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基于特征的保护生理学方法:从底层预测环境变化风险。

Trait-based approaches to conservation physiology: forecasting environmental change risks from the bottom up.

机构信息

Centre for Invasion Biology, Department of Botany and Zoology, Stellenbosch University, Private Bag X1, Matieland 7602, South Africa.

出版信息

Philos Trans R Soc Lond B Biol Sci. 2012 Jun 19;367(1596):1615-27. doi: 10.1098/rstb.2011.0422.

Abstract

Trait-based approaches have long been a feature of physiology and of ecology. While the latter fields drifted apart in the twentieth century, they are converging owing at least partly to growing similarities in their trait-based approaches, which have much to offer conservation biology. The convergence of spatially explicit approaches to understanding trait variation and its ecological implications, such as encapsulated in community assembly and macrophysiology, provides a significant illustration of the similarity of these areas. Both adopt trait-based informatics approaches which are not only providing fundamental biological insights, but are also delivering new information on how environmental change is affecting diversity and how such change may perhaps be mitigated. Such trait-based conservation physiology is illustrated here for each of the major environmental change drivers, specifically: the consequences of overexploitation for body size and physiological variation; the impacts of vegetation change on thermal safety margins; the consequences of changing net primary productivity and human use thereof for physiological variation and ecosystem functioning; the impacts of rising temperatures on water loss in ectotherms; how hemisphere-related variation in traits may affect responses to changing rainfall regimes and pollution; and how trait-based approaches may enable interactions between climate change and biological invasions to be elucidated.

摘要

基于特征的方法长期以来一直是生理学和生态学的特征。虽然这两个领域在 20 世纪分道扬镳,但由于它们在基于特征的方法上至少部分趋同,它们正在趋同,这些方法为保护生物学提供了很多启示。理解特征变异及其生态影响的空间显式方法的趋同,例如在群落组装和宏观生理学中所体现的那样,提供了这些领域相似性的重要例证。这两个领域都采用了基于特征的信息学方法,这些方法不仅提供了基本的生物学见解,还提供了关于环境变化如何影响多样性以及如何减轻这种变化的新信息。基于特征的保护生理学在这里为每个主要的环境变化驱动因素提供了例证,具体包括:过度开发对体型和生理变异的影响;植被变化对热安全边际的影响;净初级生产力变化及其对生理变异和生态系统功能的影响;温度升高对变温动物水分流失的影响;特征半球相关变异如何影响对降雨模式和污染变化的响应;以及基于特征的方法如何能够阐明气候变化和生物入侵之间的相互作用。

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