Influence of global environmental Change on plankton

被引:29
作者
Raven, John A. [1 ,2 ,3 ]
Beardall, John [4 ]
机构
[1] Univ Dundee, Div Plant Sci, James Hutton Inst, Dundee DD2 5DA, Scotland
[2] Univ Technol Sydney, Fac Sci, Climate Change Cluster, Ultimo, NSW 2007, Australia
[3] Univ Western Australia, Sch Biol Sci, Crawley, WA 6009, Australia
[4] Monash Univ, Sch Biol Sci, Clayton, Vic 3800, Australia
关键词
carbon dioxide; feedbacks; food webs; global warming; nitrogen; phosphorus; primary productivity; OCEAN ACIDIFICATION; CARBON-DIOXIDE; ELEVATED CO2; CLIMATE-CHANGE; BIOAVAILABLE PHOSPHORUS; MARINE-PHYTOPLANKTON; SPECIES COMPOSITION; EQUATORIAL PACIFIC; RUBISCO KINETICS; NUTRICLINE DEPTH;
D O I
10.1093/plankt/fbab075
中图分类号
Q17 [水生生物学];
学科分类号
071004 ;
摘要
Much has been published on the effects of ocean acidification on plankton since the original Royal Society 2005 report. In addition to direct effects on primary production, it is clear that ocean acidification also has profound consequences for biogeochemistry. Furthermore, although ocean acidification can have direct effects of on grazers such as copepods, acidification induces changes in nutritional value of phytoplankton which can be passed on up the food chain. There has also been recognition of the complexity of the interactions between elevated CO2 and other environmental factors and this has seen an upsurge in climate change research involvingmultifactorial experiments. In particular, the interaction of ocean acidification with global warming resulting from the increasing greenhouse effect has been investigated. There has also been research on acidification and warming effects in inland water plankton. These, combined with novel experimental techniques and long termstudies of genetic adaptation, are providing better insights to plankton biology and communities in a future world.
引用
收藏
页码:779 / 800
页数:22
相关论文
共 255 条
[1]   Phenotypic trait variability as an indication of adaptive capacity in a cosmopolitan marine diatom [J].
Ajani, Penelope A. ;
Petrou, Katherina ;
Larsson, Michaela E. ;
Nielsen, Daniel A. ;
Burke, Joel ;
Murray, Shauna A. .
ENVIRONMENTAL MICROBIOLOGY, 2021, 23 (01) :207-223
[2]   Plankton responses to ocean acidification: The role of nutrient limitation [J].
Alvarez-Fernandez, S. ;
Bach, L. T. ;
Taucher, J. ;
Riebesell, U. ;
Sommer, U. ;
Aberle, N. ;
Brussaard, C. P. D. ;
Boersma, M. .
PROGRESS IN OCEANOGRAPHY, 2018, 165 :11-18
[3]  
[Anonymous], 1916, Biochem Z, DOI DOI 10.15406/JACCOA.2016.05.00190
[4]  
Arrhenius S., 1896, The London, Edinburgh, and Dublin Philosophical Magazine and Journal of Science, V41, P237, DOI DOI 10.1080/14786449608620846
[5]   Distinguishing between the effects of ocean acidification and ocean carbonation in the coccolithophore Emiliania huxleyi [J].
Bach, Lennart Thomas ;
Riebesell, Ulf ;
Schulz, Kai Georg .
LIMNOLOGY AND OCEANOGRAPHY, 2011, 56 (06) :2040-2050
[6]   Thermal Performance Curves of Functional Traits Aid Understanding of Thermally Induced Changes in Diatom-Mediated Biogeochemical Fluxes [J].
Baker, Kirralee G. ;
Robinson, Charlotte M. ;
Radford, Dale T. ;
McInnes, Allison S. ;
Evenhuis, Christian ;
Doblin, Martina A. .
FRONTIERS IN MARINE SCIENCE, 2016, 3
[7]   The Ecology, Biogeochemistry, and Optical Properties of Coccolithophores [J].
Balch, William M. .
ANNUAL REVIEW OF MARINE SCIENCE, VOL 10, 2018, 10 :71-98
[8]   Evolutionary temperature compensation of carbon fixation in marine phytoplankton [J].
Barton, Samuel ;
Jenkins, James ;
Buckling, Angus ;
Schaum, C. -Elisa ;
Smirnoff, Nicholas ;
Raven, John A. ;
Yvon-Durocher, Gabriel .
ECOLOGY LETTERS, 2020, 23 (04) :722-733
[9]   Quantifying the temperature dependence of growth rate in marine phytoplankton within and across species [J].
Barton, Samuel ;
Yvon-Durocher, Gabriel .
LIMNOLOGY AND OCEANOGRAPHY, 2019, 64 (05) :2081-2091
[10]   Phytoplankton as Key Mediators of the Biological Carbon Pump: Their Responses to a Changing Climate [J].
Basu, Samarpita ;
Mackey, Katherine R. M. .
SUSTAINABILITY, 2018, 10 (03)