海洋变温动物的实现热生态位是由个体发育和营养相互作用形成的

IF 7.6 1区 环境科学与生态学 Q1 ECOLOGY Ecology Letters Pub Date : 2024-12-03 DOI:10.1111/ele.70017
Alaia Morell, Yunne-Jai Shin, Nicolas Barrier, Morgane Travers-Trolet, Bruno Ernande
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引用次数: 0

摘要

了解海洋生物对温度的反应对于预测气候变化的影响至关重要。基本生理热性能曲线(TPCs)是在受控条件下确定的,通常用于预测物种未来的空间分布或生理性能。然而,现实世界的性能可能会因与温度(食物、氧气等)共变的外在因素而偏离。利用生物能量海洋生态系统模型,我们评估了具有对比生态和热偏好的鱼类的基本和实现tpc之间的差异。食物限制是差异的主要原因,由于低营养水平猎物可得性随温度的时空变化,在整个个体发育过程中和不同营养水平上都有所减少。脱氧有中等影响,尽管在个体发育过程中会增加。这突出了早期生命阶段对缺氧的敏感性较低,这可以从机械上解释为老年阶段的低质量特定摄取量。了解已实现的热生态位的出现为更好地确定气候变暖下人口的持久性提供了至关重要的见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Realised Thermal Niches in Marine Ectotherms Are Shaped by Ontogeny and Trophic Interactions

Understanding the response of marine organisms to temperature is crucial for predicting climate change impacts. Fundamental physiological thermal performance curves (TPCs), determined under controlled conditions, are commonly used to project future species spatial distributions or physiological performances. Yet, real-world performances may deviate due to extrinsic factors covarying with temperature (food, oxygen, etc.). Using a bioenergetic marine ecosystem model, we evaluate the differences between fundamental and realised TPCs for fish species with contrasted ecology and thermal preferences. Food limitation is the primary cause of differences, decreasing throughout ontogeny and across trophic levels due to spatio-temporal variability of low-trophic level prey availability with temperature. Deoxygenation has moderate impact, despite increasing during ontogeny. This highlights the lower sensitivity of early life stages to hypoxia, which is mechanistically explained by lower mass-specific ingestion at older stages. Understanding the emergence of realised thermal niches offers crucial insights to better determine population's persistence under climate warming.

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来源期刊
Ecology Letters
Ecology Letters 环境科学-生态学
CiteScore
17.60
自引率
3.40%
发文量
201
审稿时长
1.8 months
期刊介绍: Ecology Letters serves as a platform for the rapid publication of innovative research in ecology. It considers manuscripts across all taxa, biomes, and geographic regions, prioritizing papers that investigate clearly stated hypotheses. The journal publishes concise papers of high originality and general interest, contributing to new developments in ecology. Purely descriptive papers and those that only confirm or extend previous results are discouraged.
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