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纬度间的代谢率和气候变化:水生端足类动物中质量依赖性反应的证据。

Metabolic rate and climate change across latitudes: evidence of mass-dependent responses in aquatic amphipods.

机构信息

Laboratory of Ecology, Department of Biological and Environmental Sciences and Technologies, University of Salento, S.P. Lecce-Monteroni, 73100 Lecce, Italy.

Research Institute on Terrestrial Ecosystems (IRET-URT Lecce), National Research Council of Italy (CNR), Campus Ecotekne, S.P. Lecce-Monteroni, 73100 Lecce, Italy.

出版信息

J Exp Biol. 2022 Nov 15;225(22). doi: 10.1242/jeb.244842. Epub 2022 Nov 25.

Abstract

Predictions of individual responses to climate change are often based on the assumption that temperature affects the metabolism of individuals independently of their body mass. However, empirical evidence indicates that interactive effects exist. Here, we investigated the response of individual standard metabolic rate (SMR) to annual temperature range and forecasted temperature rises of 0.6-1.2°C above the current maxima, under the conservative climate change scenario IPCC RCP2.6. As a model organism, we used the amphipod Gammarus insensibilis, collected across latitudes along the western coast of the Adriatic Sea down to the southernmost limit of the species' distributional range, with individuals varying in body mass (0.4-13.57 mg). Overall, we found that the effect of temperature on SMR is mass dependent. Within the annual temperature range, the mass-specific SMR of small/young individuals increased with temperature at a greater rate (activation energy: E=0.48 eV) than large/old individuals (E=0.29 eV), with a higher metabolic level for high-latitude than low-latitude populations. However, under the forecasted climate conditions, the mass-specific SMR of large individuals responded differently across latitudes. Unlike the higher-latitude population, whose mass-specific SMR increased in response to the forecasted climate change across all size classes, in the lower-latitude populations, this increase was not seen in large individuals. The larger/older conspecifics at lower latitudes could therefore be the first to experience the negative impacts of warming on metabolism-related processes. Although the ecological collapse of such a basic trophic level (aquatic amphipods) owing to climate change would have profound consequences for population ecology, the risk is significantly mitigated by phenotypic and genotypic adaptation.

摘要

对气候变化个体响应的预测通常基于这样一种假设,即温度独立于个体的体重影响个体的新陈代谢。然而,经验证据表明存在相互作用效应。在这里,我们研究了个体标准代谢率(SMR)对年温度范围的响应,并预测了当前最大值以上 0.6-1.2°C 的升温,在保守的气候变化情景 IPCC RCP2.6 下。作为一个模型生物,我们使用了在亚得里亚海西海岸从纬度到物种分布范围最南端收集的无节肢动物端足目 Gammarus insensibilis,个体的体重不同(0.4-13.57mg)。总的来说,我们发现温度对 SMR 的影响与体重有关。在年温度范围内,小/年轻个体的比体重 SMR 随着温度的升高而以更大的速率(激活能:E=0.48eV)增加,比大/老年个体(E=0.29eV)更快,高纬度种群的代谢水平更高。然而,在预测的气候条件下,大个体的比体重 SMR 在不同纬度的反应不同。与高纬度种群不同,其比体重 SMR 在所有体型类别中都因预测的气候变化而增加,而在低纬度种群中,大个体没有出现这种增加。因此,低纬度地区较大/较老的同种生物可能是第一批经历与代谢相关过程变暖的负面影响的生物。尽管这种基本营养级(水生端足目动物)的生态崩溃由于气候变化而对种群生态学产生深远影响,但表型和基因型适应大大减轻了风险。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fac6/9720750/fcb84ba28d46/jexbio-225-244842-g1.jpg

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