PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Tytuł artykułu

Spatio-temporal pattern of phytoplankton and pigment composition in surface waters of south-eastern Black Sea

Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Phytoplankton community, diatom to dinoflagellate ratio and pigment composition in surface waters with nutrient data from April 2013 to March 2014 were monitored in the south-eastern (SE) Black Sea using high performance liquid chromatography (HPLC) and microscopic analyses. Microscopic examination revealed a total of 71 species that consist of dinoflagellate (58%), diatoms (25%) and other groups (17%). Microscopy and HPLC-based pigment analyses revealed almost similar results which suggest that the phytoplankton community is mainly composed of diatoms, dinoflagellates and coccolithophores. Fucoxanthin (mean 0.35 ± 019 μg L−1), peridinin (mean 0.18 ± 0.14 μg L−1) and 19-hexanoyloxyfucoxanthin (mean 0.24 ± 0.15 μg L−1) are prominent pigments which showed significant correlation with Diatom-C (r2 = 0.63–0.71, p < 0.05), Dinoflagellate-C (r2 = 0.49–0.80, p < 0.05) and Coccolithophore-C (r2 = 0.72–0.82, p < 0.05), respectively. Mean carbon biomass of diatoms (36.50 ± 9.72 μg L−1) was higher than that of dinoflagellates (33.32 ± 9.05 μg L−1). Significant differences were also observed in nutrient ratio (N:P and Si:N) (One-way ANOVA, p < 0.05). Results illustrate that HPLC-based pigment approach can be used for taxonomic characterisation of phytoplankton groups in the SE Black Sea. Moreover, relatively high dinoflagellate species dominancy and significant correlations between Phyto-C and marker pigments indicate that phytoplankton community composition is shifting towards much smaller groups in SE coasts of the Black Sea.
Czasopismo
Rocznik
Strony
283--299
Opis fizyczny
Bibliogr. 90 poz., wykr.
Twórcy
autor
  • Recep Tayyip Erdogan University, Faculty of Fisheries, Rize, Turkey
autor
  • Recep Tayyip Erdogan University, Faculty of Fisheries, Rize, Turkey
autor
  • Recep Tayyip Erdogan University, Faculty of Fisheries, Rize, Turkey
Bibliografia
  • [1] Agirbas, E., Feyzioglu, A. M., Kopuz, U., Llewellyn, C. A., 2015. Phytoplankton community composition in the south-eastern Black Sea determined with pigments measured by HPLC-CHEMTAX analyses and microscopy cell counts. J. Mar. Biol. Assoc. U. K. 95 (1), 35-52, http://dx.doi.org/10.1017/S0025315414001040.
  • [2] Aiken, J., Pradhan, Y., Barlow, R., Lavender, S., Poulton, A., Holligan, P., Hardman-Mountford, N., 2009. Phytoplankton pigments and functional types in the Atlantic Ocean: a decadal assessment, 1995-2005. Deep-Sea Res. II 56 (15), 899-917, http://dx.doi.org/10.1016/j.dsr2.2008.09.017.
  • [3] Anadón, R., Danovaro, R., Dippner, J. W., Drinkwater, K. F., Hawkins, S. J., O'Sullivan, G., Oguz, T., 2007. Black Sea ecosystem response to climatic teleconnections. Oceanography 18, 122-133, http://dx.doi.org/10.5670/oceanog.2005.47.
  • [4] Balech, E., 1988. Los dinoflaelados del Atlantici sudoccidental. Publ. Espec. Inst. Esp. Oceanography, Madrid, 310 pp.
  • [5] Barlow, R. G., Cummings, D. G., Gibb, S. W., 1997. Improved resolution of mono- and divinyl chlorophylls a and b and zeaxanthin and lutein in phytoplankton extracts using reverse phase C-8 HPLC. Mar. Ecol.-Prog. Ser. 161, 303-307, http://dx.doi.org/10.3354/meps161303.
  • [6] Barlow, R. G., Aiken, J., Moore, G. F., Holligan, P. M., Lavender, S., 2004. Pigment adaptations in surface phytoplankton along the eastern boundary of the Atlantic Ocean. Mar. Ecol. Prog. Ser. 281, 13-26, http://dx.doi.org/10.3354/meps281013.
  • [7] Beaugrand, G., 2003. Plankton effect on cod recruitment in the North Sea. Nature 426, 661-664, http://dx.doi.org/10.1038/nature02164.
  • [8] Beaugrand, G., Reid, P., 2003. Long-term changes in phytoplankton, zooplankton and salmon related to climate. Glob. Change Biol. 9 (6), 801-817, http://dx.doi.org/10.1046/j.1365-2486.2003.00632.x.
  • [9] Bodeanu, N., 1989. Algal blooms and development the marine phytoplankton species at the Romanian Black Sea littoral under eutrophication conditions. Cercetari Mar. 22, 107-125.
  • [10] Bodeanu, N., 1993. Microalgal blooms in the Romanian area of the Black Sea and contemporary eutrophycation conditions. In: Smayda, T. J., Shimizu, Y. (Eds.), Toxic Phytoplankton Blooms in the Sea. Elsevier, Amsterdam, 203-209.
  • [11] Bodeanu, N., Moncheva, S., Ruta, G., Popa, L., 1998. Long-term evolution of the algal blooms in Romanian and Bulgarian Black Sea waters. Cercetari Mar. 31, 37-55.
  • [12] Bodeanu, N., Andrei, C., Boicenco, L., Popa, L., Sburlea, A., 2004. A new trend of the phytoplankton structure and dynamics in the Romanian marine waters. Cercetari Mar. 35, 77-86.
  • [13] Bologa, A. S., 1986. Planktonic primary productivity of the Black Sea: a review. Thalassia Jugoslavica 21-22, 1-22.
  • [14] Bologa, A. S., Bodeanu, N., Petran, A., Tiganus, V., Zaitsev, Yu. P., 1995. Major modifications of the Black Sea benthic and planktonic biota in the last three decades. In: Bulletin de L'Institute Oceanographique, 15, CIESM Science Series, Monaco, 85-110.
  • [15] Booth, B. C., 1993. Estimating cell concentration and biomass of autotrophic plankton using microscopy. In: Kemp, P. F., Sherr, B. F., Cole, J. J. (Eds.), Handbook of Methods in Aquatic Microbial Ecology. Lewis Publishers, Boca Raton, FL, 199-205.
  • [16] Brettum, P., Andersen, T., 2005. The Use of Phytoplankton as Indicators of Water Quality. NIVA Rep. SNO 4818-2004, 33 pp.
  • [17] Brewin, R. J. W., Sathyendranath, S., Hirata, T., Lavender, S. J., Barciela, R. M., Hardman-Mountford, N. J., 2010. A three-component model of phytoplankton size class for the Atlantic Ocean. Ecol. Mod. 221 (11), 1472-1483, http://dx.doi.org/10.1016/j.ecolmodel.2010.02.014.
  • [18] Bužančić, M., Gladan, Z. N., Marasović, I., Kušpilić, G., Grbec, B., 2016. Eutrophication influence on phytoplankton community composition in three bays on the eastern Adriatic coast. Oceanologia 58 (4), 302-3016, http://dx.doi.org/10.1016/j.oceano.2016.05.003.
  • [19] Chai, C., Jiang, T., Cen, J., Ge, W., Lu, S., 2016. Phytoplankton pigments and functional community structure in relation to environmental factors in the Pearl River Estuary. Oceanologia 58 (3), 201-211, http://dx.doi.org/10.1016/j.oceano.2016.03.001.
  • [20] Cociasu, A., Dorogan, L., Humborg, C., Popa, L., 1996. Long-term ecological changes in Romanian coastal waters of the Black Sea. Mar. Pollut. Bull. 32 (1), 32-38, http://dx.doi.org/10.1016/0025-326X(95)00106-W.
  • [21] Cociasu, A., Diaconu, V., Popa, L., Buga, L., Nae, I., Dorogan, L., Malciu, V., 1997. The nutrient stock of the Romanian shelf of the Black Sea during the last three decades. In: Ozsoy, E., Mikaelyan, A. (Eds.), Sensitivity to Change: Black Sea, Baltic Sea and North Sea. Kluwer Acad. Publ., Dordrecht, 49-63.
  • [22] Cury, P. M., Shin, Y. J., Planque, B., Durant, J. M., Fromentin, J. M., Kramer-Schadt, S., Stenseth, N. C., Travers, M., Grimm, V., 2008. Ecosystem oceanography for global change in fisheries. Trends Ecol. Evol. 23 (6), 338-346, http://dx.doi.org/10.1016/j.tree.2008.02.005.
  • [23] Ediger, D., Soydemir, N., Kideys, A. E., 2006. Estimation of phytoplankton biomass using HPLC pigment analysis in the Southwestern Black Sea. Deep-Sea Res. Pt. II 53 (17-19), 1911-1922, http://dx.doi.org/10.1016/j.dsr2.2006.04.018.
  • [24] Edwards, M., Richardson, A. J., 2004. Impact of climate change on marine pelagic phenology and trophic mismatch. Nature 430 (7002), 881-884, http://dx.doi.org/10.1038/nature02808.
  • [25] Eker-Develi, E., Berthon, J. F., Canuti, E., Slabakova, N., Moncheva, S., Shtereva, G., Dzhurova, B., 2012. Phytoplankton taxonomy based on CHEMTAX and microscopy in the Northwestern Black Sea. J. Mar. Syst. 94, 18-32, http://dx.doi.org/http://dx.doi.org/10.1016/j.jmarsys.2011.10.005.
  • [26] Eker-Develi, E., Berthon, J. F., Linde, D., 2008. Phytoplankton class determination by microscopic and HPLC-CHEMTAX analyses in the southern Baltic Sea. Mar. Ecol.-Prog. Ser. 359, 69-87, http://dx.doi.org/http://dx.doi.org/10.3354/meps07319.
  • [27] Eker-Develi, E., Kideys, A. E., 2003. Distribution of phytoplankton in the southern Black Sea in summer 1996, spring and autumn 1998. J. Mar. Syst. 39 (3-4), 203-211, http://dx.doi.org/http://dx.doi.org/10.1016/S0924-7963(03)00031-9.
  • [28] Escaravage, V., Prins, T. C., Nijdam, C., Smaal, A. C., Peeters, J. C. H., 1999. Response of phytoplankton communities to nitrogen input reduction in mesocosm experiments. Mar. Ecol.-Prog. Ser. 179, 187-199, http://dx.doi.org/10.3354/meps179187.
  • [29] Fukuyo, Y., Takano, H., Chihara, M., Matsuoka, K., 1990. Red tide Organisms in Japan (An Illustrated Taxonomic Guide). Uchida Rokakuho Publ. Tokyo, 407 pp.
  • [30] Georgieva, L. V., 1993. Species Composition and Dynamics of Phytocene, in Plankton Chernogo morya (Plankton of the Black Sea). Naukova Dumka, Kiev, 31-55.
  • [31] Gibb, S. W., Barlow, R. G., Cummings, D. G., Rees, N. W., Trees, C. C., Holligan, P., Suggett, D., 2000. Surface phytoplankton pigment distributions in the Atlantic Ocean: an assessment of basin scale variability between 508N and 508S. Prog. Oceanogr. 45 (4-4), 339-368, http://dx.doi.org/10.1016/S0079-6611(00)00007-0.
  • [32] Gibb, S. W., Cummings, D. G., Irigoien, X., Barlow, R. G., Fauzi, R., Mantoura, C., 2001. Phytoplankton pigment chemotaxonomy of northeastern Atlantic. Deep-Sea Res. II 48 (4-5), 795-823, http://dx.doi.org/10.1016/S0967-0645(00)00098-9.
  • [33] Hasle, G. R., 1978. Using the inverted microscope. In: Sournia, A. (Ed.), Phytoplankton Manual. UNESCO, Paris, 191-196.
  • [34] Heil, C. A., Revilla, M., Glibert, P. M., Murasko, S., 2007. Nutrient quality drives phytoplankton community composition on the West Florida shelf. Limnol. Oceanogr. 52 (3), 1067-1078, http://dx.doi.org/10.4319/lo.2007.52.3.1067.
  • [35] Henson, S. A., Sarmiento, J. L., Dunne, J. P., Bopp, L., Lima, I., Doney, S. C., John, J., Beaulieu, C., 2010. Detection of anthropogenic climate change in satellite records of ocean chlorophyll and productivity. Biogeosciences 7 (2), 621-640, http://dx.doi.org/10.5194/bg-7-621-2010.
  • [36] Higgins, H. W., Wright, S. W., Schlüter, L., 2011. Quantitative interpretation of chemotaxonomic pigment data. In: Roy, S., Llewellyn, C. A., Egeland, E. S., Johnson, G. (Eds.), Phytoplankton Pigments: Characterization, Chemotaxonomy and Applications in Oceanography. Cambridge Univ. Press, 257-313.
  • [37] Hodgkiss, I. J., Ho, K. C., 1997. Are changes in N:P ratios in coastal waters the key to increased red tide blooms? Hydrobiologia 852, 141-147, http://dx.doi.org/10.1023/A:1003046516964.
  • [38] Holligan, P. M., 1987. The physical environment of exceptional phytoplankton blooms in the NE Atlantic. Rapp. P-V Réun. Cons. Int. Explor. Mer. 187, 9-18.
  • [39] Humborg, C., Ittekkot, V., Cociasu, A., Bodungen, B., 1997. Effect of Danube River dam on Black Sea biogeochemistry. Nature 386, 385-388, http://dx.doi.org/10.1038/386385a0.
  • [40] IOCCG, 2014. Phytoplankton functional types from space. In: Sathyendranath, S. (Ed.), Reports of the International Ocean-Colour Coordinating Group, No. 15. IOCCG, Dartmouth, Canada.
  • [41] Irigoien, X., Meyer, B., Harris, R., Harbour, D., 2004. Using HPLC pigment analysis to investigate phytoplankton taxonomy: the importance of knowing your species. Helgoland Mar. Res. 58 (2), 77-82, http://dx.doi.org/10.1007/s10152-004-0171-9.
  • [42] Ivanov, A. I., 1965. Characteristics Qualitative Analysis of the Black Sea Phytoplankton. Investigation of Plankton in the Black Sea and Azov Sea. Naukova dumka, Kiev, 17-35, (in Russian).
  • [43] Jackson, T., Bouman, H. A., Sathyendranath, S., Devred, E., 2011. Regional-scale change in diatom distribution in the Humboldt Current as revealed by remote sensing: implications for fisheries. ICES J. Mar. Sci. 68 (4), 729-736, http://dx.doi.org/10.1093/icesjms/fsq181.
  • [44] Jeffrey, S. W., Vesk, M., 1997. Introduction to marine phytoplankton and their pigment signatures. In: Jeffrey, S. W., Mantoura, R. F. C., Wright, S. W. (Eds.), Phytoplankton Pigments in Oceanography: Guidelines to Modern Methods. UNESCO, Paris, 19-36.
  • [45] Kideys, A. E., 1994. Recent dramatic changes in the Black Sea Ecosystem: the reason for the sharp decline in Turkish Anchovy Fisheries. J. Mar. Syst. 5, 171-181, http://dx.doi.org/10.1016/0924-7963(94)90030-2.
  • [46] Koeller, P., Fuentes-Yaco, C., Platt, T., Sathyendranath, S., Richards, A., Ouellet, P., Orr, D., Skúladóttir, U., Wieland, K., Savard, L., Aschan, M., 2009. Basin-scale coherence in phenology of shrimps and phytoplankton in the North Atlantic Ocean. Science 324 (5928), 791-793, http://dx.doi.org/10.1126/science.1170987.
  • [47] Leterme, S. C., Seuront, L., Edwards, M., 2006. Differential contribution of diatoms and dinoflagellates to phytoplankton biomass in the NE Atlantic Ocean and the North Sea. Mar. Ecol.-Prog. Ser. 312, 57-65, http://dx.doi.org/10.3354/meps312057.
  • [48] Llewellyn, C. A., Fishwick, J. R., Blackford, J. C., 2005. Phytoplankton community in the English Channel: a using chlorophyll a derived HPLC-CHEMTAX and carbon derived from microscopy cell. J. Plankton Res. 27 (1), 103-119, http://dx.doi.org/10.1093/plankt/fbh158.
  • [49] Llewellyn, C. A., Gibb, S. W., 2000. Intra-class variability in the carbon, pigment and biomineral content of prymnesiophytes and diatoms. Mar. Ecol.-Prog. Ser. 193, 33-44, http://dx.doi.org/10.3354/meps193033.
  • [50] Longhurst, A., 2007. Ecological Geography of the Sea. Acad. Press, Burlington, MA, p. 542.
  • [51] Malviya, S., Scalco, E., Audic, S., Vincent, F., Veluchamy, A., Poulain, J., Wincker, P., Ludicone, D., Vargas, C., Bittner, L., Zingone, A., Bowler, C., 2016. Insights into global diatom distribution and diversity in the world's ocean. PNAS 13 (1), 1-10, http://dx.doi.org/10.1073/pnas.1509523113.
  • [52] Mantoura, R. F. C., Llewellyn, C. A., 1983. The rapid determination of algal Chlorophyll-a and carotenoid pigments and their breakdown products in natural waters by reverse-phase high performance liquid chromatography. Anal. Chim. Acta 151, 297-314, http://dx.doi.org/10.1016/S0003-2670(00)80092-6.
  • [53] Margalef, R., 1978. Life forms of phytoplankton as survival alternatives in an unstable environment. Oceanol. Acta 1, 493-509.
  • [54] McQuatters-Gollop, A., Raitsos, D. E., Edwards, M., Attrill, M. J., 2007. Spatial patterns of diatom and dinoflagellate seasonal cycles in the North-East Atlantic Ocean. Mar. Ecol.-Prog. Ser. 339, 301-306, http://dx.doi.org/10.3354/meps339301.
  • [55] McQuatters-Gollop, A., Mee, L. D., Raitsos, D. E., Shapiro, G. I., 2008. Non-linearities, regime shifts and recovery: the recent influence of climate on Black Sea chlorophyll. J. Mar. Syst. 74 (1-2), 649-658, http://dx.doi.org/10.1016/j.jmarsys.2008.06.002.
  • [56] Menden-Deuer, S., Lessard, E. J., 2000. Carbon to volume relationships for dinoflagellates, diatoms, and other protist plankton. Limnol. Oceanogr. 45 (3), 569-579, http://dx.doi.org/10.4319/lo.2000.45.3.0569.
  • [57] Micheli, F., 1999. Eutrophication, fisheries, and consumer-resource dynamics in marine pelagic ecosystems. Science 285 (5432), 1396-1398, http://dx.doi.org/10.1126/science.285.5432.1396.
  • [58] Mikaelyan, A. S., Silkin, V. A., Pautova, L. A., 2011. Coccolithophorids in the Black Sea: their interannual and long-term changes. Oceanology 51 (1), 39-48, http://dx.doi.org/10.1134/S0001437011010127.
  • [59] Mikaelyan, A. S., Zatsepin, A. G., Chasovnikov, V. K., 2013. Long-term changes in nutrient supply of phytoplankton growth in the Black Sea. J. Mar. Syst. 117-118, 53-64, http://dx.doi.org/10.1016/j.jmarsys.2013.02.012.
  • [60] Moncheva, S., Krastev, A., 1997. Some aspects of phytoplankton longterm alterations off Bulgarian Black Sea shelf. In: Ozsoy, E., Mikhaelian, A. (Eds.), Sensitivity to Change: Black Sea, Baltic Sea and North Sea. NATO ASI Series, 2. Environment, vol. 27. Kluwer Acad. Publ., 79-94.
  • [61] Moncheva, S., Gotsis-Skretas, O., Pagou, K., Krastev, A., 2001. Phytoplankton blooms in Black Sea and Mediterranean coastal ecosystems subjected to anthropogenic eutrophication: similarities and differences. Estuar. Coast. Shelf Sci. 53 (3), 281-295, http://dx.doi.org/10.1006/ecss.2001.0767.
  • [62] Morozova-Vodyanitskaya, N. V., 1957. Phytoplankton in the Black Sea and its qualitative development. Tr. Sevastopol. Biolog. St. 9, 3-13, (in Russian).
  • [63] Nagata, T., Takai, K., Kawabata, K. I., Nakanishi, M., Urabe, J., 1996. The trophic transfer via a picoplankton-flagellate-copepod food chain during a picocyanobacterial bloom in Lake Biwa. Archiv. Hydrobiol. 137, 145-160.
  • [64] Oguz, T., 2005. Black ecosystem response to climatic teleconnections. Oceanography 18, 122-133, http://dx.doi.org/10.5670/oceanog.2005.47.
  • [65] Oguz, T., Ediger, D., 2006. Comparison of in-situ and satellite-derived chlorophyll pigment concentrations and impact of phytoplankton bloom on the sub-oxic layer structure in the western Black Sea during May-June 2001. Deep-Sea Res. Pt. II 53 (17-19), 1923-1933, http://dx.doi.org/10.1016/j.dsr2.2006.07.001.
  • [66] Pautova, L. A., Mikaelyan, A. S., Silkin, V. A., 2007. The structure of the plankton community in shelf waters of the north-eastern part of the Black Sea in the period of mass bloom of Emiliania huxleyi in 2002-2005. Oceanology 47, 408-417.
  • [67] Pedersen, L., Jensen, H. M., Burmeister, A., Hansen, B. W., 1999. The significance of food web structure for the condition and tracer lipid content of juvenile snail fish (Pisces: Liparis spp.) along 65-728N off West Greenland. J. Plankton Res. 21 (9), 1593-1611, http://dx.doi.org/10.1093/plankt/21.9.1593.
  • [68] Platt, T., Fuentes-Yaco, C., Frank, K., 2003. Spring algal bloom and larval fish survival. Nature 423, 398-399, http://dx.doi.org/10.1038/423398b.
  • [69] Rampi, L., Bernard, M., 1978. Key for the determination of Mediterranean pelagic diatoms. In: Comit. Naz. Energia Nucleare, Roma, 71 pp.
  • [70] Richardson, A., Schoeman, D. S., 2004. Climate impact on planktonic ecosystems in the Northeast Atlantic. Science 305 (5690), 1609-1612, http://dx.doi.org/10.1126/science.1100958.
  • [71] Roy, R., Pratihary, A., Mangesh, G., Naqvi, S. W. A., 2006. Spatial variation of phytoplankton pigments along the southwest coast of India. Estuar. Coast. Shelf Sci. 69 (1-2), 189-195, http://dx.doi.org/10.1016/j.ecss.2006.04.006.
  • [72] Rykaczewski, R. R., Dunne, J. P., 2011. A measured look at ocean chlorophyll trends. Nature 472 (7342), E5-E6, http://dx.doi.org/10.1038/nature09952.
  • [73] Schlüter, L., Mohlenberg, F., Havskum, H., Larsen, S., 2000. The use of phytoplankton pigments for identifying and quantifying phytoplankton groups in coastal areas: testing the influence of light and nutrients on pigment/chlorophyll a ratios. Mar. Ecol.-Prog. Ser. 192, 49-63, http://dx.doi.org/10.3354/meps192049.
  • [74] Senicheva, M. I., 2000. Annual changes in phytoplankton communities near the Sevastopol Oceanarium. Ecol. Moray 53, 15-19.
  • [75] Silkin, V. A., Pautova, L. A., Pakhomova, S. V., Lifanchuk, A. V., Yakushev, E. V., Chasovnikov, V. K., 2014. Environmental control on phytoplankton community structure in the NE Black Sea. J. Exp. Mar. Biol. Ecol. 461, 267-274, http://dx.doi.org/10.1016/j.jembe.2014.08.009.
  • [76] Sukhanova, I. N., Mikaelyan, A. S., Georgieva, L. V., 1991. Spatial distribution and temporal variations of the Black Sea phytoplankton during the period of the spring blooming. In: Phytoplankton Studies in the System of Monitoring of the Baltic Sea and Other Seas of Russia. Gidrometeoizdat, Moscow, 135-151, (in Russian).
  • [77] Takahashi, T., Sutherland, S. C., Sweeney, C., Poisson, A., Metzl, N., Tilbrook, B., Bates, N., Wanninkhof, R., Feely, R. A., Sabine, C., Olafsson, J., Nojiri, Y., 2002. Global sea-air CO2 flux based on climatological surface ocean pCO2 and seasonal biological and temperature effects. Deep-Sea Res. Pt. II 49 (9-10), 1601-1622, http://dx.doi.org/10.1016/S0967-0645(02)00003-6.
  • [78] Tolmazin, D., 1985. Changing coastal oceanography of the Black Sea. I: Northwestern shelf. Prog. Oceanogr. 15 (4), 217-276, http://dx.doi.org/10.1016/0079-6611(85)90038-2.
  • [79] Tomas, C. R., 1996. Identification Marine Diatoms and Dinoflagellates. Academic Press, San Diego, 598 pp.
  • [80] Uitz, J., Claustre, H., Morel, A., Hooker, S. B., 2006. Vertical distribution of phytoplankton communities in open ocean: an assessment based on surface chlorophyll. J. Geophys. Res.-Oceans 111 (C8), http://dx.doi.org/10.1029/2005JC003207.
  • [81] Utermöhl, H., 1958. Zur Vervollkommnung der quantitativen phytoplankton: Methodik Mitteilung Internationale Vereinigung Theoretische und Angewandte Limnologie 9. 1-38.
  • [82] Uysal, Z., Kideys, A. E., Senichkina, L., Georgieva, L., Altukhov, D., Kuzmenko, L., Manjos, L., Mutlu, E., Eker, E., 1998. Phytoplankton patches formed along the southern Black Sea coast in spring and summer 1996. In: Ivanov, L., Oguz, T. (Eds.), Ecosystem Modelling as a Management Tool for the Black Sea, vol. 1. Kluwer Academic Publishers, Dordrecht, The Netherlands, 151-162.
  • [83] Uysal, Z., Sur, H. I., 1995. Net phytoplankton discriminating patches along the Southern Black Sea Coast in winter 1990. Oceanol. Acta 18 (6), 639-647.
  • [84] Verity, P. G., Smetacek, V., 1996. Organism life cycles, predation, and the structure of marine pelagic systems. Mar. Ecol.-Prog. Ser. 130, 277-293, http://dx.doi.org/10.3354/meps130277.
  • [85] Vidussi, F., Claustre, H., Manca, B. B., Luchetta, A., Marty, J. C., 2001. Phytoplankton pigment distribution in relation to upper thermocline circulation in the eastern Mediterranean Sea during winter. J. Geophys. Res.-Oceans 106 (C9), 19939-19956, http://dx.doi.org/10.1029/1999JC000308.
  • [86] Wright, S. W., Jeffrey, W., 2006. Pigment markers for phytoplankton production. In: Volkman, J. K. (Ed.), Marine Organic Matter: Biomarkers, Isotopes and DNA. Springer-Verlag, Berlin, 71-104.
  • [87] Wright, S. W., Thomas, D. P., Marchant, H. J., Higgins, H. W., Mackey, M. D., Mackey, D. J., 1996. Analysis of phytoplankton of the Australian sector of the Southern Ocean: comparisons of microscopy and size frequency data with interpretations of pigment HPLC data using the 'CHEMTAX' matrix factorisation program. Mar. Ecol.-Prog. Ser. 144, 285-298, http://dx.doi.org/10.3354/meps144285.
  • [88] Yilmaz, A., Coban-Yildiz, Y., Tugrul, S., 2006. Biogeochemical cycling and multilayer production in the Black Sea. Geophys. Res. Abstracts 8, 00541.
  • [89] Zaitsev, Yu. P., Alexandrov, B. G., 1997. Recent man-made changes in the Black Sea Ecosystem. In: Ozsoy, E., Mikaelyan, A. (Eds.), Sensitivity to Change: Black Sea, Baltic Sea and North Sea. Kluwer Acad. Publ., Dordrecht, the Netherlands, 25-31.
  • [90] Zapata, M., Jeffrey, S. W., Wright, S. W., Rodríguez, F., Garrido, J. L., Clementson, L., 2004. Photosynthetic pigments in 37 species (65 strains) of Haptophyta: implications for oceanography and chemotaxonomy. Mar. Ecol.-Prog. Ser. 270, 83-102, http://dx.doi.org/10.3354/meps270083.
Uwagi
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę (zadania 2017).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-9f6f2b8e-09b4-4ed6-9c59-128e6df90c71
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.