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Adaptations of phytoplankton in the Indian Ocean sector of the Southern Ocean during austral summer of 1998—2014

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Abstract

This study investigates the effects of light and temperature on the surface water diatoms and chlorophytes, phytoplankton in the Indian Ocean sector of the Southern Ocean (SO) during the austral summer of 1998‒2014. Significant longitudinal variations in hydrographic and biological parameters were observed at the Sub tropical front (STF), Sub Antarctic front (SAF) and Polar front (PF) along 56°E‒58°E. The concentrations of total surface chlorophyll a (Chl a), diatoms, and chlorophytes measured by the National Aeronautics Space Agency (NASA) estimated by the Sea-Viewing Wide Field-of-View Sensors (SeaWiFS), the Moderate Resolution Imaging Spectro Radiometer (MODIS), and the NASA Ocean Biological Model (NOBM) were used in the study. Variations in the concentration of total Chl a was remarkable amongst the fronts during the study period. The contribution of diatoms to the total concentration of surface Chl a increased towards south from the STF to the PF while it decreased in the case of chlorophytes. The maximum photosynthetically active radiation (PAR) was observed at the STF and it progressively decreased to the PF through the SAF. At the PF region the contribution of diatoms to the total Chl a biomass was ≥80%. On the other hand, the chlorophytes showed a contrary distribution pattern with ≥70% of the total Chl a biomass recorded at the STF which gradually decreased towards the PF, mainly attributed to the temperate adaptation. This clearly reveals that the trend of diatoms increased at the STF and decreased at the SAF and the PF. Further, the trend of chlorophytes was increased at the STF, SAF and PF with a shift in the community in the frontal system of the Indian Ocean sector of the SO.

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References

  • Allanson B R, Hart R C, Lutjehams J R E (1981). Observations on the nutrients, chlorophyll, and primary production of the Southern Ocean south of Africa. S Afr J Antarct Res, 10/11: 3–14

    Google Scholar 

  • Alvain S, Le Quéré C, Bopp L, Racault M F, Beaugrand G, Dessailly D, Buitenhuis E T (2013). Rapid climatic driven shifts of diatoms at high latitudes. Remote Sens Environ, 132: 195–201

    Article  Google Scholar 

  • Anderson O R (1976). Respiration and photosynthesis during resting cell formation in Amphora coffeaeformis (A.G) Kutz. Limnological Oceanography, 21(3): 452–456

    Article  Google Scholar 

  • Bachy C, Lopez-Garcia P, Vereshchaka A, Moreira D (2011). Diversity and vertical distribution of microbial eukaryotes in the snow, sea ice and sea water near the North Pole at the end of the polar night. Frontiers Microbiology, 2, doi: 3389/fmicb.2011.00106

    Google Scholar 

  • Banse K, English D C (1997). Near-surface phytoplankton pigment from the coast zone color scanner in the sub Antarctic region southeast of New Zealand. Mar Ecol Prog Ser, 156: 51–66

    Article  Google Scholar 

  • Bathmann U V, Scharek R, Klaas C, Dubischar C D, Smetacek V (1997). Spring development of phytoplankton biomass and composition in major water masses of the Atlantic sector of the Southern Ocean. Deep Sea Res Part II Top Stud Oceanogr, 44(1–2): 51–67

    Article  Google Scholar 

  • Belkin I M, Gordon A L (1996). Southern Ocean fronts from the Greenwich meridian to Tasmania. J Geophys Res, 101(C2): 3675–3696

    Article  Google Scholar 

  • Bischoff B, Wiencke C (1995). Temperature ecotypes and biogeography of Acrosiphoniales (Chlorophyta) with Arctic-Antarctic disjunct and Arctic/cold-temperate distributions. Eur J Phycol, 30(1): 19–27

    Article  Google Scholar 

  • Blanc G, Agarkova I, Grimwood J, Kuo A, Brueggeman A, Dunigan D D, Gurnon J, Ladunga I, Lindquist E, Lucas S, Pangilanan J, Pröschold T, Salamov A, Schmutz J, Weeks D, Yamada T, Lomsadze A, Borodovsky M, Claverie J M, Grigorriev I V, Van Etten J L (2012). The genome of the polar eukaryotic microalga Coccomyxa subellipsoidea reveals traits of cold adaptation. Genome Biol, 13(5): R39

    Article  Google Scholar 

  • Bolten J J, Lüning K (1982). Optimal growth and maximal survival temperatures of Atlantic Laminaria species (Phaeophyta) in culture. Mar Biol, 66(1): 89–94

    Article  Google Scholar 

  • Bolton J J (1983). Ecodinal variation in Ectocarpus siliculosus (Phaeophyceae) with respect to temperature growth optima and survival limits. Mar Biol, 73: 131–138

    Article  Google Scholar 

  • Boyd P W (2002). Environmental factors controlling phytoplankton processes in the Southern Ocean. J Phycol, 38(5): 844–861

    Article  Google Scholar 

  • Brown S L, Landry M R (2001). Microbial community structure and biomass in surface waters during a polar front summer bloom along 170°W. Deep Sea Res Part II Top Stud Oceanogr, 48(19–20): 4039–4058

    Article  Google Scholar 

  • Dandonneau Y, Deschamps P Y, Nicolas J M, Loisel H, Blanchot J, Montel Y, Thieuleux F, Becu G (2004). Seasonal and inter-annual variability of ocean color and composition of phytoplankton communities in north Atlantic, equatorial pacific and south pacific. Deep Sea Research II, 51: 303–318

    Article  Google Scholar 

  • de Baar H J W, Boyd P W, Coale K H, Landry M R, Tsuda A, Assmy P, Bakker D C E, Bozec Y, Barber R T, Brzezinski M A, Buesseler, K O M, Boyé P L, Croot, F, Gervais M Y, Gorbunov P J, Harrison W T, Hiscock P, Laan C, Lancelot C S, Law M, Levasseur A, Marchetti F J, Millero J, Nishioka Y, Nojiri T, Van Oijen U, Riebesell M J A, Rijkenberg H, Saito S, Takeda K R, Timmermans M J W, Veldhuis A (2005). Synthesis of iron fertilization experiments: from the Iron Age in the age of enlightenment. J Geophys Res, 110(9): 1–24

    Google Scholar 

  • Eppley R W (1972). Temperature and phytoplankton growth in the sea. Fish Bull, 70: 1063–1085

    Google Scholar 

  • Gall M P, Boyd P W, Hall J, Safi K A, Chang H (2001). Phytoplankton processes. Part 1: community structure during the Southern ocean on Release Experiment (SOIREE). Deep Sea Res Part II Top Stud Oceanogr, 48(11–12): 2551–2570

    Article  Google Scholar 

  • Gregg W W, Conkright M E, Ginoux P, O’Reilly J E, Casey N W (2003). Ocean primary production and climate: global decadal changes. Geophys Res Lett, 30(15): 1809–1813

    Article  Google Scholar 

  • Hirata T, Hardman-Mountford N J, Barlow R, Lamont T, Brewin R, Smyth T, Aiken J (2009). An inherent optical property approach to the estimation of size-specific photosynthetic rates in eastern boundary upwelling zones from satellite ocean colour: an initial assessment. Prog Oceanogr, 83(1–4): 393–397

    Article  Google Scholar 

  • Holliday N P, Read J F (1998). Surface oceanic fronts between Africa and Antarctica. Deep-Sea Res, 45(2–3): 217–238

    Article  Google Scholar 

  • Jena B, Sahu S, Avinash K, Swain D (2013). Observation of oligotrophic gyre variability in the south Indian Ocean: environmental forcing and biological response. Deep Sea Res Part I Oceanogr Res Pap, 80: 1–10

    Article  Google Scholar 

  • Martinez E, Antoine D, D’Ortenzio F, Genthili B (2009). Climate driven bas in-scale decadal oscillation of oceanic phytoplankton. Science, 326(5957): 1253–1256

    Article  Google Scholar 

  • Masotti I, Moulin C, Alvain S, Bopp L, Tagliabue A, Antoine D (2011). Large-scale shifts in phytoplankton groups in the equatorial pacific during ENSO cycles. Biogeosciences, 8(3): 539–550

    Article  Google Scholar 

  • Mengelt C, Abbott M R, Barth J A, Letelier R M, Measures C I, Vink S (2001). Phytoplankton pigment distributions in relation to silicic acid, iron and the physical structure across the Antarctic Polar Front, 170ºW, during austral summer. Deep Sea Res Part II Top Stud Oceanogr, 48(19–20): 4081–4100

    Article  Google Scholar 

  • Mock T, Gradinger R (1999). Determination of Arctic ice algal production with a new in situ incubation technique. Mar Ecol Prog Ser, 177: 15–26

    Article  Google Scholar 

  • Moore J K, Abbott M R (2000). Phytoplankton chlorophyll distributions and primary production in the Southern Ocean. J Geophys Res, 105 (C12): 28709–28722

    Article  Google Scholar 

  • Moore J K, Abbott M R, Richman J G, Smith W O, Cowles T J, Coale K H, Gardner W D, Barber R T (1999). SeaWiFS satellite ocean color data from the Southern Ocean. Geophys Res Lett, 26(10): 1465–1468

    Article  Google Scholar 

  • Morgan-Kiss R M, Ivanov A G, Modla S, Czymmek K, Huner N P A, Priscu J P, Lisle J T, Hanson T E (2008). Identity and physiology of new psychrophilic eukaryotic green alga. Chlorella sp., strain BI, isolated from a transitory pond near Bratina Island, Antarctica. Extremophiles, 12(5): 701–711

    Google Scholar 

  • Morgan-Kiss R M, Priscu J C, Pocock T, Gudynaite-Savitch L, Huner N P A (2006). Adaptation and acclimation of photosynthetic microorganisms to permanently cold environments. Microbiol Mol Biol Rev, 70(1): 222–252

    Article  Google Scholar 

  • Neven I A, Stefels J, van Heuven S M A C, de Baar H J W, Elzenga J T M (2011). High plasticity in inorganic carbon uptake by Southern Ocean phytoplankton in response to ambient CO2. Deep Sea Res part II, 306: 79–86

    Google Scholar 

  • Orsi A H, Whitworth T III, Nowlin W D Jr (1995). On the meridional extent and fronts of the Antarctic Circumpolar Current. Deep-Sea Res, 42(5): 641–673

    Article  Google Scholar 

  • Peters E (1996). Prolonged darkness and diatom mortality: II. imarine temperate species. J Exp Mar Biol Ecol, 207: 43–58

    Article  Google Scholar 

  • Peters E, Thomas D N (1996). Prolonged darkness and diatom mortality I: marine Antarctic species. J Exp Mar Biol Ecol, 207: 25–41

    Article  Google Scholar 

  • Rousseaux C S, Gregg W W (2012). Climate variability and phytoplankton composition in the pacific Ocean. J Geophys Res, 117(C10): C10006

    Article  Google Scholar 

  • Selph K E, Landry M R, Allen C B, Calbet A, Christensen S, Bidigare R R (2001). Microbial community composition and growth dynamics in the Antarctic Polar Front and seasonal ice zone during late spring1997. Deep Sea Res Part II Top Stud Oceanogr, 48(19–20): 4059–4080

    Article  Google Scholar 

  • Smetacek V (1985). The annual cycle of Kiel Bight plankton: a long term analysis. Estuaries, 8(2): 145–157

    Article  Google Scholar 

  • Smetacek V, de Baar Hein J W, Bathmann U, Lochte K, Rutgers van der L, Michiel M (1997). Ecology and biogeochemistry of the Antarctic circumpolar current during austral spring: a summary of Southern Ocean JGOFS cruise ANT X/6 of RV Polarstern. Deep Sea Research Part II: Topical Studies in Oceanography, 44(1–2): 1–21

    Article  Google Scholar 

  • Smyda T (1980). Phytoplankton species succession. In: Morris I, ed. Physiological Ecology of Phytoplankton. University of California (press), 493–570

    Google Scholar 

  • Strzepek R F, Harrison P J (2004). Photosynthetic architecture differs in coastal and oceanic diatoms. Nature, 431(7009): 689–692

    Article  Google Scholar 

  • Suhas S S, Mohan R, Patil S, Jena B, Chacko R, George J V, Noronha S, Singh N, Priya L, Sudhakar M (2015). Oceanic pCO2 in the Indian sector of the Southern Ocean during the austral summer–winter transition phase. Deep Sea Res Part II Top Stud Oceanogr

    Google Scholar 

  • Takahashi T, Sweeney C, Hales B, Chipman D W, Newberger T, Goddard J G, Iannuzzi R A, Sutherland S C (2012). The changing carbon cycle in the Southern Ocean. Oceanography (Wash DC), 25 (3): 26–37

    Article  Google Scholar 

  • Wiencke C, Bartsch I, Bischoff B, Peters A F, Breeman A M (1994). Temperature requirements and biogeography of Antarctic, Arctic and Amphi equatorial seaweed. Bot Mar, 37(3): 247–259

    Article  Google Scholar 

  • Wiencke C, Fischer G (1990). Growth and stable isotope composition of cold-water macroalgae in relation to light and temperature. Mar Ecol Prog Ser, 65: 283–292

    Article  Google Scholar 

  • Wiencke C, tom Dieck I (1989). Temperature requirements for growth and temperature tolerance of macro-algae endemic to the Antarctic region. Mar Ecol Prog Ser, 54: 189–197

    Article  Google Scholar 

  • Zeldis J (2001). Mesozooplankton community composition, feeding and export production during SOIREE. Deep Sea Res Part II Top Stud Oceanogr, 48(11–12): 2615–2634

    Article  Google Scholar 

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Mishra, R.K., Naik, R.K. & Anil Kumar, N. Adaptations of phytoplankton in the Indian Ocean sector of the Southern Ocean during austral summer of 1998—2014. Front. Earth Sci. 9, 742–752 (2015). https://doi.org/10.1007/s11707-015-0541-4

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