Response of Phytoplankton Photophysiology to Varying Environmental Conditions in the Sub-Antarctic and Polar Frontal Zone

被引:19
|
作者
Cheah, Wee [1 ,2 ]
McMinn, Andrew [1 ,2 ]
Griffiths, F. Brian [2 ,3 ]
Westwood, Karen J. [2 ,4 ]
Wright, Simon W. [2 ,4 ]
Clementson, Lesley A. [2 ,4 ]
机构
[1] Univ Tasmania, Inst Marine & Antarctic Studies, Hobart, Tas, Australia
[2] Univ Tasmania, Antarctic Climate & Ecosyst CRC, Hobart, Tas, Australia
[3] CSIRO, Div Marine & Atmospher Res, Hobart, Tas, Australia
[4] Australian Antarctic Div, Kingston, Tas, Australia
来源
PLOS ONE | 2013年 / 8卷 / 08期
关键词
SOUTHERN-OCEAN; IRON-LIMITATION; CHLOROPHYLL FLUORESCENCE; MARINE-PHYTOPLANKTON; EXCESSIVE IRRADIANCE; COMMUNITY STRUCTURE; SEASONAL EVOLUTION; ELECTRON TURNOVER; LIGHT; PHOTOSYNTHESIS;
D O I
10.1371/journal.pone.0072165
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Climate-driven changes are expected to alter the hydrography of the Sub-Antarctic Zone (SAZ) and Polar Frontal Zone (PFZ) south of Australia, in which distinct regional environments are believed to be responsible for the differences in phytoplankton biomass in these regions. Here, we report how the dynamic influences of light, iron and temperature, which are responsible for the photophysiological differences between phytoplankton in the SAZ and PFZ, contribute to the biomass differences in these regions. High effective photochemical efficiency of photosystem II (F-q'/F-m' > 0.4), maximum photosynthesis rate (P-max(B)), light-saturation intensity (E-k), maximum rate of photosynthetic electron transport (1/tau(PSII)), and low photoprotective pigment concentrations observed in the SAZ correspond to high chlorophyll a and iron concentrations. In contrast, phytoplankton in the PFZ exhibits low F-q'/F-m' (similar to 0.2) and high concentrations of photoprotective pigments under low light environment. Strong negative relationships between iron, temperature, and photoprotective pigments demonstrate that cells were producing more photoprotective pigments under low temperature and iron conditions, and are responsible for the low biomass and low productivity measured in the PFZ. As warming and enhanced iron input is expected in this region, this could probably increase phytoplankton photosynthesis in this region. However, complex interactions between the biogeochemical processes (e.g. stratification caused by warming could prevent mixing of nutrients), which control phytoplankton biomass and productivity, remain uncertain.
引用
收藏
页数:13
相关论文
共 50 条
  • [42] Response of the larger protozooplankton to an iron-induced phytoplankton bloom in the Polar Frontal Zone of the Southern Ocean (EisenEx)
    Henjes, Joachim
    Assmy, Philipp
    Klaas, Christine
    Smetacek, Victor
    DEEP-SEA RESEARCH PART I-OCEANOGRAPHIC RESEARCH PAPERS, 2007, 54 (05) : 774 - 791
  • [43] FIELD ENVIRONMENTAL PHILOSOPHY AND THE SUB-ANTARCTIC ECOREGION OF MAGALLANES AS A NATURAL LABORATORY IN THE ANTHROPOCENE
    Rozzi, Ricardo
    MAGALLANIA, 2018, 46 (01): : 7 - 15
  • [44] Characterization of the Antarctic Polar Frontal Zone to the north of South Georgia in summer 1994
    Trathan, PN
    Brandon, MA
    Murphy, EJ
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 1997, 102 (C5): : 10483 - 10497
  • [45] VERTICAL COHERENCE OF UPPER WATER THERMAL STRUCTURE IN ANTARCTIC POLAR FRONTAL ZONE
    HAYES, SP
    ZENK, W
    TRANSACTIONS-AMERICAN GEOPHYSICAL UNION, 1977, 58 (09): : 886 - 886
  • [46] CEPHALOPODS OCCUPY THE ECOLOGICAL NICHE OF EPIPELAGIC FISH IN THE ANTARCTIC POLAR FRONTAL ZONE
    RODHOUSE, PG
    WHITE, MG
    BIOLOGICAL BULLETIN, 1995, 189 (02): : 77 - 80
  • [47] Assessing Sub-Antarctic Zone primary productivity from fast repetition rate fluorometry
    Cheah, Wee
    McMinn, Andrew
    Griffiths, F. Brian
    Westwood, Karen J.
    Wright, Simon W.
    Molina, Ernesto
    Webb, Jason P.
    van den Enden, Rick
    DEEP-SEA RESEARCH PART II-TOPICAL STUDIES IN OCEANOGRAPHY, 2011, 58 (21-22) : 2179 - 2188
  • [48] Protistan communities in the Australian sector of the Sub-Antarctic Zone during SAZ-Sense
    de Salas, Miguel F.
    Eriksen, Ruth
    Davidson, Andrew T.
    Wright, Simon W.
    DEEP-SEA RESEARCH PART II-TOPICAL STUDIES IN OCEANOGRAPHY, 2011, 58 (21-22) : 2135 - 2149
  • [49] Seasonal Depletion of the Dissolved Iron Reservoirs in the Sub-Antarctic zone of the Southern Atlantic Ocean
    Mtshali, T. N.
    van Horsten, N. R.
    Thomalla, S. J.
    Ryan-Keogh, T. J.
    Nicholson, S-A
    Roychoudhury, A. N.
    Bucciarelli, E.
    Sarthou, G.
    Tagliabue, A.
    Monteiro, P. M. S.
    GEOPHYSICAL RESEARCH LETTERS, 2019, 46 (08) : 4386 - 4395
  • [50] Influence of environmental conditions and initial sapling size in Nothofagus survival and growth: Implications for restoration of burnt sub-Antarctic forests
    Mestre, Luciana M.
    Arganaraz, Carina, I
    Preiss-Daimler, Inga
    Fernandez, Loreto
    Turi, Luis
    Soler, Rosina
    AUSTRAL ECOLOGY, 2024, 49 (01)