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操控生物体与环境反馈的强度会增加生态系统对环境变化响应的非线性及明显滞后性。

Manipulating the strength of organism-environment feedback increases nonlinearity and apparent hysteresis of ecosystem response to environmental change.

作者信息

Garnier Aurélie, Hulot Florence D, Petchey Owen L

机构信息

URPP Global Change and Biodiversity University of Zurich Zürich Switzerland.

Institute for Marine Ecosystem and Fisheries Science University of Hamburg Hamburg Germany.

出版信息

Ecol Evol. 2020 May 11;10(12):5527-5543. doi: 10.1002/ece3.6294. eCollection 2020 Jun.

Abstract

Theory predicts that organism-environment feedbacks play a central role in how ecological communities respond to environmental change. Strong feedback causes greater nonlinearity between environmental change and ecosystem state, increases the likelihood of hysteresis in response to environmental change, and augments the possibility of alternative stable regimes. To illustrate these predictions and their dependence on a temporal scale, we simulated a minimal ecosystem model. To test the predictions, we manipulated the feedback strength between the metabolism and the dissolved oxygen concentration in an aquatic heterotrophic tri-trophic community in microecosystems. The manipulation consisted of five levels, ranging from low to high feedback strength by altering the oxygen diffusivity: free gas exchange between the microcosm atmosphere and the external air (metabolism not strongly affecting environmental oxygen), with the regular addition of 200, 100, or 50 ml of air and no gas exchange. To test for nonlinearity and hysteresis in response to environmental change, all microecosystems experienced a gradual temperature increase from 15 to 25°C and then back to 15°C. We regularly measured the dissolved oxygen concentration, total biomass, and species abundance. Nonlinearity and hysteresis were higher in treatments with stronger organism-environment feedbacks. There was no evidence that stronger feedback increased the number of observed ecosystem states. These empirical results are in broad agreement with the theory that stronger feedback increases nonlinearity and hysteresis. They therefore represent one of the first direct empirical tests of the importance of feedback strength. However, we discuss several limitations of the study, which weaken confidence in this interpretation. Research demonstrating the causal effects of feedback strength on ecosystem responses to environmental change should be placed at the core of efforts to plan for sustainable ecosystems.

摘要

理论预测,生物 - 环境反馈在生态群落如何应对环境变化中起着核心作用。强烈的反馈会导致环境变化与生态系统状态之间产生更大的非线性,增加对环境变化响应中的滞后可能性,并增大出现替代稳定状态的可能性。为了说明这些预测及其对时间尺度的依赖性,我们模拟了一个简单的生态系统模型。为了检验这些预测,我们在微生态系统中的水生异养三营养群落中,操纵了新陈代谢与溶解氧浓度之间的反馈强度。该操纵包括五个水平,通过改变氧气扩散率从低到高反馈强度:微观世界大气与外部空气之间的自由气体交换(新陈代谢对环境氧气影响不大),定期添加200、100或50毫升空气以及无气体交换。为了测试对环境变化的非线性和滞后响应,所有微生态系统都经历了从15°C到25°C然后再回到15°C的逐渐升温过程。我们定期测量溶解氧浓度、总生物量和物种丰度。在具有更强生物 - 环境反馈的处理中,非线性和滞后性更高。没有证据表明更强的反馈会增加观察到的生态系统状态数量。这些实证结果与更强的反馈会增加非线性和滞后性的理论大致相符。因此,它们代表了对反馈强度重要性的首批直接实证检验之一。然而,我们讨论了该研究的几个局限性,这些局限性削弱了对这一解释的信心。证明反馈强度对生态系统对环境变化响应的因果效应的研究,应置于可持续生态系统规划努力的核心位置。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f572/7319241/96e2aad21443/ECE3-10-5527-g001.jpg

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