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Review
. 2020 Jan;26(1):54-67.
doi: 10.1111/gcb.14868. Epub 2019 Nov 19.

Ecological change in dynamic environments: Accounting for temporal environmental variability in studies of ocean change biology

Affiliations
Review

Ecological change in dynamic environments: Accounting for temporal environmental variability in studies of ocean change biology

Kristy J Kroeker et al. Glob Chang Biol. 2020 Jan.

Abstract

The environmental conditions in the ocean have long been considered relatively more stable through time compared to the conditions on land. Advances in sensing technologies, however, are increasingly revealing substantial fluctuations in abiotic factors over ecologically and evolutionarily relevant timescales in the ocean, leading to a growing recognition of the dynamism of the marine environment as well as new questions about how this dynamism may influence species' vulnerability to global environmental change. In some instances, the diurnal or seasonal variability in major environmental change drivers, such as temperature, pH and seawater carbonate chemistry, and dissolved oxygen, can exceed the changes expected with continued anthropogenic global change. While ocean global change biologists have begun to experimentally test how variability in environmental conditions mediates species' responses to changes in the mean, the extensive literature on species' adaptations to temporal variability in their environment and the implications of this variability for their evolutionary responses has not been well integrated into the field. Here, we review the physiological mechanisms underlying species' responses to changes in temperature, pCO2 /pH (and other carbonate parameters), and dissolved oxygen, and discuss what is known about behavioral, plastic, and evolutionary strategies for dealing with variable environments. In addition, we discuss how exposure to variability may influence species' responses to changes in the mean conditions and highlight key research needs for ocean global change biology.

Keywords: adaptive tracking; bioenergetic/behavioral strategies; manipulative experiments; physiological adaptations; variable environments.

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References

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