G., Nijjar, M. S. & Sims, D. E. (1991). Uptake, disposition and depuration of domoic acid by blue mussels (Mytilus edulis). Aquatic Toxicology, 21, 103-118. https://doi.org/10.1016/0166-445X(91)90009-X

203. Novaczek, I., Madhyastha, M. S., Ablett, R. F., Donald, A., Johnson, G., Nijjar, M. S. & Sims, D.E. (1992). Depuration of domoic acid from live blue mussels (Mytilus edulis). Canadian Journal of Fisheries and Aquatic Sciences 49, 312-318. https://doi.org/10.1139/f92-035

204. Pulido, O. M. (2008). Domoic Acid Toxicologic Pathology: A Review. Marine Drugs 6: 180-219. https://doi.org/10.3390/md6020180

205. Quilliam, M. A. (2003). Chemical methods for domoic acid, the amnesic shellfish poisoning (ASP) toxin. In: Hallegraeff, G.M., Anderson, D.M., Cembella, A.D. (Ed.), Manual on Harmful Marine Microalgae. pp. 247-266. France: Intergovernmental Oceanographic Commission (UNESCO).

206. Scholin, C. A., Gulland, F. M. D., Doucette, G. J., Benson, S., Busman, M., Chavez, F. P., Cordaro, J., DeLong, R., De-Vogelaere A., Harvey, J., Haulena, M., Lefebvre, K. A., Lipscomb, T., Loscutoff, S., Lowenstine L. J., Marin III, R., Miller, P. E., McLellan, W. A., Moeller, P. D. R., Powell, C. L., Rowles, T., Silvagni, P., Silver, M., Spraker, T., Trainer V. L. & Van Dolah, F. M. (2000). Mortality of sea lions along the central California coast linked to a toxic diatom bloom. Nature, 403, 80-84. https://doi.org/10.1038/47481

207. Shumway, S. E. (1990). A review of the effects of algal blooms on shellfish and aquaculture. Journal of World Aquaculture Society, 21, 65-104. https://doi.org/10.1111/j.1749-7345.1990.tb00529.x

208. Takata, Y., Sato, S., Ha, D.V., Montojo, U. M., Lirdwitayaprasit T., Kamolsiripichaiporn S., Kotaki Y., Fukuyo Y. & Kodama, M. (2009). Occurrence of domoic acid in tropical bivalves. Fisheries Science, 75, 473-480. https://doi.org/10.1007/s12562-009-0073-5

209. Trainer, V. L., Cochlan W. P., Erickson, A., Bill, B. D., Cox, F. H., Borchert, J. A. & Lefebvre, K.A. (2007). Recent domoic acid closures of shellfish harvest areas in Washington State inland waterways. Harmful Algae,6, 449-459. https://doi.org/10.1016/j.hal.2006.12.001

210. Trainer, V. L., Hickey, B. M., Bates, S. (2008). Toxic Diatoms, In: Walsh, P.J., Smith, S.L., Fleming, L.E., Solo-Gabriele, H. & Gerwick, W.H. (Ed.), Oceans and human health: risks and remedies from the sea. pp. 219-237. E.U.A.: Elsevier Science.

211. Torres de la Riva, G., Johnson, K. K., Gulland, F. M. D., Langlois, G. W., Heyning, J. E., Rowles, T. K. & Mazet, J. A. K. (2009). Association of an unusual marine mammal mortality event with Pseudo-nitzschia spp. blooms along the Southern California Coastline. Journal of Wildlife Diseases, 45(1), 109-121. https://doi.org/10.7589/0090-3558-45.1.109

212. Vale, P. & Sampayo, M. A. M. (2001). Domoic acid in Portuguese shellfish and fish. Toxicon, 39, 893-904. https://doi.org/10.1016/S0041-0101(00)00229-4

213. Vigilant, V. L. & Silver, M. W. (2007). Domoic acid in benthic flat fish on the continental shelf of Monterey Bay, California, USA. Marine Biology, 151, 2053- 2062. https://doi.org/10.1007/s00227-007-0634-z

214. Wohlgeschaffen, G. D., Mann, K. M., Subba Rao, D. V. & Pocklington, R. (1992). Dynamics of the phycotoxin domoic acid: accumulation and excretion in two commercially important bivalves. Journal of Applied Phycology, 4, 297-310. https://doi.org/10.1007/BF02185786

215. Wright, J. L. C. & Quilliam, M. A. (1995). Methods for domoic acid, the amnesic shellfish poisons. In: Hallegraeff, G.M., Anderson, D.M., Cembella, A.D. (eds.), IOC manual on harmful marine algae, IOC manuals and guides. pp. 113-133. France: UNESCO.

216. Zaccaroni, A. & Scaravelli, D. (2008). Toxicity of sea algal toxins to humans and animals, In: Evangelista, V., Barsanti, L., Frassanito, A.M., Passarelli, V., Gualtieri, P. (eds), Algal toxins: nature, occurrence, effect and detection. pp. 91-158. Italy. https://doi.org/10.1007/978-1-4020-8480-5_4

217. American Public Health Association (1980). Standard Methods for the examination of water and wastewater, 15th. Ed. pp. 747-925. E.U.A.: American Public Health Association.

218. Barrera-Escorcia, G., Fernández-Rendón C. A., Wong-Chang, Ramírez-Romero P. (2013). La sensibilidad del grupo coliforme como indicador de la presencia de enterobacterias patógenas en cuatro cuerpos acuáticos de México. Hidrobiológica, 23(1), 87-96.

219. Barrera-Escorcia, G., Wong- Chang, I., Sobrino-Figueroa, A.S., Guzmán-García F. Hernández-Galindo, F. y Saavedra-Villeda, F. (1999). Evaluación microbiológica de la laguna de Tamiahua, Veracruz, en el ciclo 1994-1995. Hidrobiológica, 9(2), 125-134.

220. Cofepris (2010). Comisión Federal para la Protección contra Riesgos Sanitarios. Documentos. Lineamientos. Recuperado de: http://www.cofepris.gob.mx/AZ/Documents/LineamientosAC2010.pdf.

221. De la Lanza, E.G. y Cáseres, M.C. (1994). Lagunas Costeras y el Litoral Mexicano. México: UABC-UNAM.

222. Fontánez, Y. (2005). Determinación del perfil microbiológico de la almeja (Lucina pectinata Gmelin, 1791) de ostión de mangle (Crassostrea rhizophorae Guilding, 1828) y las aguas de extracción de bivalvos en la zona suroeste de Puerto Rico, Recinto Universitario de Mayagüz. (Tesis de maestría). Universidad de Puerto Rico, Recinto Universitario de Mayagüez. Puerto Rico.

223. Flores-Abuxapqui, J.J., Suárez-Oil, G., Heredia-Navarrete, M.R., y Franco-Monreal, J. (1996). Calidad Microbiológica de los alimentos marinos en la Ciudad de Mérida, Yucatán. Veterinaria México, 27(4), 319-324.

224. Food and Drug Administration (1995). Bacteriological Analytical Manual. 8th. Arlington, VA: AOAC.

225. García, E. (1988). Modificaciones al sistema de clasificación climática de Köppen: para adaptarlo a las condiciones de la Repúblicas Mexicana. México: Offset Larios.

226. González, M., Graü, C., Villalobos, L.B., Gil, H., Vazquez-Suárez, A. (2009). Microbiological quality of the oyster Crassostrea rhizophorae and extraction waters, Sucre State, Venezuela. Revista Científica 19(6), 659-666.

227. Graü, C., La Barbera, A., Zerpa, A., Silva, S. y Gallardo, O. (2004). Aislamiento de Vibrio spp. y Evaluación de la condición sanitaria de los moluscos Bivalvos Arca zebra y Perna perna de la costa Nororiental del Estado de Sucre. Venezuela. Revista Científica 24 (6).

228. Huante-González, Y. (1997). Contaminación Biológica de la Bahía de Puerto Ángel, Oaxaca. Ciencia y Mar. 1(2):38-43 pp.

229. Instituto Nacional de Estadística Geografía e Informática (INEGI) (1998). Carta hidrográfica de aguas superficiales. Puerto Escondido Nº d14-3.

230. Larrea-Murrey, J. A., Rojas-Badía, M. M., Romeu-Álvarez, B., Rojas-Hernández, N. M. y Heidrych-Pérez, M. (2013). Bacterias indicadoras de contaminación fecal en la evaluación de la calidad de las aguas; revisión de la literatura. Revista CENIC Ciencias Biológicas, 44 (3), 24-34.

231. Marín, C., Fonseca, C., Sidey A., Villegas, I., García, A. & Hikaru I. (2009). Carga bacteriana de los peces Cynoscion squamipinnis (Persiformes: Scianidae) y Lujanus gutattus (Perciformes: lujanidae) en la cadena de comercialización, Costa Rica. Revista de Biología Tropical, 57 (1-2), 45-52. https://doi.org/10.15517/rbt.v57i1-2.11289

232. Marín, B., Garay, J., Ramírez, G., Betancourt, J., Troncoso, W. y Gómez, M. L. (2005). Diagnóstico y evaluación de la calidad ambiental marina en el Caribe y Pacífico colombiano red de vigilancia para la conservación y protección de las aguas marinas y costeras de Colombia. Diagnóstico Nacional y Regional. 2004. INVEMAR; 2004ª.

233. Moscarella, M.V., García, F. & Palacio, C. (2010). Microbiological Water Quality of Santa Martha Bay. Colombia. DYNA, 78(167), 132-141.

234. NMX-F-304-1997. General Research Method for the Determination of Salmonella in Foods. NORMAS Mexicanas. Dirección General de Normas.

235. Norma Oficial Mexicana. NOM-112-SSA1-1994. Bienes y Servicios. Determinación de bacterias coliformes. Técnica del número más probable.

236. Norma Oficial Mexicana. NOM-110-SSA1-1994, Bienes y Servicios. Preparación de diluciones de muestras de alimento para su análisis microbiológico.

237. Norma Oficial Mexicana. NOM-230-SSA1-2002, Salud ambiental. Agua para uso y consumo humano, requisitos sanitarios que se deben cumplir en los sistemas de abastecimiento públicos y privados durante el manejo del agua. Procedimientos sanitarios para el muestreo.

238. Norma Oficial Mexicana. NOM-031-SSA1-1993. Bienes y Servicios. Moluscos bivalvos frescos refrigerados y congelados.

239. Norma Oficial Mexicana. NOM-181-SSA1-1998. Salud Ambiental. Agua para uso y consumo humano. Requisitos sanitarios que deben cumplir las sustancias germicidas para tratamiento de agua de tipo doméstico.

240. Norma Oficial Mexicana. NOM-092-SSA1-1994. Bienes y Servicios. Método para la cuenta de bacterias aerobias en placa.

241. Norma Oficial Mexicana. NOM-114-SSA1-1994. Bienes y Servicios. Método para la determinación de Salmonella en alimentos.

242. Proyecto de Norma Oficial Mexicana PROY-NOM-242-SSA1-2005. Productos de la pesca frescos, refrigerados y congelados y procesados. Especificaciones sanitarias y método de prueba. México. Diario Oficial de la Federación, mayo 16, 1994.

243. Sandoval, D. G. (1998). Estudio de las comunidades bentónicas en la zona rocosa litoral y sublitoral de localidades en Bahías de Huatulco, Oaxaca. (Tesis de Licenciatura). Universidad Nacional Autónoma de México, México.

244. Secretaría de Salubridad y Asistencia Pública (SSA). (1994). Laboratorio nacional de salud pública. Manual de procedimientos para el análisis bacteriológico de Moluscos Bivalvos. México.

245. Téllez, S.J., Oliva, M., Ramírez de León, J.A. & Vázquez, M. (1999). Evaluation of microbiological quality of oyster from "La Laguna Madre" of Tamaulipas (México). Ciencia y Tecnología Alimentaria, 2(3), 152-157. https://doi.org/10.1080/11358129909487597

246. World Health Organization (1985). Manual of the International Statical classification of Diseases. Injures and Cause of Death. Argentina.

247. Acosta-Chamorro, V., Moreno-Ramos, O. L. y Cano-Ibarra, G. (2016). La temperature superficial del mar y su relación con florecimientos algales nocivos en áreas costeras del Pacífico Tropical Mexicano. En: E. García-Mendoza, S. I. Quijano-Scheggia, A. Olivos-Ortiz y E. J. Núñez-Vázquez (Eds.), Florecimientos Algales Nocivos en México (Vol. 1, pp. 268-281). Ensenada, México: CICESE.

248. Aguirre-Gómez, R. y Salmerón-García, O. (2007). Análisis estacional de la variación en la clorofila en el Pacífico Sur Mexicano mediante imágenes SeaWIFS de 1998 a 2004.

249. Almandoz, G. O., Hernando, M. P., Ferreyra, G. A, Schloss, I. R. & Ferrario, M. E. (2011). Seasonal phytoplankton dynamics in extreme southern South America (Beagle Channel, Argentina). Journal of Sea Research, 66(2), 47-57. https://doi.org/10.1016/j.seares.2011.03.005

250. Chapa‐Balcorta, C., Hernandez‐Ayon, J. M., Durazo, R., Beier, E., Alin, S. R. & López‐Pérez, A. (2015). Influence of post‐Tehuano oceanographic processes in the dynamics of the CO2 system in the Gulf of Tehuantepec, Mexico. Journal of Geophysical Research: Oceans, 120(12), 7752-7770. https://doi.org/10.1002/2015JC011249

251. De la Lanza-Espino, G. (1991). Oceanografía de mares mexicanos. AGT Editor. 569 pp.

252. Falkowski, P. G., Katz, M. E., Knoll, A. H., Quigg, A., Raven, J. A., Schofield, O. & Taylor, F. J. R. (2004). The evolution of modern eukaryotic phytoplankton. Science, 305(5682), 354-360. https://doi.org/10.1126/science.1095964

253. Gárate-Lizárraga, I. y Muñetón-Gómez, M. S. (2008). Florecimiento de Peridinium quinquecorne Abé in La Ensenada de La Paz, Golfo de California (Julio 2003). Acta botánica mexicana(83), 33-47. https://doi.org/10.21829/abm83.2008.1059

254. García-Mendoza, E., Quijano-Scheggia, S. I., Olivos-Ortiz, A. y Núñez-Vázquez, E. J. (2016). Florecimientos Algales Nocivos en México (Vol. 1). Ensenada, México: CICESE.

255. Glibert, P. M. (2016). Margalef revisited: a new phytoplankton mandala incorporating twelve dimensions, including nutritional physiology. Harmful algae, 55, 25-30. https://doi.org/10.1016/j.hal.2016.01.008

256. Grasshoff, K., Kremling, K. & Ehrhardt, M. (1983). Methods of seawater analysis. 237.

257. Hernández-Becerril, D. U., Bravo-Sierra, E. & Aké-Castillo, J. A. (2007). Phytoplankton on the western coasts of Baja California in two different seasons in 1998. Scientia Marina, 71(4), 735-743. https://doi.org/10.3989/scimar.2007.71n4735

258. Hernández-Becerril, D. U., López-Tachiquín, L. F., Machain-Castillo, M. L. y Monreal- Gómez, M. A. (2015). Distribución de pigmentos fotosintéticos del fitoplancton del Golfo de Tehuantepec en verano (junio, 2003): importancia del picofitoplancton. Hidrobiológica, 25(3), 365-374.

259. Hillebrand, H., Dürselen, C. D., Kirschtel, D., Pollingher, U. & Zohary, T. (1999). Biovolume calculation for pelagic and benthic microalgae. Journal of phycology, 35(2), 403-424. https://doi.org/10.1046/j.1529-8817.1999.3520403.x

260. Hillebrand, H. & Sommer, U. (1999). The nutrient stoichiometry of benthic microalgal growth: Redfield proportions are optimal. Limnology and Oceanography, 44(2), 440-446. https://doi.org/10.4319/lo.1999.44.2.0440

261. Lara-Lara, J. R., Arenas-Fuentes, V., Bazán-Guzmán, C., Díaz-Castañeda, V., Escobar- Briones, E., García-Abad, M. C., Gaxiola-Castro, G., Robles-Jarero, G., Sosa-Ávalos, R., Soto-González, L. A., Tapia-García, M. y Valdez-Holguín, J. E. (2008). Los ecosistemas marinos. Capital natural de México, 1, 135-159.

262. Lara-Lara, J. R. y Bazán-Guzmán, C. (2005). Distribución de clorofila y producción primaria por clases de tamaño en la costa del Pacífico mexicano. Ciencias Marinas, 31. https://doi.org/10.7773/cm.v31i11.82

263. Lara-Lara, J. R., Robles-Jarero, E. G., Bazán-Guzmán, M. C. y Millán-Nuñez, E. (1998). Productividad del fitoplancton. El Golfo de Tehuantepec: el ecosistema y sus recursos, 51-58. México.

264. Libes, S. (2009). Introduction to marine biogeochemistry: 2nd. Ed. Elsevier. USA. 893 pp.

265. Limoges, A., Kielt, J. F., Radi, T., Ruíz-Fernandez, A. C. & de Vernal, A. (2010). Dinoflagellate cyst distribution in surface sediments along the south-western Mexican coast (14.76 N to 24.75 N). Marine Micropaleontology, 76(3), 104-123. https://doi.org/10.1016/j.marmicro.2010.06.003

266. López-Sandoval, D. C., Lara-Lara, J. R., Lavín, M. F., Álvarez-Borrego, S. & Gaxiola- Castro, G. (2009). Primary productivity in the eastern tropical Pacific off Cabo Corrientes, Mexico. Ciencias Marinas, 35(2). https://doi.org/10.7773/cm.v35i2.1530

267. Menden-Deuer, S. & Lessard, E. J. (2000). Carbon to volume relationships for dinoflagellates, diatoms, and other protist plankton. Limnology and Oceanography, 45(3), 569-579. https://doi.org/10.4319/lo.2000.45.3.0569

268. Olivos-Ortiz, A., Quijano-Scheggia, S. I., Pérez-Morales, A., Gaviño-Rodríguez, J. H., Kono-Martínez, T., Pelayo-Martínez, G. C., Ortega-Ortiz, C. D. y Verduzco- Zapata, M. G. (2016). Condiciones hidrográficas en el Pacífico Central Mexicano relacionadas con florecimientos algales en la zona costera de Colima. En: E. García-Mendoza, S. I. Quijano-Scheggia, A. Olivos-Ortiz y E. J. Núñez-Vázquez (Eds.), Florecimientos Algales Nocivos en México (Vol. 1, pp. 256-267). Ensenada, México: CICESE.

269. Owen, R. W., & Zeitzschel, B. (1970). Phytoplankton production: seasonal change in the oceanic eastern tropical Pacific. Marine Biology, 7(1), 32-36. https://doi.org/10.1007/BF00346805

270. Reynolds, C. S. (2006). The ecology of phytoplankton: Cambridge University Press. Riebesell, U. & Wolf-Gladrow, D.A. (2002). Supply and uptake of inorganic nutrients. Phytoplankton productivity: carbon assimilation in marine and freshwater ecosystems, 109-140. https://doi.org/10.1002/9780470995204.ch5

271. Robles-Jarero, E. G. & Lara-Lara, J. R. (1993). Phytoplankton biomass and primary productivity by size classes in the Gulf of Tehuantepec, Mexico. Journal of plankton research, 15(12), 1341-1358. https://doi.org/10.1093/plankt/15.12.1341

272. Roldán-Pérez, G. y Ramírez-Restrepo, J. J. (2008). Fundamentos de limnología neotropical (Vol. 15): Universidad de Antioquia.

273. Shumway, S. E. (1990). A review of the effects of algal blooms on shellfish and aquaculture. Journal of the World Aquaculture Society, 21(2), 65-104. https://doi.org/10.1111/j.1749-7345.1990.tb00529.x

274. Smayda, T. J. (1997). Bloom dynamics: physiology, behavior, trophic effects. Limnology and Oceanography, 42(5 part 2), 1132-1136. https://doi.org/10.4319/lo.1997.42.5_part_2.1132

275. Spalinger, K. & Bouwens, K. (2003). The roles of phosphorus and nitrogen in lake ecosystems: Regional Information Report.

276. Strickland, J. D. H. & Parsons, T. R. (1972). A practical handbook of seawater analysis. 2nd ed. Bull. Fish. Res. Board Can., 67, 311 pp.

277. Tapia-García, M., García-Abad, M. C., Carranza-Edwards, A. & Vázquez-Gutiérrez, F. (2007). Environmental characterization of the continental shelf of the Gulf of Tehuantepec, Mexico. Geofísica internacional, 46(4), 249-260. https://doi.org/10.22201/igeof.00167169p.2007.46.4.49

278. Tomas, C. R. (1997). Identifying marine phytoplankton: Academic press., Florida. 858 pp.

279. Trasviña, A. y E.D. Barton (1997). Los "Nortes" del Golfo de Tehuantepec: la circulación costera inducia por el viento. Contribuciones a la Oceanografía Física en México. Unión Geofísica Mexicana, Monografía. 3:25-46.

280. Utermöhl, H. (1958). Zur vervollkommnung der quantitativen phytoplankton methodik. Mitt int. Verein. Theor. Angew. Limnologie 9:1-38. https://doi.org/10.1080/05384680.1958.11904091

281. Amaya D., Armenteras D. (2012). Incidencia de incendios sobre la vegetación de Cundinamarca y Bogotá D. C, entre 2001 y 2010. Acta Biologica Colombia. 17(1), 143-158.

282. Aragao L, Malhi Y, Barbier N, Lima A, Shimabukuro Y, Anderson L. (2008). Interactions between rainfall, deforestation and fires during recent years in the Brazilian Amazonia. Philosophical Transactions of the Royal Society, 363, 1779-185. https://doi.org/10.1098/rstb.2007.0026

283. Armenteras, D., M. Romero and G. Galindo (2005) Vegetation fire in the savannas of the Llanos Orientales of Colombia. Journal of World Resource Review 17 (4): 531-543.

284. Armenteras, D., González, F., & Franco A. (2009). Distribución geográfica y temporal de incendios en Colombia utilizando datos de anomalías térmicas. Caldasia, 31(2): 303-318.

285. Armenteras, D., Retana, J., Molowny, R., Roman, R. M., Gonzalez, F., & Morales, M. (2011). Characterising fire spatial pattern interactions with climate and vegetation in Colombia. Journal of Agricultural and Forest Meteorology, 151 (3), 279-289. https://doi.org/10.1016/j.agrformet.2010.11.002

286. Jedlovec Gary (2017). GOES weather satellite imagery courtesy of the Earth Science Branch at the NASA George C. Marshall Space Flight in Huntsville, Alabama. The global composite satellite maps are courtesy of the NCEP Aviation Weather Center in Kansas City, Missouri.

287. Lauk, C., Erb, K-H. (2009). Biomass consumed in anthropogenic vegetation fires: global patterns and processes. Ecological Economics 69 (2), 328-334 https://doi.org/10.1016/j.ecolecon.2009.06.025

288. Merino de Miguel, S., Huesca M., Gonzalez F. (2010). Modis Reflectance and active fire data for burn mapping and assessment at regional level. Journal of Ecological Modelling. 67-74. https://doi.org/10.1016/j.ecolmodel.2009.09.015

289. Pereira G, Freitas S. Moraes E, Ferreira N, Shimabukuro Y, Rao V. (2009) Estimating tracegas and aerosol emissions over South America: Relationship between fire radiative energy released and aerosol optical depth observations. Journal of Atmospheric Environment. 6388-6397. https://doi.org/10.1016/j.atmosenv.2009.09.013

290. Pompa-García, M. y Sensibaugh,.M. (2014). Ocurrencia de incendios forestales y su teleconexión con fenómenos ENSO. CienciaUAT. 27(2): 06-10. https://doi.org/10.29059/cienciauat.v8i2.292

291. Pyne, S.J., Andrews, P.L., and Laven, R.D. (1996). Introduction to Wildland Fire. (2rded.) John Wiley & Sons, Inc. New York.

292. Villers M. (2006). Incendios forestales. Ciencias, 81, 60-66.

293. Rowell, A. and Moore, P. F. (2013). Global Review of Forest Fires. WWF. IUCN. [En línea]. Disponible en: http//www.envedu.gr/Documents/Global%20Review%20of%20Global%20Fires.pdf. Fecha de consulta: 20 de diciembre de 2013.

294. Velasco-Herrera, J. A., Flores Garnica, J. G., Marquez-Azúa, B. y López, S. (2013). Áreas de respuesta homogénea para el muestreo de combustibles forestales. Revista Mexicana de Ciencias Forestales. 4(15): 41-54. https://doi.org/10.29298/rmcf.v4i15.447

295. Aceves-Medina, G., Esqueda-Escárcega, G. M., Pacheco-Chávez, R., Zárate-Villafranco, A., Hernández-Alfonso, J. R. y Hernández-Trujillo, S. (2007). Cambios diarios en la composición y abundancia de copépodos planctónicos al sur de Bahía de La Paz (octubre de 2002). Hidrobiológica, 17(2), 185-188.

296. Barranco-Ramírez, E. Gómez, S. & Suárez-Morales, E. (2002) Supplementary description and illustrated record of Monstrilla gibbosa Suárez-Morales & Palomares-García, 1995 (Copepoda, Monstrilloida) from Sinaloa, México. Crustaceana, 74, 1279-1289. https://doi.org/10.1163/15685400152885237

297. Boxshall, G. & Walter, T. C. (2017). Poecilostomatoida. World of Copepods database. Retrieved from: http://www.marinespecies.org/copepoda/aphia.php?p=taxdetails&id=1103

298. Clark, E. & Nelson, D. R. (1997) Young whale sharks, Rhincodon typus, feeding on copepod bloom near La Paz, México. Environmental Biology of Fishes, 50, 63-73. https://doi.org/10.1023/A:1007312310127

299. De Silva-Davila, R. & Palomares-García, R. (2002) Distributional patterns of the euphausiid community in Bahía de La Paz, B.C.S., México. Contribution to the Study of East Pacific Crustaceans, 1, 109-125.

300. Drillet, G., Frouël, S., Sichlau, M. H., Jepsen, P. M., Højgaard, J. K., Joarder, A. K. & Hansen B. W. (2011). Status and recommendations on marine copepod cultivation for use as live feed. Aquaculture, 315, 155-166. https://doi.org/10.1016/j.aquaculture.2011.02.027

301. Hernández-Trujillo, S. (1999) Variability of community structure of Copepoda related to El Niño 1982-83 and 1987-88 along the west coast of Baja California Peninsula, Mexico. Fisheries Oceanography, 8 (4), 284-295. https://doi.org/10.1046/j.1365-2419.1999.00112.x

302. Hernández-Trujillo, S. y Esqueda-Escárcega, G.M. (2002) La diversidad de copépodos marinos en México. CICIMAR Oceánides, 17(1), 57-68.

303. Hernández-Trujillo, S., Palomares-García, R., López-Ibarra, G., Esqueda-Escárcega, G. y Pacheco-Chávez, R. (2004). Riqueza específica de copépodos en Bahía Magdalena, Baja California Sur, México. Anales del Instituto de Biología de la UNAM, Serie Zoológica, 75(2), 253-270.

304. Hernández-Trujillo, S., Zárate-Villafranco, A., Pacheco-Chávez, R., Esqueda-Escárcega, M. G., Hernández-Alfonso, J. R. y Aceves-Medina, G. (2008) Variación estacional de la producción de huevos del copépodo calanoideo Centropages furctaus (Dana, 1852) en la Bahía de La Paz, México. Hidrobiológica, 18, 61-67.

305. Huys, R. & Boxshall, G. A. (1991) Copepod evolution. London: The Ray Society.

306. Huys, R., Llewellyn-Hughes, J., Conroy-Dalton, S., Olson P. D., Spinks, J. N. & Johnston, D. A. (2007). Extraordinary host switching in siphonostomatoid copepods and the demise of the Monstrilloida: Integrating molecular data, ontogeny and antennulary morphology. Molecular Phylogenetics and Evolution, 43, 368-378. https://doi.org/10.1016/j.ympev.2007.02.004

307. Ketchum-Mejia, J. T. (2003). Distribución espacio-temporal y ecología alimentaria del tiburón ballena (Rhincodon typus) en la bahía de La Paz y zonas adyacentes en el Suroeste del Golfo de California. (Tesis de Maestría). Instituto Politécnico Nacional. Centro Interdisciplinario de Ciencias Marinas, La Paz, Baja California Sur, México.

308. Ketchum, J. T., Galván-Magaña, F. & Klimley, A. P (2012). Segregation and foraging ecology of whale sharks, Rhincodon typus, in the southwestern Gulf of California. Environmental Biology of Fishes, 96(6), 779-795. https://doi.org/10.1007/s10641-012-0071-9

309. Kozak, E., Franco-Gordo C., Suárez-Morales, E. & Palomares-García R. (2014). Seasonal and interannual variability of the calanoid copepod community structure in shelf waters of the Eastern Tropical Pacific. Marine Ecology Progress Series, 507, 95-110. https://doi.org/10.3354/meps10811

310. Lavaniegos, B. E. y González-Navarro, E. (1999). Grupos principales del zooplankton durante El Niño 1992-93 en el Canal de San Lorenzo, Golfo de California. Revista de Biología Tropical, 47, 129-140.

311. Lavaniegos, B. E., Heckel, G. y Ladrón de Guevara, P. (2012). Variabilidad estacional de copépodos y cladóceros de bahía de los Ángeles (Golfo de California) e importancia de Acartia clausi como alimento del tiburón ballena. Ciencias Marinas, 38(1A), 11-30. https://doi.org/10.7773/cm.v38i1A.2017

312. Mauchline, J. (1998). Advances in marine biology. The biology of calanoid copepods Vol. 33. Netherlands: Academic Press. https://doi.org/10.1016/S0065-2881(08)60233-3

313. Palomares-García, R. (1992). Análisis de la taxocenosis de los copépodos en el complejo lagunar de Bahía Magdalena-Almejas, Baja California Sur durante 1985-1986. Ciencias Marinas, 18(3), 29-43. https://doi.org/10.7773/cm.v18i3.902

314. Palomares-García, R. (1996). Estructura espacial y variación estacional de los copépodos en la Ensenada de la Paz. CICIMAR Oceánides, 11, 29-43.

315. Palomares-García, R. & Gómez-Gutiérrez, J. (1996). Copepod community structure at Bahia Magdalena, México during El Niño 1983-1984. Estuarine Coastal and Shelf Science, 43, 583-595. https://doi.org/10.1006/ecss.1996.0089

316. Palomares-García, R., Suárez-Morales, E. y Hernández-Trujillo, S. (1998). Catálogo de los copépodos (Crustacea) pelágicos del Pacífico Mexicano. México: CICIMAR/ECOSUR.

317. Pérez-Morales, A., Martínez-López, A. & Camalich-Carpizo, J. M. (2015). Dry weight, carbon, C/N ratio, hydrogen, and chlorophyll variation during exponential growth of selected microalgae species used in aquaculture. CICIMAR Oceánides, 30, 33-43. https://doi.org/10.37543/oceanides.v30i1.168

318. Razouls, C., de Bovée F., Kouwenberg, J. & Desreumaux N. (2017). Diversity and geographic distribution of marine planktonic copepods. Retrieved from: http://copepodes.obs-banyuls.fr/en

319. Signoret, M. & Santoyo, H. (1980). Aspectos ecológicos del plancton de la Bahía de La Paz, B.C.S. Anales del Instituto de Ciencias del Mar y Limnología, Universidad Nacional Autónoma de México, 7(2), 217-248.

320. Suárez-Morales, E. (2011). Diversity of the Monstrilloida (Crustacea: Copepoda). PLoS ONE 6(8). https://doi.org/10.1371/journal.pone.0022915

321. Suárez-Morales, E. & Palomares-García, R. (1995). A new species of Monstrilla (Copepoda: Monstrilloida) from a coastal system of the Baja California Peninsula, Mexico. Journal of Plankton Research, 17, 745-752. https://doi.org/10.1093/plankt/17.4.745

322. Suárez-Morales, E. & Gasca, R. (1998). Update checklist of the free-living marine Copepoda (Crustacea), of México. Anales del Instituto de Ciencias del Mar y Limnología, Universidad Nacional Autónoma de México, 69, 105-119.

323. Suárez-Morales, E. & Palomares-García, R. (1999). Cymbasoma californiense, a new monstrilloid (Crustacea: Copepoda: Monstrilloida) from Baja California, Mexico. Proceedings of Biological Society of Washington, 112, 189-198.

324. Suárez-Morales, E. & Morales-Ramírez, A. (2009). New species of Monstrilloida (Crustacea: Copepoda) from the Eastern Tropical Pacific. Journal of Natural History, 43, 1257-1271. https://doi.org/10.1080/00222930902894419

325. Suárez-Morales, E. & Kozak, E. R. (2012). Redescription of the poorly known planktonic copepod Pontellopsis lubbockii (Giesbrecht, 1889) (Pontelli234, 1-18. https://doi.org/10.3897/zookeys.234.3933

326. Suárez-Morales, E., Franco-Gordo, C. & Saucedo, M. (2000). On the pelagic copepod (Crustacea: Copepoda) community of the central Mexican tropical Pacific (autumn, 1990). Crustaceana, 73(6), 751-761. https://doi.org/10.1163/156854000504778

327. Sokal, R. R. & Rohlf, F. J. (1994). Biometry. The principles and practice of statistics in biological research (3rd ed.). New York: Freeman.

328. WORMS (2017). World register of marine species. Retrieved from: http://www.marinespecies.org/aphia.php?p=taxdetails&id=1100.

329. Avilés-Quevedo, A. (2006). Engorda de pargo en jaulas flotantes. En: Hernández-Martínez, C., Rangel Dávalos, M., Garduño Dionate y Mora Cervantes, I. eds. Memorias de la Segunda Reunión Nacional de la Red de Cultivo de Peces Marinos. pp. 73-79. Secretaría de Agricultura, Ganadería, Desarrollo Rural, Pesca y Alimentación. Hermosillo (México).

330. Álvarez-Lajonchère, L. y Hernández Molejón O. G. (2001). Producción de juveniles de peces estuarinos para un centro en América Latina y el Caribe: diseño, operación y tecnologías. The World Aquaculure Society, Baton Rouge, LA.

331. Alvarez-González, C. A., Cervantes-Trujano, M., Tovar-Ramírez, D., Conklin, D. E., Nolasco, H., Gisbert, E. & Piedrahita, R. (2006). Development of digestive enzymes in California halibut Paralichthys californicus larvae. Fish Physiology and Biochemistry, 31(1), 83-93. https://doi.org/10.1007/s10695-006-0003-8

332. Alvarez-González, C. A., Moyano-López, F. J., Civera-Cerecedo, R., Carrasco- Chávez, V., Ortíz-Galindo, J. L., Nolasco-Soria, H. & Dumas, S. (2010). Development of digestive enzyme activity in larvae of spotted sand bass Paralabrax maculatofasciatus II: Electrophoretic analysis. Fish Physiology and Biochemistry, 36(1), 29-37. https://doi.org/10.1007/s10695-008-9276-4

333. Bagarinao, T. (1986). Yolk resorption, onset of feeding and survival potential of larvae of three tropical marine fish species reared in the laboratory. Marine Biology, 91, 449-459. https://doi.org/10.1007/BF00392595

334. Balon, E. K. (1990). Epigenesis of an epigeneticist: the development of some alternative concepts on the early ontogeny and evolution of fishes. Guelph Ichthyology Reviews, 1, 1-42.

335. Balon, E. K. (2001). Saltatory ontogeny and the life-history model: neglected processes and patterns of evolution. Journal of Bioeconomics, 3: 1-26. https://doi.org/10.1023/A:1016305005962

336. Balon, E. K. (2002). Epigenetic processes, when natura non facit saltum becomes a myth, and alternative ontogenies a mechanism of evolution. Environmental Biology of Fishes, 65, 1-35. https://doi.org/10.1023/A:1019619206215

337. Blaxter, J. H. S. (1988). Pattern and variety in development. En: Hoar, W. S. & Randall, D. J. eds. Fish Physiology, Vol. XI. pp. 1-58. London, Academic Press. https://doi.org/10.1016/S1546-5098(08)60198-3

338. Blaxter, J.H. (1992). The effect of temperature on larval fishes. Netherlands Journal of Zoology, 42, 336-357. https://doi.org/10.1163/156854291X00379

339. Browman, H. I. S. (1989). Embryology, ethology and ecology of ontogenetic periods critical in fish. Brain, Behavior and Evolution, 34, 5-12. https://doi.org/10.1159/000116486

340. Cuenca-Soria, C. A., Ortíz-Galindo, J. L., Tovar-Ramírez, D., Álvarez-González, C. A., Ochoa-Báez, R. I., Murillo-Álvarez, J. I. (2013). Indicadores del Desarrollo morfofuncional durante la ontogenia inicial de peces teleósteos: una revisión. En: Cruz Suárez, L. E., Ricque Marie, D., Tapia Salazar, M., Nieto López, M. G., Villarreal Cavazo, D. D., Gamboa Delgado, J., Álvarez-González C. A. eds. Contribuciones recientes en alimentación y nutrición acuícola. 20-22 de Noviembre. pp. 374-402. San Nicolás de los Garza, N.L. Universidad Autónoma de Nuevo León, Monterrey, Nuevo León, México.

341. Cunha, M. A., Quental, H., Barradas, A., Pousão-Ferreira, P., Cabrita E. & Engrola, S. (2009). Rearing larvae of dusky grouper, Epinephelus marginatus (Lowe, 1834), (Pisces: Serranidae) in a semi-extensive mesocosm. Advances in Early Life History study of Fish, Scientia Marina, 201-212. https://doi.org/10.3989/scimar.2009.73s1201

342. Darias, M. J., Zambonino, J. L., Hugot, K., Cahu, C. & Mazurais, D. (2008). Gene expression patterns during the larval development of European sea bass (Dicentrarchus labrax) by microarray analysis. Marine Biotechnology, 10(4), 416-428. https://doi.org/10.1007/s10126-007-9078-1

343. Divanach, P. & Kentouri, M. (2000). Hatchery techniques for specific diversification in Mediterranean finfish larviculture. En: Basurco, B. ed. Mediterranean marine aquaculture finfish species diversification. 47, 75-87. Cah. Options Méditerr.

344. Doi, M. & Singhagraiwan, T. (1993). Biology and culture of the red snapper, Lutjanus argentimaculatus. Res. Proj. Fish. Res. Dev. pp. 51. Kingdom of Thailand.

345. Eschmeyer, W. N., Fricke, R. & van der Laan, R. (2017). Catalog of fishes: genera, species, references. Recuperado de http://researcharchive.calacademy.org/research/ichthyology/catalog/fishcatmain.asp.

346. Falk-Petersen, I. B. (2005). Comparative organ differentiation during early life stages of marine fish. Fish and Shellfish Immunology, 19, 397-412. https://doi.org/10.1016/j.fsi.2005.03.006

347. Ferraresso, S., Bonaldo, A., Parma, L., Cinotti, S., Massi, P., Bargelloni, L. y Gatta, P. P. (2013). Exploring the larval transcriptome of the common sole (Solea solea L.). BMC Genomics, 14, 315. https://doi.org/10.1186/1471-2164-14-315

348. Galaviz, M. A., López, L. M., García Gasca, A., Álvarez González, C. A., True, C.D. & Gisbert, E. (2015). Digestive system development and study of acid and alkaline protease digestive capacities using biochemical and molecular approaches in totoaba (Totoaba macdonaldi) larvae. Fish Physiology and Biochemistry, 41(5), 1117-1130. https://doi.org/10.1007/s10695-015-0073-6

349. García-Gasca, A., Galaviz, M. A., Gutiérrez, J. N., & García-Ortega, A. (2006). Development of the digestive tract, trypsin activity and gene expression in eggs and larvae of the bullseye puffer fish Sphoeroides annulatus. Aquaculture, 251(2-4), 366-376. https://doi.org/10.1016/j.aquaculture.2005.05.029

350. Grini, A., Hansen, T., Berg, A., Wargelius, A. & Fjelldal, P. G. (2011). The effect of water temperature on vertebral deformities and vaccine-induced abdominal lesions in Atlantic salmon, Salmo salar L. Journal of Fish Diseases, 34, 531-546. https://doi.org/10.1111/j.1365-2761.2011.01265.x

351. Gisbert, E., Ortiz-Delgado, J. B. & Sarasquete, C. (2008). Nutritional cellular biomarkers in early life stages of fish. Histology and Histopathology, 23, 1525-1539.

352. Gisbert, E., Morais, S., Moyano, F. J. (2013). Feeding and digestion, in Larval Fish Aquaculture, Qin, J. G. eds. pp. 230. Nova Publishers.

353. Hamre, K., Yúfera, M., Rønnestad, I., Boglione, C., Conceição, L. E. C. & Izquierdo, M. (2013). Fish larval nutrition and feed formulation: Knowledge gaps and bottlenecks for advances in larval rearing. Reviews in Aquaculture, 5(SUPPL.1). https://doi.org/10.1111/j.1753-5131.2012.01086.x

354. Izquierdo, M. S., Fernández-Palacios, H. & Tacon, A. G. J. (2001). Effect of broodstock nutrition on reproductive performance of fish. Aquaculture, 197, 25-42. https://doi.org/10.1016/S0044-8486(01)00581-6

355. Izquierdo, M. S. & Lall, S. (2004). Experimental design for lipid research. Workshop on Methodologies in Fish Nutrition Research. 2-7 May 2004, Phuket, Thailand.

356. Jacobson, G., Muncaster, S., Mensink, K., Forlenza, M., Elliot, N., Broomfield, G., Signal, B. & Bird, S. (2017). Omics and cytokine discovery in fish: Presenting the Yellowtail kingfish (Seriola lalandi) as a case study. Developmental and Comparative Immunology, https://doi.org/10.1016/j.dci.2017.04.001

357. Johnston, I. A. (1993). Temperature influences muscle differentiation and the relative timing of organogenesis in herring (Clupea harengus) larvae. Marine Biology, 116, 363-379. https://doi.org/10.1007/BF00350053

358. Kang, C. B., Lee, S. H., Hwang, J. H. & Han,K. H. (2014). Morphological Development of larvae and juveniles of Acanthopagrus schlegeli. Development & Reproduction, 18(4), 311-319. https://doi.org/10.12717/DR.2014.18.4.311

359. Kamler, E. K. (2002). Ontogeny of yolk-feeding fish: an ecological perspective. Reviews in Fish Biology and Fisheries, 12(1), 79-103. https://doi.org/10.1023/A:1022603204337

360. Kamler, E. K. (2005). Parent‐egg‐progeny relationships in teleost fishes: an energetics perspective. Reviews in Fish Biology and Fisheries, 15, 399-421. https://doi.org/10.1007/s11160-006-0002-y

361. Kamler, E. K. (2008). Resource allocation in yolk-feeding. Reviews in Fish biology and Fisheries, 18, 143-200. https://doi.org/10.1007/s11160-007-9070-x

362. Kjorsvik, E., Hoehne-Reitan, K. & Reitan, K. I. (2003). Egg and larval quality criteria as predictive measures for juvenile production in turbot (Scophthalmus maximus L.). Aquaculture, 227(1-4), 9-20. https://doi.org/10.1016/S0044-8486(03)00492-7

363. Kolkovski, S., Curnow, J. & King, J. (2004). Intensive rearing system for fish larvae research. (3- 4), 295- 308. https://doi.org/10.1016/j.aquaeng.2004.05.005

364. Ma, Z., Zhang. N., Qin, J. G., Fu, M. & Jiang, S. (2016). Water temperature induces jaw deformity and bone morphogenetic proteins (BMPs) gene expression in golden pompano Trachinotus ovatus larvae. SpringerPlus, 5, 1475. https://doi.org/10.1186/s40064-016-3142-0

365. Martínez-Lagos, R., Tovar-Ramírez, D., Gracía-López, V. & Lazo, J. P. (2014). Changes in digestive enzyme activities during larval development of leopard grouper (Mycteroperca rosacea). Fish Physiology and Biochemistry, 40(3), 773-785. https://doi.org/10.1007/s10695-013-9884-5

366. Martínez-Montaño, E., González-Álvarez, K., Lazo, J. P., Audelo-Naranjo, J. M. & Vélez-Medel, A. (2014). Morphological development and allometric growth of yellowtail kingfish Seriola lalandi V. larvae under culture conditions. Aquaculture Research, 47(4), 1277-1287. https://doi.org/10.1111/are.12587

367. Martínez-Montaño, E. & Lazo, J. P. (2012). In Vitro Protein Digestibility of Dietary Ingredients Throughout Ontogeny of California Halibut, Paralichthys californicus, Larvae. Journal of the World Aquaculture Society, 43(1), 51-62. https://doi.org/10.1111/j.1749-7345.2011.00547.x

368. Mata-Sotres, J. A., Lazo, J. P., & Baron-sevilla, B. (2015). Effect of age on weaning success in totoaba (Totoaba macdonaldi) larval culture. Aquaculture, 437, 292-296. https://doi.org/10.1016/j.aquaculture.2014.11.037

369. Mazurais, D., Darias, M., Zambonino-Infante, J. & Cahu, C., (2011). Transcriptomics for understanding marine fish larval development. Canadian Journal of Zoology. 89, 599-611. https://doi.org/10.1139/z11-036

370. Mitra, G., Mukhopadhyay, P. K. & Ayyappan, S. (2008). Modulation of digestive enzyme activities during ontogeny of Labeo rohita larvae fed ascorbic acid enriched zooplankton. Comparative Biochemistry and Physiology, 149(A), 341-350. https://doi.org/10.1016/j.cbpa.2008.01.001

371. Moguel-Hernández, I., Peña, R., Nolasco-Soria, H., Dumas, S. & Hinojosa-Baltazar, P. (2013). Egg quality criteria in Pacific red snapper (Lutjanus peru). Aquaculture Research, 46(4), 909-917. https://doi.org/10.1111/are.12248

372. Moguel-Hernández, I., Peña, R., Andree, K. B., Tovar-Ramirez, D., Bonacic, K., Dumas, S. & Gisbert, E. (2016). Ontogeny changes and weaning effects in gene expression patterns of digestive enzymes and regulatory digestive factors in spotted rose snapper (Lutjanus guttatus) larvae. Fish Physiology and Biochemistry, 42(5), 1319-1334. https://doi.org/10.1007/s10695-016-0220-8

373. Moteki, M., Yoseda, K., Sahin, T., Ustundag, C. & Kohno, H. (2001). Transition from endogenous to exogenous nutritional sources in larval Black Sea turbot Psetta maxima. Fisheries Science, 67, 571-578. https://doi.org/10.1046/j.1444-2906.2001.00292.x

374. Muguet, J. B., Lazo, J. P., Conklin, D. E. & Piedrahita, R. H. (2011). Evaluation of weaning performance of California halibut (Paralichthys californicus) larvae using growth, survival and digestive proteolytic activity. Aquaculture Nutrition, 17(2). https://doi.org/10.1111/j.1365-2095.2010.00786.x

375. Navarrete, P. & Tovar, D. (2014). Use a yeast as probiotics in fish aquaculture. In. Sustainable Aquaculture Techniques. En: Hernandez-Vergara, M. P., Perez- Rostro, C. I. eds. pp. 135-172. https://doi.org/10.5772/57196

376. Nelson, J. S., Grande, T. C. & Wilson, M. V. H. (2016). Fishes of the World (5th ed.) New Jersey: Wiley. https://doi.org/10.1002/9781119174844

377. Padrós, F., Villalta, M., Gisbert, E. & Estévez, A. (2011). Morphological and histological study of larval development of the Senegal sole Solea senegalensis: an integrative study. Journal of Fish Biology 79(1), 3-32. https://doi.org/10.1111/j.1095-8649.2011.02942.x

378. Papandroulakis, N., Kentouri, M., Maingot , E. & Divanach, P. (2004). Mesocosm: a reliable technology for larval rearing of Diplodus puntazzo and Diplodus sargus sargus. Aquaculture International 12(4- 5), 345-355. https://doi.org/10.1023/B:AQUI.0000042134.21211.ab

379. Patel, A., Dettleff, P., Hernandez, E. & Martínez V. (2016). A comprehensive transcriptome of early development in yellowtail kingfish (Seriola lalandi). Molecular Ecology Resources, 16, 364.376. https://doi.org/10.1111/1755-0998.12451

380. Peña, R., Dumas, S. & Contreras-Olguín, M. (2016). Organogenesis of the digestive system in Pacific red snapper (Lutjanus peru) larvae. Aquaculture Research, https://doi.org/10.1111/are.12991

381. Pérez-Morales, A. (2006). Efecto de diferentes microalgas en las tasas vitales de Euterpina acutifrons (Dana, 1848) (Copepoda: Harpacticoida) en condiciones controladas. (Tesis de Maestría). Centro Interdisciplinario de Ciencias Marinas-Instituto Politécnico Nacional, México.

382. Pittman, K. Skiftesvik, A. B. & Harboe, T. (1989). Effect of temperature on growth rates and organogenesis in the larvae of halibut (Hipooglossus hipooglossus L.). Rapports et procès-verbaux des réunions, 191, 421-430.

383. Polo, A., Yufera, M. & Pascual, E. (1991). Effects of temperature on egg and larval development of Sparus aurata L. Aquaculture, 92, 367-375. https://doi.org/10.1016/0044-8486(91)90042-6

384. Radoni, M., López, A. V., Oka, M. y Aristizábal, E. O. (2005). Effect of the incubation temperature on the embryonic development and hatching time of eggs of the red porgy Pagrus pagrus (Linne, 1758) (Pisces: Sparidae). Revista de Biología Marina y Oceanografía 40(2), 91-99. https://doi.org/10.4067/S0718-19572005000200001

385. Rodríguez-Aguilera, A. (2009). Avances y Perspectivas en Microdietas para Larvas de Peces. Revista AquaTIC, (30), 1-18.

386. Rønnestad, I., Thorsen, A. & Finn, R. N. (1999). Fish larval nutrition: a review of recent advances in the roles of amino acids. Aquaculture, 177, 201-216. https://doi.org/10.1016/S0044-8486(99)00082-4

387. Rønnestad, I., Yúfera, M., Ueberchär, B., L. Ribeira, Saele. O. & Boglione, C. (2013). Feeding behavior and digestive physiology in larval fish: current knowledge, and gaps and bottlenecks in research. Reviews in Aquaculture, 5(1), 559-598. https://doi.org/10.1111/raq.12010

388. Schipp, G., Bosmans, J. & Humphrey, J. (2007). Northern Territory Barramundi Farming Handbook. Fishery Report No. 89, Department of Primary Industry, Fisheries and Mines, Northern Territory.

389. Srichanun, M., Tantikitti, C., Utarabhand. P. & Kortner, T. M. (2013). Gene expression and activity of digestive enzymes during the larval development of Asian seabass (Lates calcarifer). Comparative Biochemistry and Physiology. 165B(1), 1-9. https://doi.org/10.1016/j.cbpb.2013.02.005

390. Takeuchi, T. (2014). Progress on larval and juvenile nutrition to improve the quality and health of seawater fish: A review. Fisheries Science, 80(3), 389-403. https://doi.org/10.1007/s12562-014-0744-8

391. Teles, A., Salas-Leiva, J., Álvarez-González, C. A., Gisbert, E., Ibarra-Castro, L., Pérez, J. C. & Tovar-Ramírez, D. (2017). Histological study of the gastrointestinal tract in longfin yellowtail (Seriola rivoliana) larvae. https://doi.org/10.1007/s10695-017-0397-5

392. Uribe, C., Folch, H., Enriquez, R. & Morán, G. (2011). Innate and adaptive immunity in teleost fish: a review. Veterinarni Medicina, 56(10), 486-503. https://doi.org/10.17221/3294-VETMED

393. Yúfera, M. & Darias, M. J. (2007). The onset of exogenous feeding in marine fish larvae. Aquaculture, 268, 53-63. https://doi.org/10.1016/j.aquaculture.2007.04.050

394. Zacarías-Soto, M., Muguet, J. B. & Lazo, J. P. (2006) Proteolytic activity in California halibut larvae (Paralichthys californicus) Jounal of the World Aquaculture. Society, 37, 175-185. https://doi.org/10.1111/j.1749-7345.2006.00024.x

395. Zambonino Infante, J. L., Cahu, C. L. & Peres A. (1997). Partial substitution of di- and tripeptides for native proteins in sea bass diet improves Dicentrarchus labrax development. Journal of Nutrition, 127, 608-614. https://doi.org/10.1093/jn/127.4.608

396. Zambonino, J. L. & Cahu, C. (2007). Dietary modulation of some digestive enzymes and Metabolic processes in developing marine fish: Applications to diet formulation. Aquaculture, 268(1-4), 98-105. https://doi.org/10.1016/j.aquaculture.2007.04.032

397. Zavala-Leal, I., Dumas, S., López-Villegas, E. O., Peña, R., Contreras-Olguín, M., Flores-Montijo, L. & De La Cruz-Agüero, J. (2013). Structural development of Pacific red snapper Lutjanus peru from hatching to the onset of first feeding. Aquaculture Research, 46(5), https://doi.org/10.1111/are.12272

398. Zouiten, D., Khemis, I. B., Masmoudi, A. S., Huelvan, C. & Cahu, C. (2011). Comparison of growth, digestive system maturation and skeletal development in sea bass larvae reared in an intensive or a mesocosm system. Aquaculture Research 42(11), 1723-1736. https://doi.org/10.1111/j.1365-2109.2010.02773.x

399. Águila-Ramírez, R.N. (2012). Caracterización y bioactividad de bacterias asociadas a la esponja Aplysina gerardogreeni del Golfo de California. (Tesis Doctoral) Instituto Politécnico Nacional, Centro Interdisciplinario de Ciencias Marinas, Baja California Sur, México.

400. Águila-Ramírez, R. N., Hernández-Guerrero, C. J., González-Acosta, B., Id-Daoud, G. Hewitt, S. Pope, J. & Hellio, C. (2014). Antifouling activity of symbiotic bacteria from sponge Aplysina gerardogreeni. International Biodeterioration and Biodegradation, 90, 64-70. https://doi.org/10.1016/j.ibiod.2014.02.003

401. Águila-Ramírez, R. N., Arenas-González, A., Hernández-Guerrero, C. J., González- Acosta, B., Veron, B. & Hellio, C. (2012). Antimicrobial and antifouling activities achieved by extracts of seaweeds from Gulf of California, Mexico. Hidrobiológica, 22(1), 8-15.

402. Amita J., Xia A., Gunning D., Burnell G. & Murphy D. J. (2016). Seaweed Biofuel Derived from Integrated Multi-trophic. Aquaculture International Journal of Environmental Science and Development, 7(11), 805-809. https://doi.org/10.18178/ijesd.2016.7.11.885

403. Becerril-Espinosa, A., Guerra-Rivas, G., Ayala-Sánchez, N. & Soria-Mercado, I. E. (2012). Antitumor activity of Actinobacteria isolated in marine sediment from Todos Santos Bay, Baja California, Mexico. Revista de Biología Marina y Oceanografía, 47(2), 317-325. https://doi.org/10.4067/S0718-19572012000200013

404. Becerril-Espinoza, A., Freel, K. C., Jensen, P. R. & Soria-Mercado, I. E. (2013). Marine Actinobacteria from the Gulf of California: diversity, abundance and secondary metabolite biosynthetic potential. Antonie Van Leeuwenhoek, 103(4), 809-819. https://doi.org/10.1007/s10482-012-9863-3

405. Blunt, J. W., Copp, B. R., Keyzers, R. A., Munro, M.H.G. & Prinsep, M. R. (2016). Marine Natural products. Natural Products Report, 33, 382-431. https://doi.org/10.1039/C5NP00156K

406. Carballo, J. L., Zubia, E. & Ortega, M. J. (2006). Biological and chemical characterizations of three new species of Dysidea (Porifera: Demospongiae) from the Pacific Mexican coast. Biochemical Systematics and Ecology, 34, 498-508. https://doi.org/10.1016/j.bse.2005.11.014

407. Carballo, J. L., Yañez, B., Zubía, E., Ortega, M. J. & Vega C. (2010). Culture of explants from the sponge Mycale cecilia to obtain bioactive mycalazal-type metabolites. Marine Biotechnology, 12, 516-525. https://doi.org/10.1007/s10126-009-9235-9

408. Cardoso-Martínez, F., Becerril-Espinosa, A., Barrila-Ortiz, C., Torres-Beltrán, M., Ocampo-Álvarez, H., Iñiguez-Martínez, A. M. & Soria-Mercado, I. E. (2015). Antibacterial and cytotoxic bioactivity of marine Actinobacteria from Loreto Bay National Park, Mexico. Hidrobiológica, 25 (2), 223-229.

409. Chojnacka, K., Michalak, I., Dmytryk, A., Gramza, M., Słowiński, A. & Górecki, H. (2015). Algal Extracts as plant growth biostimulants. In: Kim, S. K. & Chojnacka, K. eds. Marine algae extracts: processes, products, and applications. (1st ed.) pp 1-14. Germany. Wiley-VCH Verlag GmbH & Co. https://doi.org/10.1002/9783527679577.ch11

410. Di Filippo-Herrera, D. A. (2014). Variación de la composición química y actividad biológica del alga café Sargassum horridum (Setchell & Gardner, 1924) de la Bahía de La Paz, B. C. S., México. (Tesis de Maestría) Instituto Politécnico Nacional Centro Interdisciplinario de Ciencias Marinas, Baja California Sur, México.

411. Donia, M. & Hamman M. (2003). Marine natural products and their applications as anti-infective agents. Lancet Infectious Diseases, 3, 338-348. https://doi.org/10.1016/S1473-3099(03)00655-8

412. Encarnación, R., Carrasco, D. G., Espinoza, M., Anthoni, U., Nielsen P. N. & Christophersen, C. (1989). Nepthyside A, Proposed structure of a triterpenoid tetraglycoside from the Pacific sea cucumber, Neothyone gibbosa. Journal of Natural Products, 52(2), 248-251. https://doi.org/10.1021/np50062a004

413. Encarnación, R., Murillo-Álvarez, J. I., Christophersen, C., Chan-Bacab, M., García-Reirz, M. L. & Zacchino. S. (2006). Leishmanicidal, antifungal and cytotoxic activity of triterpenoid glycosides isolated from the sea cucumber Neothyone gibbosa. Natural Products Communications, 1(7), 541-548. https://doi.org/10.1177/1934578X0600100705

414. Encarnación-Dimayuga, R., Muñoz-Ochoa, M., Carsten, C., Esquivel, B., García, A., Delgado, G., Molina-Salinas, G. M. & Said-Fernández, S. (2008). Isolation of a new epidioxy sterol with antituberculosis activity and sepesteonol from the Marine Sponge Aplysina gerardogreeni (Demospongiae). Natural Products Communications. 3, 1-4.

415. Encarnación-Dimayuga, R., Ramírez, M. R. & Luna-Herrera, J. (2003). Aerothionin, a bromotyrosine derivative with antimycobacterial activity from the marine sponge Aplysina gerardogreeni (Demospongia). Pharmaceutical Biology, 41, 384-387.

https://doi.org/10.1076/phbi.41.5.384.15946

416. Espinosa, H. (2004). El Pacífico mexicano. Ciencias, 76, octubre-diciembre, 14-21.

417. Gandara-Zamudio, A. (2011). Actividad antibacteriana y citotóxica de diferentes morfologías de la esponja Aplysina gerardogreeni de Punta Arena de la Ventana, B.C.S., México. (Tesis de Licenciatura). Universidad Autónoma de Baja California Sur, Baja California Sur, México.

418. García-López, E. B. (2016). Evaluación de la actividad antiinflamatoria de extractos y fracciones de macroalgas de Baja California Sur, México. (Tesis de Maestría), Instituto Politécnico Nacional, Centro Interdisciplinario de Ciencias Marinas, Baja California Sur, México.

419. García-Zamora, G. M. (2017). Stephanocytis dioica (Gardner 1913) como fuente de polisacáridos sulfatados con actividad anticoagulante. (Tesis Licenciatura) Universidad Autónoma de Baja California Sur, Baja California Sur, Mexico.

420. González-Castro, A. L., Muñoz Ochoa, M. & Rodríguez Cuautle, A. (2014). Repellent activity of marine macroalgae extracts against Diaphorina citri. Journal of Chemical, Biological and Physical Sciences, 4(5), 27-30.

421. Hernández-Guerrero, C. J., Zubia, E., Ortega, M. J. & Carballo, J. L. (2006). Sesterterpene metabolites from the sponge Hyatella intestinalis. Tetrahedron, 62(23), 5392-5400. https://doi.org/10.1016/j.tet.2006.03.075

422. Hernández-Guerrero, C. J., Zubia, E., Ortega, M. J. & Carballo, J. L. (2007). Cytotoxic dibromotyrosine-derived metabolites from the sponge Aplysina gerardogreeni. Bioorganic & Medicinal Chemistry, 15(15), 5275-5282. https://doi.org/10.1016/j.bmc.2007.05.014

423. Íñiguez-Martínez, A. M., Cardoso-Martínez, F., de la Rosa, J., Cueto, M., Díaz-Marrero, A., Darias, J., Becerril-Espinosa, A., Plata-Rosas, L. J. & Soria-Mercado, I. E. (2016). Compounds isolated from Salinispora arenícola of the Gulf of California, México. Revista de Biología Marina y Oceanografía, 51(1), 161-170. https://doi.org/10.4067/S0718-19572016000100015

424. Juárez-Espinoza, P. A. (2010). Determinación de la actividad biológica de los extractos orgánicos del erizo de mar Diadema mexicanum (A. Agaziss, 1863). (Tesis de Licenciatura). Universidad Autónoma de Baja California Sur, Baja California Sur, México.

425. Kelecom, A. (2002). Secondary metabolites from marine microorganisms. Anais da Academia Brasileira de Ciências, 74(1), 151-170. https://doi.org/10.1590/S0001-37652002000100012

426. Kılınç B., Cirik S., Turan G., Tekogul H. & Koru E. (2013). Seaweeds for Food and Industrial Applications Agricultural and Biological Sciences. In: Muzzalupo, I. ed. Food Industry. pp. 758. Publisher:InTech. https://doi.org/10.5772/55834

427. Lara-Lara, J. R., et al. (2008). Los ecosistemas costeros, insulares y epicontinentales. En: Conabio. Capital natural de México, Vol. I, Conocimiento actual de la biodiversidad. pp. 109-134. México: Offset Rebosán, S.A. de C.V.

428. Leal M. C., Puga J., Seródio J., Gomes, N. C. M. & Calado, R. (2012). Trends in the discovery of new marine natural products from invertebrates over the last two decades - Where and what are we bioprospecting? PLoS ONE, 7(1), e30580. https://doi.org/10.1371/journal.pone.0030580

429. Maldonado L. A., Fragoso-Yañez, D., Pérez-García, A., Rosellón-Druker, J. & Quintana E. T. (2009). Actinobacterial diversity from marine sediments collected in Mexico. Antonie Van Leeuwenhoek, 95, 111-120. https://doi.org/10.1007/s10482-008-9294-3

430. Mendoza-Alcalá, J. M., Villegas Silva, V. A., Chequer, N. A. y Muñoz Ochoa, M. (2016). Caracterización fitoquímica y evaluación de la actividad anticancerígena de Sargassum lapazeanum Setchell & N.L. Gardner (Ochrophyta: Fucales, Phaeophyceae). p. 48. 12a. Reunión Internacional de In vestigación de Productos Naturales. 18-20 de Mayo de 2016, Xalapa, Veracruz, México.

431. Montaser, R. & Luesch, H. (2011). Marine natural products: a new wave of drugs? Future Medicinal Chemistry, 3(12), 1475-1489. https://doi.org/10.4155/fmc.11.118

432. Montes-Plascencia, C. I., Hernández-Guerrero, C. J., González-Acosta B. & Águila Ramírez, R. N. (2010). Seasonal variation of antibacterial activity of Aplysina gerardogreeni from the Gulf of California. CICIMAR-Oceánides, 25(1), 79-81. https://doi.org/10.37543/oceanides.v25i1.82

433. Montes-Plascencia, C. I. (2013). Aislamiento, identificación molecular y bioactividad de bacterias Gram positivas asociadas a la esponja Aplysina clathrata. (Tesis de Maestría) Instituto Politécnico Nacional, Centro Interdisciplinario de Ciencias Marinas, Baja California Sur, México.

434. Munro, M. H. G., Blunt, J. W., Dumdei, E .J., Hickford, S. J. H., Lill, R. E., Li, S., Battershill, C. N. & Duckworth, A. R. (1999). The discovery and development of marine compounds with pharmaceutical potential. Journal Biotechnology, 70, 15-25. https://doi.org/10.1016/S0168-1656(99)00052-8

435. Muñoz-Ochoa M. (2010). Potencial farmacológico de algas marinas de Baja California Sur, México. (Tesis Doctoral). Instituto Politécnico Nacional, Centro Interdisciplinario de Ciencias Marinas, Baja California Sur, México.

436. Muñoz-Ochoa M., Murillo-Alvarez, J. I., Rodríguez-Montesinos, Y. E., Hernández- Carmona, G., Arvizu-Higuera, D. L., Peralta-Cruz, J. & Lizardi-Mendoza, J. (2009). Anticoagulant screening of marine algae from Mexico, and partial characterization of active sulfated polysaccharide from Eisenia arborea. CICIMAR Oceánides, 24(1), 15-29. https://doi.org/10.37543/oceanides.v24i1.52

437. Muñoz Ochoa, M., Murillo-Álvarez, J. I., Zermeño Cervantes, L. A., Martínez Díaz, S. F. & Riosmena Rodríguez, R. (2010). Screening of extracts of algae from Baja California Sur, Mexico as reversers of the antibiotic resistance of some pathogenic bacteria. European Review for Medical and Pharmacological Sciences, 14, 739-747.

438. Newman, D. J. & Cragg, G. M. (2004). Advanced preclinical and clinical trials of natural products and related compounds from marine sources. Current Medical Chemistry, 11, 1693-1713. https://doi.org/10.2174/0929867043364982

439. Ortega, M. J., Zubía, E., Sánchez, M. C. & Carballo, J. L. (2008). Cembrane Diterpenes from the Gorgonian Leptogorgia laxa. Journal of Natural Products, 71, 1637-1639. https://doi.org/10.1021/np8002639

440. Ortega, M. J., Zubia, E., Sánchez, M. C., Salva, J. & Carballo, J. L. (2010). Structure and cytotoxicity of new metabolites from the sponge Mycale cecilia. Tetrahedron, 60, 2517-2524. https://doi.org/10.1016/j.tet.2004.01.056

441. Ortíz-Aguirre, I. (2012). Actividad biológica de esponjas y su relación con la complejidad de la comunidad bentónica en la Bahía de La Paz, B.C.S., México. (Tesis de Maestría) Instituto Politécnico Nacional, Centro Interdisciplinario de Ciencias Marinas, Baja California Sur, México.

442. Osuna-Ruiz, I., López-Saiz, C. M., Burgos-Hernández, A., Velázquez, C., Nieves-Soto, M & Hurtado-Oliva, M. A. (2016). Antioxidant, antimutagenic and antiproliferative activities in selected seaweed species from Sinaloa, Mexico. Pharmaceutical Biology, 54(10), 2196-2210. https://doi.org/10.3109/13880209.2016.1150305

443. Parera-Valadez, Y. (2012). Búsqueda de actividad antimicrobiana en bacterias heterótrofas asociadas a la esponja Mycale sp. de la Bahía de La Paz, BCS, (Tesis de Licenciatura). Universidad Autónoma de Baja California Sur, Baja California Sur, México.

444. Pardo Fuentes P. E. (2017). Evaluación de lectinas de origen algal como agentes inhibidores de la infección del virus Dengue. (Tesis Doctoral) Instituto Politécnico Nacional, Centro Interdisciplinario de Ciencias Marinas, Baja California Sur, México.

445. Pedroche, F. F. & Santiés, G. A. (2003). Ficología marina mexicana. Diversidad y problemática actual. Hidrobiológica, 13, 23-32.

446. Pérez-García, E., Zubía, E., Ortega, M. J. & Carballo, J. L. (2005). Merosesquiterpenes from Two Sponges of the Genus Dysidea. Journal Natural Products, 68, 653-658. https://doi.org/10.1021/np040237z

447. Penesyan, A., jelleberg, S., & Egan, S. (2010). Development of Novel Drugs from Marine Surface Associated Microorganisms. Marine Drugs, 8(3), 438-459. https://doi.org/10.3390/md8030438

448. Proksch, P., Edrada-Ebel, R. & Ebel, R. (2003). Drugs from the Sea - Opportunities and Obstacles. Marine Drugs, 1, 5-17.

https://doi.org/10.3390/md101005

449. Rinehart, L. K., D. P. Shaw, S. L. Shield, B. J. Gloer, C. G. Harbour, E. S. M. Koker, D. Samain, E. R. Schwartz, A. A. Tymiak, L. D. Weller, T. G. Carter & H. G. M. Munro. (1981). Marine natural products as sources of antiviral, antimicrobial, and antineoplastic agents. Pure Applied Chemistry, 53: 795-817. https://doi.org/10.1351/pac198153040795

450. Rodríguez-Cuautle, A. (2016). Actividad biológica de extractos algales con potencial cosmecéutico. (Tesis de Maestría) Instituto Politécnico Nacional, Centro Interdisciplinario de Ciencias Marinas, Baja California Sur, México.

451. Rodríguez-Cuautle, A. (2013). Polisacáridos obtenidos a partir de macroalgas del género Codium y su evaluación como anticoagulantes alternativos. (Tesis de Licenciatura). Universidad Autónoma de Baja California Sur, Baja California Sur, México.

452. Sánchez M. C., Ortega, M. J., Zubía, E. & Carballo, J. L. (2006). Cembrane Diterpenes from the Gorgonian Lophogorgia peruana. Journal of Natural Products, 69, 1749-1755. https://doi.org/10.1021/np060388x

453. Sánchez Lozano, I. (2016). Actividad antiepibiótica de extractos algales y de esponjas de las costas de la Bahía de la Paz, B.C.S. México. (Tesis de Maestría) Instituto Politécnico Nacional, Centro Interdisciplinario de Ciencias Marinas, México.

454. Sánchez Lozano, I. (2013). Extracción, caracterización y análisis de la actividada anticoagulante de los polisacáridos sulfatados del alga café Hydroclathrus clathratus (C. Agardh) M. A Howe. (Tesis de licenciatura) Universidad Autónoma de Baja California Sur. Baja California Sur México.

455. Tenorio-Rodriguez P. A., Murillo-Álvarez J. I., Campa-Cordova A. & Angulo C. (2017). Antioxidant screening and phenolic content of ethanol extracts of selected Baja California Peninsula macroalgae. Journal of Food Science and Technology, https://doi.org/10.1007/s13197-016-2478-3

456. Thakur, A. N., Thakur, N. L., Indap, M. M., Pandit, R. A., Datar, V. V., Werner E.G. & Müller, W. E. G. (2005). Antiangiogenic, Antimicrobial, and Cytotoxic Potential of Sponge-Associated Bacteria. Marine Biotechnology, 7, 245- 252. https://doi.org/10.1007/s10126-004-4085-y

457. Torres-Beltrán, M., Cardoso-Martínez, F., Millán-Aguiñaga, N., Becerril-Espinosa, A. & Soria-Mercado, I.E. (2012). Evaluation of the Gulf of California as a potential source of bioactive marine actinobacteria. Ciencias Marinas, 38(4), 609-624. https://doi.org/10.7773/cm.v38i4.2131

458. Valencia-Agamí, S. S. (2013). Variación temporal de los productos naturales mayoritarios de la esponja Aplysina gerardogreeni del Golfo de California. (Tesis de Maestría) Instituto Politécnico Nacional, Centro Interdisciplinario de Ciencias Marinas, México.

459. Vargas-Betancourt, F. (2011). Evaluación de la actividad antioxidante y fenoles totals en macroalgas de la Bahía de La Paz, B.C.S., México. (Tesis de Licenciatura) Universidad Autónoma de Baja California Sur, Baja California Sur, México.

460. Vargas-Betancourt, F. (2014). Actividad biológica de invertebrados marinos de Punta Arena de la Ventana, B.C.S., México. (Tesis de Maestría), Instituto Politécnico Nacional, Centro Interdisciplinario de Ciencias Marinas, Baja California Sur, México.

461. Villegas-Silva, V. A. (2014). Evaluación del potencial de Sargassum lapazeanum Setchell & N. L. Garden (Ochrophyta: Fucales, Phaeophyceae) como fuente de compuestos antibacterianos, antioxidantes y anticoagulantes. (Tesis de Licenciatura) Universidad Autónoma de Baja California Sur, Baja California Sur. México.

462. WHO (2017). Antibacterial agents in clinical development. pp. 44. World Health Organization. Geneva, Switzerland.

463. Xiao X., Agusti S., Lin F., Li K., Pan Y., Yu Y., Zheng Y., Wu J. & Duarte C. M. (2017). Nutrient removal from Chinese coastal waters by large-scale seaweed aquaculture. Scientific Reports, 7(46613), 1-6. https://doi.org/10.1038/srep46613

464. Zaleta-Pinet, D. A., Holland, I. P., Muñoz Ochoa, M., Murillo-Álvarez, J. I., Sakoff, J. A., van Altena, I. A. & McCluskey, A. (2014). Cytotoxic compounds from Laurencia pacifica. Organic and Medicinal Chemistry Letters, 4(8), 1-7. https://doi.org/10.1186/s13588-014-0008-8

465. Zeng, Z., Zhao, J., Caihuan K. & Wang, D. (2013). Antimicrobial activities of novel cultivable bacteria isolated from marine sponge Tedani anhelans. Chinese Journal of Oceanology and Limnology, 31(3), 581- 590. https://doi.org/10.1007/s00343-013-2223-y

466. Zubia, E., Ortega, M. J. & Carballo, J. L. (2008). Sesquiterpenes from the Sponge Axinyssa isabela. Journal Natural Products, 71, 2004-2010. https://doi.org/10.1021/np800465n

467. Amador, J. A. y E. J. Alfaro (2009). Métodos de reducción de escala: aplicaciones al tiempo, clima, variabilidad climática y cambio climático. Revista Iberoamericana de Economía Ecológica, 11, 39-52

468. CLICOM. 2017. CICESE: Variables para Puerto Vallarta. http://clicom-mex.cicese.mx/ (consultado el 25 de enero de 2017).

469. Fernández, B. A., J. Martínez y P. Osnaya (2004). El cambio climático global: comprender el problema. En: Magaña-Rueda, V. O. (Eds). Cambio climático: una visión desde México (1er ed.). pp. 17-27. México: Instituto Nacional de Ecología.

470. Hoogenboom, G. (2000). Contribution of Agro-Meteorology to the Simulation of Crop Production and its Applications. Agricultural and Forest Meteorology, 103, 137-157. https://doi.org/10.1016/S0168-1923(00)00108-8

471. IIEG (Instituto de Información Estadística y Geográfica). 2013. Puerto Vallarta, Jalisco: Carta Municipal. 6-9.

472. INECC (Instituto Nación de Ecología y Cambio Climático) (2014). Plan Estatal de Acción ante el Cambio Climático (PEACC) del Estado de Jalisco. Cambio climático Global y Regional futuro. Guadalajara, Jalisco. 89-199.

473. Instituto de Astronomía y Meteorología (2014). Escenarios Climáticos mediante PRECIS (Providing Regional Climates for Impacts Studies): Escenarios Regionales y Locales del Estado de Jalisco a 2030, 2050 y 2080. Universidad de Guadalajara, Jalisco. 1-21.

474. IPCC (Grupo Intergubernamental de Expertos sobre el Cambio Climático) (2014). Cambio climático 2014: Impactos, adaptación y vulnerabilidad. Contribución del Grupo de trabajo II al Quinto Informe de Evaluación del Grupo Intergubernamental de Expertos sobre el Cambio Climático. [Field, C. B., V. R. Barros, D. J. Dokken, K. J. Mach, M. D. Mastrandrea, T. E. Bilir, M. Chatterjee, K. L. Ebi, Y. O. Estrada, R. C. Genova, B. Girma, E. S. Kissel, A. N. Levy, S. MacCracken, P. R. Mastrandrea y L. L. White (eds.)]. Organización Meteorológica Mundial, Ginebra, Suiza. 3-30.

475. López-Díaz, F. (2014). Análisis regional de eventos extremos de temperatura en México y sus posibles variaciones en el contexto de cambio climático. (Tesis Doctoral). Universidad Nacional Autónoma de México, Distrito Federal.

476. Martínez-Austria P.F. y Aguilar-Chávez A. Efectos del cambio climático en los recursos hídricos de México. Volumen II. México: SEMARNAT-IMTA, 2008.

477. Morales-Hernández, J. C., F. M. Carrillo-González, V. M. Cornejo-López y J. Téllez- López (2010). Análisis del campo de viento en Puerto Vallarta, Jalisco, México. Avances sobre Investigaciones Marinas y Acuícolas del Pacífico Tropical Mexicano, 2, 11-18.

478. Ortega-De Santiago, J. L. y M. Vásquez-Bolaños (2012). Especie nueva de Dolichoderus (Hymenoptera: Formicidae) de Puerto Vallarta, Jalisco y nuevos registros para México. Revista mexicana de biodiversidad, 83, 1004-1008. https://doi.org/10.22201/ib.20078706e.2012.4.1280

479. Paz-González, M., L. Di Prieto, M. Florencia-González, M. Argerich y N. Castillo- Marín (2011). Vulnerabilidad y adaptación al cambio climático para la gestión y planificación local. Secretaria de Ambiente y Desarrollo Sustentable de la Nación. Buenos Aires, Argentina. 12-15

480. Preciado, J. M., Z. R. Mejía, J. M. Arganis y G. A. Ocón (2011). Análisis y Aplicación de Métodos Temporales para Completar Registros Faltantes de Lluvia en la Cuenca del Rio Bolaños. V Congreso Internacional de Meteorología de la OMMAC. 1-9.

481. Richardson, C. W. (1981). Stochastic Simulation of Daily Precipitation, Temperature, and Solar Radiation. Water Resources Research, 17(1), 182-190. https://doi.org/10.1029/WR017i001p00182

482. Rosengaus, M. M. (2012). Sobre el cambio climático global. Comité de ayuda a desastres y emergencias nacionales. 12, 1-5.

483. Safeeq, M., & Fares, A. (2011). Accuracy Evaluation of ClimGen Weather Generator and Daily to Hourly Disagregation Methods in Tropical Conditions. Theoretical and Applied Climatology, 106, 321-341. https://doi.org/10.1007/s00704-011-0438-4

484. Aceves-Medina, G., De Silva-Dávila, R., Cruz-Estudillo, I., Durazo, R. & Avendaño- Ibarra, R. (2017). Influence of the oceanographic dynamic in size distribution of cephalopod paralarvae in the southern Mexican Pacific Ocean (rainy seasons 2007 and 2008). Latin American Journal of Aquatic Research, 45(2), 356-369. https://doi.org/10.3856/vol45-issue2-fulltext-11

485. Alejo-Plata, M. C., García-Guillén, R. y Herrera-Galindo, J. (2013). Paralarvas y juveniles de cefalópodos en el Pacífico sur de México. Hidrobiológica, 23(2), 250-264.

486. Ambriz-Arreola, I., Gómez-Gutiérrez, J., Franco-Gordo, M. C., Lavaniegos, B. E. & Godínez-Domínguez, E. (2012). Influence of coastal upwelling−downwelling variability on tropical euphausiid abundance and community structure in the inshore Mexican central Pacific. Marine Ecology Progress Series, 451, 119-136. https://doi.org/10.3354/meps09607

487. Avendaño-Ibarra, R., De Silva-Dávila, R., Ordóñez-Guillén, F. E. y Vázquez-López, G. (2010). Composición estacional de larvas de peces frente a Baja California Sur (primavera y otoño de 2003). En: Gaxiola-Castro, G. y Durazo, R. eds. Dinámica del ecosistema pelágico frente a Baja California 1997-2007. Diez años de investigaciones mexicanas de la Corriente de California (1er ed.). pp. 413-431. México: SEMARNAT-INE-CICESE-UABC.

488. Blackburn, M. (1968). Micronekton of the eastern tropical Pacific Ocean: family composition, distribution, abundance, and relations to tuna. Fishery Bulletin, 67(1), 71-115.

489. Colwell, R. K. (2013). EstimateS. Statistical estimation of species richness and shared species for samples. Retrieved from http://purl.oclc.org/estimates.

490. De Silva-Dávila, R. (2013). Paralarvas de cefalópodos en el Golfo de California, México. (Tesis Doctoral). Centro Universitario de la Costa Sur, Universidad de Guadalajara, México.

491. De Silva-Dávila, R., Avendaño-Ibarra, R. y Franco-Gordo, C. (2013a). Calamares y pulpos de la costa sur de Jalisco y Colima. En: Franco-Gordo, C. ed. Inventario de Biodiversidad de la Costa Sur de Jalisco y Colima. Volumen 1. pp. 39-49. México: Editorial Universidad de Guadalajara. Recuperado de https://doi.org/10.13140/2.1.2662.7527

492. De Silva-Dávila, R., Franco-Gordo, C., Hochberg, F. G., Godínez-Domínguez, E., Avendaño-Ibarra, R., Gómez-Gutiérrez, J. & Robinson, C. J. (2015). Cephalopod paralarval assemblages in the Gulf of California during 2004-2007. Marine Ecology Progress Series, 520, 123-141. https://doi.org/10.3354/meps11074

493. De Silva-Dávila, R., Hochberg, F. G., Lindgren, A. R. & Franco-Gordo, C. (2013b). Paralarval development, abundance, and distribution of Pterygioteuthis hoylei (Cephalopoda: Oegopsida: Pyroteuthidae) in the Gulf of California, México. Molluscan Research, 33(1), 50-64. https://doi.org/10.1080/13235818.2012.754148

494. De Silva-Dávila, R., Palomares-García, R., Martínez-López, A. & Carballido-Carranza, M. A. (2002). Standing stock of Nyctiphanes simplex in the south ern region of the California Current System. Journal of Plankton Research, 24(10), 1054-1066. https://doi.org/10.1093/plankt/24.10.1057

495. Durazo, R. & Baumgartner, T. (2002). Evolution of oceanographic conditions off Baja California: 1997-1999. Progress in Oceanography, 54, 7-31. https://doi.org/10.1016/S0079-6611(02)00041-1

496. Fager, E. W. (1963). Communities of organisms. In: Hill, M. N. ed. The sea, Vol. 2 (1st ed.). pp. 415-437. New York: Wiley-Interscience.

497. Fager, E. W. & McGowan, J. A. (1963). Zooplankton species groups in the north Pacific. Science, 140, 453-460. https://doi.org/10.1126/science.140.3566.453

498. FAO (2014). Anuario FAO. Estadísticas de pesquerías y acuacultura. Recuperado de http://www.fao.org/fishery/static/Yearbook/YB2014_CD_Master/navigation/index_content_capture_e.htm#B.

499. Fernández-Álamo, M. A. & Färber-Lorda, J. (2006). Zooplankton and the oceanography of the eastern tropical Pacific: A review. Progress in Oceanography, 69, 318-359. https://doi.org/10.1016/j.pocean.2006.03.003

500. Fiedler, P. C. & Lavín, M. (2006). Introduction: a review of eastern tropical Pacific oceanography. Progress in Oceanography, 69(2-4), 94-100. https://doi.org/10.1016/j.pocean.2006.03.006

501. Franco-Gordo, C., Godínez-Domínguez, E., Filonov, A. E., Tereshchenko, I. E.& Freire, J. (2004). Plankton biomass and larval fish abundance prior to and during the El Niño period of 1997-1998 along the central Pacific coast of Mexico. Progress in Oceanography, 63(3), 99-123. https://doi.org/10.1016/j.pocean.2004.10.001

502. Friedemann, K., Argüelles, J., Mariátegui, L., Tafur, R., Wolff, M. & Yamashiro, C. (2008). A hypothesis on range expansion and spatio-temporal shifts in size at maturity of jumbo squid (Dosidicus gigas) in the Eastern Tropical Pacific Ocean. California Cooperative Oceanic Fisheries Investigations Report, 49, 119-128.

503. García-Guillén, R. M. (2016). Estructura de la comunidad de paralarvas de cefalópodos de la costa suroccidental de Baja California Sur y su relación con las variables ambientales. (Tesis de Maestría). Centro Interdisciplinario de Ciencias Marinas- Instituto Politécnico Nacional, México.

504. Granados-Amores, J., De Silva-Dávila, R., Camarillo-Coop, S., Hochberg, F. G., Durazo, R. y Avendaño-Ibarra, R. (2010). Composición de especies y patrones de distribución de paralarvas de calamar, 1996-1999. En: Gaxiola-Castro, G. y Durazo, R. eds. Dinámica del ecosistema pelágico frente a Baja California 1997-2007. Diez años de investigaciones mexicanas de la Corriente de California (1er ed.). pp. 453-467. México: SEMARNAT-INE-CICESE-UABC.

505.Hoyle, W. E. (1904). Reports on the Cephalopoda. Bulletin of the Museum of Comparative Zoology, 43(1), 1-487.

506. ITIS (2017). Integrated Taxonomic System. Retrieved from http://www.itis.gov.

507. Jereb, P. & Roper, C. F. E. (2010). Cephalopods of the world. An annotated and illustrated catalogue of species known to date. Volume 2. Myopsid and oegopsid squids. Rome: FAO.

508. Jereb, P., Roper, C. F. E., Norman, M. D. & Finn, J. K. (2013). Cephalopods of the world. An annotated and illustrated catalogue of cephalopod species known to date. Volume 3. Octopods and Vampire Squids. Rome: FAO.

509. Jiménez-Valverde, A. & J. Hortal. (2003). Las curvas de acumulación de especies y la necesidad de evaluar la calidad de los inventarios biológicos. Revista Ibérica de Aracnología, 8, 151-161.

510. Kessler, W. S. (2006). The circulation of the eastern tropical Pacific: A review. Progress in Oceanography, 69(2), 181-217. https://doi.org/10.1016/j.pocean.2006.03.009

511. López-Sandoval, D., Lara-Lara, J., Lavín, M., Álvarez-Borrego, S. y Gaxiola-Castro, G. (2009). Productividad primaria en el Pacífico oriental tropical adyacente a Cabo Corrientes, México. Ciencias Marinas, 35(2), 169-182. https://doi.org/10.7773/cm.v35i2.1530

512. Lynn, R. J. & Simpson, J. J. (1987). The California Current System: The seasonal variability of its physical characteristics. Journal of Geophysical Research, 92(12), 947-966. https://doi.org/10.1029/JC092iC12p12947

513. McGowan, J. A. (1967). Atlas No. 6. Distributional atlas of pelagic molluscs in the California Current region. United States of America: State of California Marine Research Committee.

514. Nesis, K. N. (2003). Distribution of Recent Cephalopoda and implications for plio-pleistocene events. In: Warnke, K., Keupp, H. & Boletzky, S. V. eds. Coleoid Cephalopods Through Time. Proceedings of an international symposium (1st ed.). pp. 199-224. Berlin: Berliner Paläobiologische Abhandlungen.

515. NOAA (2017). National Weather Service. Climate Prediction Center. Retrieved from http://www.cpc.ncep.noaa.gov/products/analysis_monitoring/ensostuff/ensoyears.shtml.

516. Okutani, T. (1974). Epipelagic decapod cephalopods collected by micronekton tows during the EASTROPAC expeditions, 1967-1968 (Systematic Part). Bulletin of Tokai Regional Fisheries Research Laboratory, 80, 29-118.

517. Okutani, T. & McGowan, J. (1969). Systematics, distribution, and abundance of the epiplanktonic squid (Cephalopoda, Decapoda) larvae of the California Current, April, 1954- March, 1957. Bulletin of the Scripps Institution of Oceanography, 14, 1-90.

518. Passarella, K. C. (1990). Oceanic cephalopod assemblage in the eastern Gulf of Mexico. (Master's Thesis). Department of Marine Science, University of South Florida, St Petersburg.

519. Pelayo-Martínez, G. C., De Silva-Dávila, R., Franco-Gordo, M. C. y Olivos-Ortiz, A. (2015). Distribución espacio-temporal de paralarvas de cefalópodos en el Pacífico central mexicano. p. 242. XIX Reunión Nacional y XII International de la Sociedad Mexicana de Planctología, A. C., 25-29 de mayo de 2015, La Paz, Baja California Sur, México.

520. Pelayo-Martínez, G. C., Olivos-Ortiz, A., Franco-Gordo, M. C., Quijano-Scheggia, S., Gaviño-Rodríguez, J., Kono-Martínez, T. & Castro-Ochoa, F. (2017). Physical, chemical and zooplankton biomass variability (inshore-offshore) of Mexican Central Pacific during El Niño-La Niña 2010. Latin American Journal of Aquatic Research, 45(1), 67-78. https://doi.org/10.3856/vol45-issue1-fulltext-7

521. Soberón, J. & Llorente, J. (1993). The use of species accumulation functions for the prediction of species richness. Conservation Biology, 7(3), 480-488. https://doi.org/10.1046/j.1523-1739.1993.07030480.x

522. Staaf, D. J., Redfern, J. V., Gilly, W. F., Watson, W. & Balance, L. T. (2013). Distribution of Ommastrephidae paralarvae in the eastern tropical Pacific. Fishery Bulletin, 111, 78-89. https://doi.org/10.7755/FB.111.1.7

523. Staaf, D. J., Ruiz-Cooley, R. I., Elliger, C., Lebaric, Z., Campos, B., Markaida, U. & Gilly, W. F. (2010). Ommastrephid squids Sthenoteuthis oualaniensis and Dosidicus gigas in the eastern Pacific show convergent biogeographic breaks but contrasting population structures. Marine Ecology Progress Series, 418, 165-178. https://doi.org/10.3354/meps08829

524. Staaf, D., Zeidberg, L. D. & Gilly, W. F. (2011). Effects of temperature on embryonic development of the Humboldt squid Dosidicus gigas. Marine Ecology Progress Series, 441, 165-175. https://doi.org/10.3354/meps09389

525. Young, R. E. (1972). The systematics and areal distribution of pelagic cephalopods from the seas off southern California (1st ed.). Washington: Smithsonian Contributions to Zoology, 97. https://doi.org/10.5479/si.00810282.97

526. Zepeda-Benítez, V. Y., Morales-Bojórquez, E., Díaz-Uribe, J G., Nevárez-Martínez, M. O., Hernández-Herrera, A. & López-Martínez, J. (2017). Implementation of catch-at-age model for the jumbo squid Dosidicus gigas. Ecological Modelling 344, 6-16. https://doi.org/10.1016/j.ecolmodel.2016.10.019

527. Augustin, L. N., Irish, J. L., & Lynett, P. (2009). Laboratory and numerical studies of wave damping by emergent and near-emergent wetland vegetation. Coast. Eng, 56(3), 332-340. https://doi.org/10.1016/j.coastaleng.2008.09.004

528. Beena M. J., Kiran G., Rao, S. (2015). Effect of Artificial Sea Grass on Wave Attenuation- An Experimental Investigation. Aquatic Procedia, 4, 221-226. https://doi.org/10.1016/j.aqpro.2015.02.030

529. Blackmar, P., Cox, D., Wu, W. (2014). Laboratory observations and numerical simulations of wave height attenuation in heterogeneous vegetation. J. Waterw. Port Coast. Ocean Eng, 140 (1), 56-65. https://doi.org/10.1061/(ASCE)WW.1943-5460.0000215

530. Chen, X., Chen, Q., Zhan, J., Liu, D. (2016). Numerical simulations of wave propagation over a vegetated platform. Coastal Engineering, 110, 64-75. https://doi.org/10.1016/j.coastaleng.2016.01.003

531. D'Angremond, K., VanderMeer, J., DeJong, R. (1996). Wave transmissional low-crested structures In Proceedings. 25th.International Conference on Coastal Engineering, 119, 3305-3318.

532. Fatimah, E., Khairi, A., Wahab, A., Ismail, H. (2008). Numerical modeling approach of an artificial mangrove root system ( ArMS ) submerged breakwater as wetland habitat protector. COPEDEC VII, 1-20.

533. Goda, Y. (2000). Random seas and design of maritime structures. World Scientific. Singapore. https://doi.org/10.1142/3587

534. Koftis, T., Prinos, P., Stratigaki, V. (2012). Wave damping over artificial Posidonia oceanica meadow: a large-scale experimental study. Coastal Engineeering, 73. https://doi.org/10.1016/j.coastaleng.2012.10.007

535. Ling, Z., Chen, Q. (2015). Numerical Modeling of Surface Waves over Submerged Flexible Vegetation. Journal of Engineering Mechanics, 141(8). https://doi.org/10.1061/(ASCE)EM.1943-7889.0000913

536. Liu, C., Huang, Z., Keat Tan, S. (2009). Nonlinear scattering of non-breaking waves by a submerged horizontal plate: Experiments and simulations. Ocean Engineering, 36(17-18), 1332-1345. https://doi.org/10.1016/j.oceaneng.2009.09.001

537. Liu, Y., Li, H., Li, Y. (2012). A new analytical solution for wave scattering by a submerged horizontal porous plate with finite thickness. Ocean Engineering, 42, 83-92. https://doi.org/10.1016/j.oceaneng.2012.01.001

538. Mai, S., Ohle, N., Zimmermann, C. (1999). Applicability of waves models in shallow coastal waters. 5th International COPEDEC 1999, 170-179.

539. Mansard, E., Funke, E. (1980). The measurement of incident and reflected wave spectra using a least squares method. Proceedings of the 17th International Conference on Coastal Engineering (pp. 154-172). https://doi.org/10.9753/icce.v17.8

540. Mei, C., Hara, T., Naciri, M. (1988). Note on Bragg scattering of water waves by parallel bar son the seabed. Journal of Fluids Mechanics, 186, 147-162. https://doi.org/10.1017/S0022112088000084

541. Méndez, F., Losada, I., Losada, M., 2004. Hydrodynamics induced by wind waves in a vegetation field. J. Geophys. Res., 104 (C8), 18383-18396. https://doi.org/10.1029/1999JC900119

542. Ozeren, Y., Wren, D., Wu, W. (2014). Experimental Investigation of Wave Attenuation through Model and Live Vegetation. Journal of Waterway, Port, Coastal, and Ocean Engineering, 140(5). https://doi.org/10.1061/(ASCE)WW.1943-5460.0000251

543. Patarapanich, M., Cheong, H. (1989). Reflection and transmission characteristics of regular and random waves from a submerged horizontal plate. Coastal Engineering, 13(2), 161-182. https://doi.org/10.1016/0378-3839(89)90022-7

544. Sendil, U., Graf, W. (1974). Transmission of regular waves past floating plates. In Proceedings XIV Conference Coastal Engineering (pp. 1924-1936). https://doi.org/10.9753/icce.v14.112

545. Sendil, U., Graf, W. (1975). Transmission of regular waves past fixed plates. Proceedings XVI Congress of Int. Association of Hydraulic Research (pp. 254-261).

546. Stoker, J. (1957). Water Waves - The Mathematical Theory with Applications. USA: Publishers, Interscience.

547. Sundar, V., Dakshinamoorty, S. (1980). Wave Transmission Characteristics of Fixed and Floating Breakwaters. In 7th Australasian Hydraulics and Fluid Mechanics Conference (pp. 56-59).

548. Teh, H. (2013). Hydraulic performance of free surface breakwaters: A review. Sains Malaysiana, 42(9), 1301-1310.

549. Van der Meer, J., Briganti, R., Zanuttigh, B., Wang, B. (2005). Wave transmission and reflection at low-crested structures: Design formulae, oblique wave attack and spectral change. Coastal Engineering, 52, 915-929. https://doi.org/10.1016/j.coastaleng.2005.09.005

550. Verduzco-Zapata, M., Ocampo-Torres, F., Osuna, P., Parés-Sierra, A., Kawasaki, K. (2012). Practical estimation of wave and reflection from submerged structures. Ocean Engineering, 45, 63-74. https://doi.org/10.1016/j.oceaneng.2012.02.003

551. Verduzco-Zapata, M., Ocampo-Torres, F., Osuna, P., Parés, A. (2015). Descripción y análisis de la transmisión de la energía del oleaje irregular debido a su interacción con obstáculos rectangulares sumergidos. R. Sosa Ávalos & M. G. Verduzco-Zapata (Eds.), Estudios acuícolas y marinos en el Pacífico mexicano (pp. 275-292). Colima: Universidad de Colima.

552. Verduzco-Zapata, M., Ocampo-Torres, F., Mendoza, E., Silva, R., Cabello, L., Torres, E. (2017). Optimal submergence of horizontal plates for maximum wave energy dissipation. Ocean Engineering 142, 78-86. https://doi.org/10.1016/j.oceaneng.2017.06.068

553. Zheng, Y., Liu, P., Shen, Y., Wu, B., Sheng, S. (2007). On the radiation and diffraction of linear water waves by an infinitely long rectangular structure submerged in oblique seas. Ocean Engineering, 34(3-4), 436-450. https://doi.org/10.1016/j.oceaneng.2006.03.002

554. Brooke, J. (2003). Wave energy conversion, 1st ed. Elsevier Science, Hungary. Davies, P. (2005). Wave-powered desalination: resource assessment and review of technology. Desalination 186, 97-109. https://doi.org/10.1016/j.desal.2005.03.093

555. Falnes, J. (2007). A review of wave-energy extraction. Marine structures 20, 185- 201. https://doi.org/10.1016/j.marstruc.2007.09.001

556. Fitcher, E. (1986). A Stewart Platform-Based Manipulator: General Theory and Practical Construction. The International Journal of Robotics Research 5, 157-182. https://doi.org/10.1177/027836498600500216

557. Flow-Science (2014). FLOW-3D user manual. Hicks, D., Mitcheson, G., Pleass, C., Salevan, J. (1989). Delbouy: ocean wave-powered seawater reverse osmosis desalination systems. Desalination 73, 81-94. https://doi.org/10.1016/0011-9164(89)87006-7

558. Hirt, C., Nichols, B. (1981). Volume of fluid (VOF) method for the dynamics of free boundaries. Journal of Computational Physics 39, 201-225. https://doi.org/10.1016/0021-9991(81)90145-5

559. Hirt, C., Sicilian, J. (1985). A porosity technique for the definition of obstacles in rectangular cell meshes.

560. Karimirad, M. (2014). Offshore energy structures: for wind power, wave energy and hybrid marine platforms. Springer, Switzerland. https://doi.org/10.1007/978-3-319-12175-8

561. Pilechi, A., Baker, S., Cornett, A. (2017). Validation of a CFD Tool for Studying the Behaviour of Wave Energy Converters. Proceedings of the 12th European Wave and Tidal Energy Conference. 1-10.

562. Verduzco-Zapata, M.; Ocampo-Torres, F. (2015). Study of a 6 DOF wave energy converter interacting with regular waves using 3D CFD, in: Proceedings of the 11th European Wave and Tidal Energy Conference. pp. 1-6.

563. Verduzco-Zapata, M., Ocampo-Torres, F.J., Matthews, C., Olivos-ortiz, A., Diego, E. (2017). Development of a Wave-Powered Desalination Device : Numerical Modelling, in: Proceedings of the 12th European Wave and Tidal Energy Conference. Cork, Ireland, pp. 1-9.

564. Wei, G. (2005). A fixed-mesh method for General Moving Objects (Technical note FSI-05-TN73).

Descargas

Publicado

30 noviembre 2018

Licencia

Creative Commons License

Esta obra está bajo una licencia internacional Creative Commons Atribución-NoComercial-CompartirIgual 4.0.

Detalles sobre esta monografía

ISBN-13 (15)

978-607-8549-38-2

Fecha de primera publicación (11)

30-11-2018

Cómo citar

Pérez Morales, A. ., & Álvarez García, M. del C. (2018). Estudios recientes en el océano Pacífico mexicano. Universidad de Colima. https://libros.ucol.mx/index.php/dgp/catalog/book/231