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安全期与安全活动:对死亡率的两种物候响应。

Safe Periods and Safe Activities: Two Phenological Responses to Mortality.

作者信息

Constant Théo, Dobson F Stephen, Giroud Sylvain, Habold Caroline

机构信息

UMR 7178, Centre National de la Recherche Scientifique, Institut Pluridisciplinaire Hubert CURIEN Université de Strasbourg Strasbourg France.

Department of Biological Sciences Auburn University Auburn Alabama USA.

出版信息

Ecol Evol. 2025 Feb 2;15(2):e70718. doi: 10.1002/ece3.70718. eCollection 2025 Feb.

DOI:10.1002/ece3.70718
PMID:39901893
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11788320/
Abstract

Phenology is often thought to evolve mainly in response to food availability, yet recent studies have focused on predation. Predation may explain apparent mismatches between phenology and resources. One type of phenological response to predation involves shifting phenology from a period of high to low predation (i.e., a safe-period strategy). This strategy presupposes variation in predation over time due to environmental factors such as the number or diversity of predators. Predation varies not only over time but also among different activities like reproduction and dormancy. Alternative activities involve alternative behavioral or physiological states, and different locations where they take place influencing predation risk. Phenological responses to predation may involve shifting from a high risk activity to a safer one, resulting in increased survival (i.e., a «safe-activity» strategy). This strategy may theoretically evolve under environmental conditions associated with constant predation over time, but assumes variation in predation among activities. Safe-period and safe-activity strategies are not mutually exclusive, but assume different conditions for their evolution. On the basis of a literature review, our goal was to: (1) propose a classification of phenological responses to predation according to their evolutionary context, including mean population responses and interindividual differences (degree of synchrony); (2) to show how these two strategies may explain the lack of support for the idea that phenology responds primarily to food availability; and (3) to propose several approaches for testing the influence of predation on phenology. Our review highlights the relevance of studying phenology on multiple scales, thereby integrating several interspecific interactions (communities scales) and multiple activities (annual scale), and studying synchronicity and the pace-of-life (inter-individual scale).

摘要

物候学通常被认为主要是为响应食物可利用性而进化的,然而最近的研究聚焦于捕食作用。捕食作用或许可以解释物候与资源之间明显的不匹配现象。一种对捕食作用的物候学响应涉及将物候从捕食压力高的时期转移到捕食压力低的时期(即一种安全期策略)。该策略预先假定由于诸如捕食者数量或多样性等环境因素,捕食作用会随时间发生变化。捕食作用不仅随时间变化,而且在诸如繁殖和休眠等不同活动之间也存在差异。不同的活动涉及不同的行为或生理状态,以及它们发生的不同地点会影响捕食风险。对捕食作用的物候学响应可能涉及从高风险活动转移到更安全的活动,从而提高生存率(即一种“安全活动”策略)。从理论上讲,这种策略可能在与长期恒定捕食作用相关的环境条件下进化,但假定不同活动之间存在捕食作用差异。安全期和安全活动策略并非相互排斥,但假定它们进化的条件不同。基于文献综述,我们的目标是:(1)根据其进化背景,提出对捕食作用的物候学响应的分类,包括平均种群响应和个体间差异(同步程度);(2)展示这两种策略如何解释缺乏对物候主要响应食物可利用性这一观点的支持;(3)提出几种测试捕食作用对物候影响的方法。我们的综述强调了在多个尺度上研究物候学的相关性,从而整合多种种间相互作用(群落尺度)和多种活动(年度尺度),并研究同步性和生活节奏(个体间尺度)。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/39d3/11788320/a6d656c4ff4a/ECE3-15-e70718-g003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/39d3/11788320/254ff138ad5c/ECE3-15-e70718-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/39d3/11788320/f1eb4db924f3/ECE3-15-e70718-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/39d3/11788320/a6d656c4ff4a/ECE3-15-e70718-g003.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/39d3/11788320/254ff138ad5c/ECE3-15-e70718-g001.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/39d3/11788320/f1eb4db924f3/ECE3-15-e70718-g002.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/39d3/11788320/a6d656c4ff4a/ECE3-15-e70718-g003.jpg

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本文引用的文献

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Population density and vegetation resources influence demography in a hibernating herbivorous mammal.种群密度和植被资源影响冬眠草食性哺乳动物的种群动态。
Oecologia. 2024 Aug;205(3-4):497-513. doi: 10.1007/s00442-024-05583-2. Epub 2024 Jul 9.
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Evolutionary trade-offs in dormancy phenology.休眠物候的进化权衡。
Elife. 2024 Apr 26;12:RP89644. doi: 10.7554/eLife.89644.
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Seasonal migration alters energetic trade-off optimization and shapes life history.季节性迁徙改变了能量权衡优化,并塑造了生活史。
Ecol Lett. 2024 Feb;27(2):e14392. doi: 10.1111/ele.14392.
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Shifts in competitive structures can drive variation in species' phenology.竞争结构的变化会导致物种物候的变化。
Ecology. 2023 Nov;104(11):e4160. doi: 10.1002/ecy.4160. Epub 2023 Sep 25.
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The evolution and ecology of multiple antipredator defences.多种抗捕食防御策略的进化与生态
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Climate change is altering the physiology and phenology of an arctic hibernator.气候变化正在改变一种北极冬眠动物的生理学和物候学。
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Seasonal and inter-annual  variation  in exposure to peregrines (Falco peregrinus) for southbound western sandpipers (Calidris mauri).南迁的西部滨鹬(Calidris mauri)接触矛隼(Falco peregrinus)的季节性和年际变化。
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