Biochemical adaptation to ocean acidification

被引:41
|
作者
Stillman, Jonathon H. [1 ,2 ]
Paganini, Adam W. [1 ]
机构
[1] San Francisco State Univ, Romberg Tiburon Ctr, Dept Biol, Tiburon, CA 94920 USA
[2] Univ Calif Berkeley, Dept Integrat Biol, Berkeley, CA 94709 USA
来源
JOURNAL OF EXPERIMENTAL BIOLOGY | 2015年 / 218卷 / 12期
基金
美国国家科学基金会;
关键词
Comparative physiology; Experimental evolution; Conservation of function; Protein; Membrane; Plasticity; Acclimation; Acclimatization; PERMIAN-TRIASSIC BOUNDARY; SEA-SURFACE TEMPERATURE; CRETACEOUS-TERTIARY BOUNDARY; SHALLOW-MARINE CARBONATES; PALEOCENE-EARLY EOCENE; LIFE-HISTORY STAGES; MASS EXTINCTION; THERMAL TOLERANCE; EMILIANIA-HUXLEYI; ANOXIC EVENT;
D O I
10.1242/jeb.115584
中图分类号
Q [生物科学];
学科分类号
07 ; 0710 ; 09 ;
摘要
The change in oceanic carbonate chemistry due to increased atmospheric P-CO2 has caused pH to decline in marine surface waters, a phenomenon known as ocean acidification (OA). The effects of OA on organisms have been shown to be widespread among diverse taxa from a wide range of habitats. The majority of studies of organismal response to OA are in short-term exposures to future levels of P-CO2. From such studies, much information has been gathered on plastic responses organisms may make in the future that are beneficial or harmful to fitness. Relatively few studies have examined whether organisms can adapt to negative-fitness consequences of plastic responses to OA. We outline major approaches that have been used to study the adaptive potential for organisms to OA, which include comparative studies and experimental evolution. Organisms that inhabit a range of pH environments (e.g. pH gradients at volcanic CO2 seeps or in upwelling zones) have great potential for studies that identify adaptive shifts that have occurred through evolution. Comparative studies have advanced our understanding of adaptation to OA by linking whole-organism responses with cellular mechanisms. Such optimization of function provides a link between genetic variation and adaptive evolution in tuning optimal function of rate-limiting cellular processes in different pH conditions. For example, in experimental evolution studies of organisms with short generation times (e.g. phytoplankton), hundreds of generations of growth under future conditions has resulted in fixed differences in gene expression related to acid-base regulation. However, biochemical mechanisms for adaptive responses to OA have yet to be fully characterized, and are likely to be more complex than simply changes in gene expression or protein modification. Finally, we present a hypothesis regarding an unexplored area for biochemical adaptation to ocean acidification. In this hypothesis, proteins and membranes exposed to the external environment, such as epithelial tissues, may be susceptible to changes in external pH. Such biochemical systems could be adapted to a reduced pH environment by adjustment of weak bonds in an analogous fashion to biochemical adaptation to temperature. Whether such biochemical adaptation to OA exists remains to be discovered.
引用
收藏
页码:1946 / 1955
页数:10
相关论文
共 50 条
  • [1] Adaptation and the physiology of ocean acidification
    Kelly, Morgan W.
    Hofmann, Gretchen E.
    [J]. FUNCTIONAL ECOLOGY, 2013, 27 (04) : 980 - 990
  • [2] Vulnerability and adaptation of US shellfisheries to ocean acidification
    Ekstrom J.A.
    Suatoni L.
    Cooley S.R.
    Pendleton L.H.
    Waldbusser G.G.
    Cinner J.E.
    Ritter J.
    Langdon C.
    Van Hooidonk R.
    Gledhill D.
    Wellman K.
    Beck M.W.
    Brander L.M.
    Rittschof D.
    Doherty C.
    Edwards P.E.T.
    Portela R.
    [J]. Nature Climate Change, 2015, 5 (3) : 207 - 214
  • [3] Vulnerability and adaptation of US shellfisheries to ocean acidification
    Ekstrom, Julia A.
    Suatoni, Lisa
    Cooley, Sarah R.
    Pendleton, Linwood H.
    Waldbusser, George G.
    Cinner, Josh E.
    Ritter, Jessica
    Langdon, Chris
    van Hooidonk, Ruben
    Gledhill, Dwight
    Wellman, Katharine
    Beck, Michael W.
    Brander, Luke M.
    Rittschof, Dan
    Doherty, Carolyn
    Edwards, Peter E. T.
    Portela, Rosimeiry
    [J]. NATURE CLIMATE CHANGE, 2015, 5 (03) : 207 - 214
  • [4] Quantifying Rates of Evolutionary Adaptation in Response to Ocean Acidification
    Sunday, Jennifer M.
    Crim, Ryan N.
    Harley, Christopher D. G.
    Hart, Michael W.
    [J]. PLOS ONE, 2011, 6 (08):
  • [5] Adaptation of a globally important coccolithophore to ocean warming and acidification
    Lothar Schlüter
    Kai T. Lohbeck
    Magdalena A. Gutowska
    Joachim P. Gröger
    Ulf Riebesell
    Thorsten B. H. Reusch
    [J]. Nature Climate Change, 2014, 4 : 1024 - 1030
  • [6] Regional adaptation defines sensitivity to future ocean acidification
    Piero Calosi
    Sedercor Melatunan
    Lucy M. Turner
    Yuri Artioli
    Robert L. Davidson
    Jonathan J. Byrne
    Mark R. Viant
    Stephen Widdicombe
    Simon D. Rundle
    [J]. Nature Communications, 8
  • [7] Adaptation of a globally important coccolithophore to ocean warming and acidification
    Schlueter, Lothar
    Lohbeck, Kai T.
    Gutowska, Magdalena A.
    Groeger, Joachim P.
    Riebesell, Ulf
    Reusch, Thorsten B. H.
    [J]. NATURE CLIMATE CHANGE, 2014, 4 (11) : 1024 - 1030
  • [8] Regional adaptation defines sensitivity to future ocean acidification
    Calosi, Piero
    Melatunan, Sedercor
    Turner, Lucy M.
    Artioli, Yuri
    Davidson, Robert L.
    Byrne, Jonathan J.
    Viant, Mark R.
    Widdicombe, Stephen
    Rundle, Simon D.
    [J]. NATURE COMMUNICATIONS, 2017, 8
  • [9] Calcification moderates the biochemical responses of Gephyrocapsa oceanica to ocean acidification
    Shi, Xiaomeng
    Chang, Xing
    Guo, Xiaoyu
    Zhao, Chenfei
    Tong, Shanying
    [J]. MARINE BIOLOGY RESEARCH, 2021, 17 (7-8) : 569 - 575
  • [10] Molecular basis of ocean acidification sensitivity and adaptation in Mytilus galloprovincialis
    Kapsenberg, Lydia
    Bitter, Mark C.
    Miglioli, Angelica
    Aparicio-Estalella, Claudia
    Pelejero, Carles
    Gattuso, Jean-Pierre
    Dumollard, Remi
    [J]. ISCIENCE, 2022, 25 (08)