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野生环境中的稳定生态进化反馈环。

A stabilizing eco-evolutionary feedback loop in the wild.

机构信息

Theoretical and Experimental Ecology (SETE), CNRS, 2 route du CNRS, 09200 Moulis, France; CEFE, Université de Montpellier, CNRS, EPHE, IRD, Université Paul Valéry Montpellier 3, 34095 Montpellier, France; ISEM, CNRS, IRD, EPHE, Université de Montpellier, 34095 Montpellier, France.

Department of Biology, Utah State University, Logan, UT 84322, USA.

出版信息

Curr Biol. 2023 Aug 7;33(15):3272-3278.e3. doi: 10.1016/j.cub.2023.06.056. Epub 2023 Jul 20.

Abstract

There is increasing evidence that evolutionary and ecological processes can operate on the same timescale (i.e., contemporary time). As such, evolution can be sufficiently rapid to affect ecological processes such as predation or competition. Thus, evolution can influence population, community, and ecosystem-level dynamics. Indeed, studies have now shown that evolutionary dynamics can alter community structure and ecosystem function. In turn, shifts in ecological dynamics driven by evolution might feed back to affect the evolutionary trajectory of individual species. This feedback loop, where evolutionary and ecological changes reciprocally affect one another, is a central tenet of eco-evolutionary dynamics. However, most work on such dynamics in natural populations has focused on one-way causal associations between ecology and evolution. Hence, direct empirical evidence for eco-evolutionary feedback is rare and limited to laboratory or mesocosm experiments. Here, we show in the wild that eco-evolutionary dynamics in a plant-feeding arthropod community involve a negative feedback loop. Specifically, adaptation in cryptic coloration in a stick-insect species mediates bird predation, with local maladaptation increasing predation. In turn, the abundance of arthropods is reduced by predation. Here, we experimentally manipulate arthropod abundance to show that these changes at the community level feed back to affect the stick-insect evolution. Specifically, low-arthropod abundance increases the strength of selection on crypsis, increasing local adaptation of stick insects in a negative feedback loop. Our results suggest that eco-evolutionary feedbacks are able to stabilize complex systems by preventing consistent directional change and therefore increasing resilience.

摘要

越来越多的证据表明,进化和生态过程可以在同一时间尺度(即当代时间)上发挥作用。因此,进化可以足够迅速地影响捕食或竞争等生态过程。因此,进化可以影响种群、群落和生态系统层面的动态。事实上,研究现在表明,进化动态可以改变群落结构和生态系统功能。反过来,由进化驱动的生态动态变化可能会反馈回来影响个别物种的进化轨迹。这种反馈循环,即进化和生态变化相互影响,是生态进化动态的核心原则。然而,大多数关于自然种群中这种动态的研究都集中在生态学和进化之间的单向因果关系上。因此,关于生态进化反馈的直接经验证据很少,仅限于实验室或中观实验。在这里,我们在野外表明,植物食性节肢动物群落中的生态进化动态涉及负反馈环。具体来说,在一种竹节虫物种中的隐蔽色的适应性介导了鸟类捕食,而局部不适宜性增加了捕食。反过来,捕食又减少了节肢动物的数量。在这里,我们通过实验操纵节肢动物的丰度来表明,这些群落层面的变化会反馈回来影响竹节虫的进化。具体来说,低节肢动物丰度增加了对伪装的选择强度,在负反馈环中增加了竹节虫的局部适应性。我们的结果表明,生态进化反馈能够通过防止一致的定向变化来稳定复杂系统,从而提高弹性。

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