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生态系统压力源之间的相互作用及其在保护中的重要性。

Interactions among ecosystem stressors and their importance in conservation.

作者信息

Côté Isabelle M, Darling Emily S, Brown Christopher J

机构信息

Earth to Ocean Group, Department of Biological Sciences, Simon Fraser University, Burnaby, British Columbia, Canada V5A 1S6

Wildlife Conservation Society, Toronto, Ontario, Canada M5S 3A7.

出版信息

Proc Biol Sci. 2016 Feb 10;283(1824). doi: 10.1098/rspb.2015.2592.

Abstract

Interactions between multiple ecosystem stressors are expected to jeopardize biological processes, functions and biodiversity. The scientific community has declared stressor interactions-notably synergies-a key issue for conservation and management. Here, we review ecological literature over the past four decades to evaluate trends in the reporting of ecological interactions (synergies, antagonisms and additive effects) and highlight the implications and importance to conservation. Despite increasing popularity, and ever-finer terminologies, we find that synergies are (still) not the most prevalent type of interaction, and that conservation practitioners need to appreciate and manage for all interaction outcomes, including antagonistic and additive effects. However, it will not be possible to identify the effect of every interaction on every organism's physiology and every ecosystem function because the number of stressors, and their potential interactions, are growing rapidly. Predicting the type of interactions may be possible in the near-future, using meta-analyses, conservation-oriented experiments and adaptive monitoring. Pending a general framework for predicting interactions, conservation management should enact interventions that are robust to uncertainty in interaction type and that continue to bolster biological resilience in a stressful world.

摘要

多种生态系统压力源之间的相互作用预计会危及生物过程、功能和生物多样性。科学界已宣布压力源之间的相互作用——尤其是协同作用——是保护和管理的关键问题。在此,我们回顾了过去四十年的生态学文献,以评估生态相互作用(协同作用、拮抗作用和累加效应)报告的趋势,并强调其对保护的影响和重要性。尽管其越来越受欢迎,术语也越来越精细,但我们发现协同作用(仍然)不是最普遍的相互作用类型,保护从业者需要认识并应对所有相互作用的结果,包括拮抗作用和累加效应。然而,由于压力源的数量及其潜在的相互作用正在迅速增加,因此不可能确定每种相互作用对每种生物体生理和每种生态系统功能的影响。在不久的将来,使用荟萃分析、以保护为导向的实验和适应性监测,可能预测相互作用的类型。在有一个预测相互作用的通用框架之前,保护管理应实施对相互作用类型的不确定性具有鲁棒性的干预措施,并在压力重重的世界中继续增强生物恢复力。

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