Wang Dan, Huang Bangqin, Liu Xin, Liu Guimei, Wang Hui. Seasonal variations of phytoplankton phosphorus stress in the Yellow Sea Cold Water Mass[J]. Acta Oceanologica Sinica, 2014, 33(10): 124-135. doi: 10.1007/s13131-014-0547-x
Citation: Wang Dan, Huang Bangqin, Liu Xin, Liu Guimei, Wang Hui. Seasonal variations of phytoplankton phosphorus stress in the Yellow Sea Cold Water Mass[J]. Acta Oceanologica Sinica, 2014, 33(10): 124-135. doi: 10.1007/s13131-014-0547-x

Seasonal variations of phytoplankton phosphorus stress in the Yellow Sea Cold Water Mass

doi: 10.1007/s13131-014-0547-x
  • Received Date: 2013-08-19
  • Rev Recd Date: 2014-05-16
  • The Yellow Sea is located between the China Mainland and the Korean Peninsula, representing a typical shallow epicontinental sea. The Yellow Sea Cold Water Mass (YSCWM) is one of the most important physical features in the Yellow Sea. The characteristics of vertical profiles and seasonal variations of biogenic elements in the YSCWM may lead the variations of nutrient availability (e.g., phosphorus) and phosphorus stress of phytoplankton. In this study, the authors surveyed the seasonal variations of phytoplankton phosphorus stress with emphasis on the effect of the YSCWM during the four cruises in April and October 2006, March and August 2007. Using both bulk and single-cell alkaline phosphatase activity (APA) assays, this study evaluated phosphorus status of phytoplankton community, succession of phytoplankton community and ecophysiological responses of phytoplankton to phosphorus in the typical region of the YSCWM. With the occurrence of the YSCWM, especially the variations of concentration of dissolved inorganic phosphorus (DIP), the results of bulk APA appeared corresponding seasonal variations. Along Transects A and B, the mean APA in August was the highest, and that in March was the lowest. According to the ELF-labeled assay’s results, seasonal variations of the ELF-labeled percentages within dominant species indicated that diatoms were dominant in March, April and October, while dinoflagellates were dominant in August. During the four cruises, the ELF-labeled percentages of diatoms except Paralia sulcata showed that diatoms were not phosphorus deficient in April 2006 at all, but suffered from severe phosphorus stress in August 2007. In comparison, the ELF-labeled percentages of dinoflagellates were all above 50% during the four time series, which meant dinoflagellates such as Alexandrium and Scrippsiella, sustained perennial phosphorus stress.
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  • Anderson D M, Glibert P M, Burkholder J M. 2002. Harmful algal blooms and eutrophication: nutrient sources, composition, and consequences. Estuaries, 25: 704-726
    Armstrong F A J, Stearns C R, Strickand J D H. 1967. The measurement of upwelling and subsequent biological process by means of the Technicon Autoanlyzer? and associated equipment. Deep Sea Research and Oceanographic Abstracts, 14(3): 381-389
    Beardall J, Berman T, Heraud P, et al. 2001. A comparison of methods for detection of phosphate limitation in microalgae. Aquat Sci, 63: 107-121
    Beardall J, Young E, Roberts S. 2001. Approaches for determining phytoplankton nutrient limitation. Aquat Sci, 63: 44-69
    Beardsley R C, Limeburner R, Yu H, et al. 1985. Discharge of the Changjiang (Yangtze River) into the East China Sea. Cont Shelf Res, 4: 57-76
    Benitez-Nelson C R, Buesseler K O. 1999. Variability of inorganic and organic phosphorus turnover rates in the coastal ocean. Nature, 398: 502-505
    Bruckmeier B, Eisenmann H, Beisker W. 2005. Exogenous alkaline phosphatase activity of algal cells determined by fluorometric and flow cytometic detection of soluble enzyme product (4-methyl-umbelliferone, fluorescein). J Phycol, 41: 993-999
    Cembella A D, Antia N J, Harrison P J. 1984. The utilization of inorganic and organic phosphorous compounds as nutrients by eukaryotic microalgae: a multidisciplinary perspective: Part 1. CRC Crit Rev Microbiol, 10(4): 317-391
    Chróst R J. 1991. Environmental control of the synthesis and activity of aquatic microbial ectoenzymes. In: Chróst R J, ed. Microbial Enzymes in Aquatic Environments. New York: Springer, 29-59
    Conley D J. 2000. Biogeochemical nutrient cycles and nutrient management strategies. Hydrobiologia, 410: 87-96
    Currie D J, Bentzen E, Kalff J. 1986. Does algal-bacterial phosphorus partitioning vary among lakes? A comparative study of orthophosphate uptake and alkaline phosphatase activity in freshwater. Can J Fish Aquat Sci, 43: 311-318
    Dignum M, Hoogveld H, Matthijs H C P, et al. 2004. Detecting the phosphate status of phytoplankton by enzyme-labelled fluorescence and flow cytometry. FEMS Microbiol Ecol, 48: 29-38
    Dyhrman S T. 2005. Ectoenzymes in Prorocentrum minimum. Harmful Algae, 4: 619-627
    Dyhrman S T, Palenik B. 1997. The identification and purification of a cell-surface alkaline phosphatase from the dinoflagellate Prorocentrum minimum (Dinophyceae). J Phycol, 33: 602-612
    Dyhrman S T, Palenik B. 1999. Phosphate stress in cultures and field populations of dinoflagellate Prorocentrum minimum detected by a single-cell alkaline phosphatase assay. Appl Environ Microbiol, 65(7): 3205-3212
    Dyhrman S T, Palenik B. 2001. A single-cell immunoassay for phosphate stress in the dinoflagellate Prorocentrum minimum (Dinophyceae). J Phycol, 37: 400-410
    Dyhrman S T, Webb E A, Anderson D M, et al. 2002. Cell-specific detection of phosphorus stress in Trichodesmium from the western North Atlantic. Limnol Oceanogr, 47: 1832-1836
    González-Gil S, Keafer B A, Jovine R V M, et al. 1998. Detection and quantification of alkaline phosphatase in single cells of phosphorus-starved marine phytoplankton. Mar Ecol Prog Ser, 164: 21-35
    Harrison P J, Hu M, Yang Y, et al. 1990. Phosphate limitation in estuarine and coastal waters of China. J Exp Mar Biol Ecol, 140: 79-87
    Holmboe N, Jensen H S, Andersen F Ø. 1999. Nutrient addition bioassays as indicators of nutrient limitation of phytoplankton in a eutrophic estuary. Mar Ecol Prog Ser, 186: 95-104
    Hong Huasheng, Liu Xin, Chiang Kuoping, et al. 2011. The coupling of temporal and spatial variations of chlorophyll a concentration and the East Asian monsoons in the southern Taiwan strait. Cont Shelf Res, 31: S37-S47
    Hoppe H G. 2003. Phosphatase activity in the sea. Hydrobiologia, 493: 187-200
    Hu Minghui, Yang Yiping, Xu Chunling, et al. 1989. Phosphate limitation of phytoplankton growth in the Yangtze estuary. Acta Oceanol Sin (in Chinese), 11(4): 439-443
    Huang X Q, Morris J T. 2005. Distribution of phosphatase activity in marsh sediments along an estuarine salinity gradient. Mar Ecol Prog Ser, 292: 75-83
    Huang Bangqin, Ou Linjian, Wang Xiulin, et al. 2007. Alkaline phosphatase activity of phytoplankton in East China Sea coastal waters with frequent harmful algal bloom occurrences. Aquat Microb Ecol, 49: 195-206
    Ichikawa H, Beardsley R C. 2002. The current system in the Yellow and East China Seas. J Oceanogr, 58(1): 72-92
    Karl D M. 2014. Microbially mediated transformations of phosphorus in the sea: New views of an old cycle. Annu Rev Marine Sci, 6: 279-337
    Karl D M, Björkman K, Dore J E, et al. 2001. Ecological nitrogen to phosphorus stoichiometry at Station ALOHA. Deep Sea Res Pt II, 48: 1529-1566
    Kruskopf M M, Plessis S D. 2004. Induction of both acid and alkaline phosphatase activity in two green algae (chlorophyceae) in low N and P concentrations. Hydrobiologia, 513: 59-70
    Li H, Veldhuis M J W, Post A F. 1998. Alkaline phosphatase activities among planktonic communities in the northern Red Sea. Mar Ecol Prog Ser, 173: 107-115
    Liu Xin. 2012. Studies on the dynamics of phytoplankton community structure in the typical region of yellow sea (in Chinese) [dissertation]. Xiamen: Xiamen University Lomas M W, Swain A, Shelton R, et al. 2004. Taxonomic variability of phosphorus stress in Sargasso sea phytoplankton. Limnol Oceanogr, 49(6): 2303-2310
    Murphy J, Riley J P. 1962. A modified single solution method for the determination of phosphate in natural waters. Anal Chim Acta, 27: 31-36
    Nausch M. 1998. Alkaline phosphatase activities and the relationship to inorganic phosphate in the Pomeranian bight (southern Baltic Sea). Aquat Microb Ecol, 16: 87-94
    Nausch M. 2004. Phosphorus dynamics during the transition from nitrogen to phosphate limitation in the central Baltic sea. Mar Ecol Prog Ser, 266: 15-25
    Nedoma J, García J C, Comerma M, et al. 2006. Extracellular phosphatases in a Mediterranean reservoir: seasonal, spatial and kinetic heterogeneity. Freshwater Biol, 51: 1264-1276
    Nygaard K, Tobiesen A. 1993. Bacterivory in algae: a survival strategy during nutrient limitation. Limnol Oceanogr, 38: 273-279
    Oh Kyung-Hee, Lee Seok, Song Kyu-Min, et al. 2013. The temporal and spatial variability of the Yellow Sea Cold Water Mass in the southeastern Yellow Sea, 2009-2011. Acta Oceanologica Sinica, 32(9): 1-10
    Ou Linjian, Huang Bangqin, Lin Lizhen, et al. 2006. Phosphorus stress of phytoplankton in the Taiwan strait determined by bulk and single-cell alkaline phosphatase activity assays. Mar Ecol Prog Ser, 327: 95-106
    Ou Linjian, Wang Dan, Huang Bangqin, et al. 2008. Comparative study of phosphorus strategies of three typical harmful algae in Chinese coastal waters. J Plankton Res, 30(9): 1007-1017
    Ou Linjian, Huang Bangqin, Hong Huasheng, et al. 2010. Comparative alkaline phosphatase characteristics of the algal bloom dinoflagellates prorocentrum donghaiense and alexandrium catenella, and the Diatom Skeletonema costatum. Journal of Phycology, 46(2): 260-265
    Pettersson K. 1980. Alkaline phosphatase activity and algal surplus phosphorus as phosphorus-deficiency indicators in Lake Erken. Arch Hydrobiol, 89(1-2): 54-87
    Pai S C, Yang C C, Riley J P. 1991. Effects of acidity and molybdate concentration on the kinetics of the formation of the phosphoantimonylmolybdenum blue complex. Anal Chim Acta, 229: 115-120
    Redfiled A C. 1958. The biological control of chemical factors in the environment. Am Sci, 46(3): 205-221
    Rengefors K, Pettersson K, Blenckner T, et al. 2001. Species-specific alkaline phosphatase activity in freshwater spring phytoplankton: application of a novel method. J Plankton Res, 23: 435-443
    Rengefors K, Ruttenberg K C, Haupert C L, et al. 2003. Experimental investigation of taxon-specific response of alkaline phosphatase activity in natural freshwater phytoplankton. Limnol Oceanogr, 48: 1167-1175
    Riegman R, Stolte W, Noordeloos A A M, et al. 2000. Nutrient uptake and alkaline phosphatase (EC 3:1:3:1) activity of Emiliania huxleyi (Prymnesiophyceae) during growth under N and P limitation in continuous cultures. J Phycol, 36: 87-96
    Ren Huijun, Zhan Jiemin. 2005. A numerical study on the seasonal variability of the yellow sea cold water mass and the related dynamics. Journal of Hydrodynamics (in Chinese), 20(S1): 887-896
    Ruttenberg K C, Dyhrman S T. 2005. Temporal and spatial variability of dissolved organic and inorganic phosphorus, and metrics of phosphorus bioavailability in an upwelling-dominated coastal system. J Geophys Res, 110(C10): C10S13
    Sebastián M, Arítegui J, Montero M F, et al. 2004a. Alkaline phosphatase activity and its relationship to inorganic phosphorus in the transition zone of the north-western African upwelling system. Prog Oceanogr, 62: 131-150
    Sebastián M, Arítegui J, Montero M F, et al. 2004b. Kinetics of alkaline phosphatase activity, and effect of phosphate enrichment: a case study in the NW African upwelling region. Mar Ecol Prog Ser, 270: 1-13
    Smayda T J, Reynolds C S. 2003. Strategies of marine dinoflagellate survival and some rules of assembly. J Sea Res, 49: 95-106
    Stihl A, Sommer U, Post A F. 2001. Alkaline phosphatase activities among populations of the colony-forming diazotrophic cyanobacterium trichodesmium spp. (Cyanobacteria) in the Red Sea. J Phycol, 37(2): 310-317
    Sundareshwar P V, Morris J T, Koepfler E K, et al. 2003. Phosphorus limitation of coastal ecosystem processes. Science, 299: 563-565
    Thingstad T. 2005. Simulating the response to phosphate additions in the oligotrophic eastern Mediterranean using an idealized four-member microbial food web model. Deep Sea Res Pt II, 52: 3074-3089
    Thingstad T F, Skjoldal E F, Bohne R A. 1993. Phosphorus cycling and algal-bacterial competition in Sandsfjord, western Norway. Mar Ecol Prog Ser, 99: 239-259
    Tyrell T. 1999. The relative influence of nitrogen and phosphorus on oceanic primary production. Nature, 400: 525-531
    Vidal M, Duarte C M, Agusti S, et al. 2003. Alkaline phosphatase activities in the central Atlantic Ocean indicate large areas with phosphorus deficiency. Mar Ecol Prog Ser, 262: 43-53
    Wang Baodong. 2003. Nutrient distribution and their limitation on phytoplankton in the Yellow Sea and the East China Sea. Journal of Applied Ecology (in Chinese), 14(7): 1122-1126. Wong G, Gong G, Liu K, et al. 1998. ‘Excess Nitrate’ in the East China Sea. Estuar Coast Shelf Sci, 46: 411-418
    Yakahashi S, Yanagi T. 1995. A numerical study on the formation of circulations in the Yellow Sea during summer. La Mer, 33: 135-147
    Yin Kedong, Qian Peiyuan, Chen J, et al. 2000. Dynamics of nutrients and phytoplankton biomass in the Pearl River estuary and adjacent waters of Hong Kong during summer: preliminary evidence for phosphorus and silicon limitation. Mar Ecol Prog Ser, 194: 295-305
    Yu Fei, Zhang Zhixin, Diao Xinyuan, et al. 2006. Analysis of evolution of the Huanghai Sea cold water mass and its relationship with adjacent water masses. Acta Oceanol Sin (in Chinese), 28(5): 27-34
    Zhang Runyu, Wu Fengchang, Liu Congqiang, et al. 2008. Characteristics of organic phosphorus fractions in different trophic sediments of lakes from the middle and lower reaches of Yangtze River region and Southwestern Plateau, China. Environmental Pollution, 152(2): 366-372
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