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深海鱼类:稳定环境中的种群动态不稳定

Deep-pelagic fishes: Demographic instability in a stable environment.

作者信息

Weber Max D, Richards Travis M, Sutton Tracey T, Carter Joshua E, Eytan Ron I

机构信息

Texas A&M University at Galveston Galveston Texas USA.

Nova Southeastern University Dania Beach Florida USA.

出版信息

Ecol Evol. 2024 Apr 18;14(4):e11267. doi: 10.1002/ece3.11267. eCollection 2024 Apr.

Abstract

Demographic histories are frequently a product of the environment, as populations expand or contract in response to major environmental changes, often driven by changes in climate. Meso- and bathy-pelagic fishes inhabit some of the most temporally and spatially stable habitats on the planet. The stability of the deep-pelagic could make deep-pelagic fishes resistant to the demographic instability commonly reported in fish species inhabiting other marine habitats, however the demographic histories of deep-pelagic fishes are unknown. We reconstructed the historical demography of 11 species of deep-pelagic fishes using mitochondrial and nuclear DNA sequence data. We uncovered widespread evidence of population expansions in our study species, a counterintuitive result based on the nature of deep-pelagic ecosystems. Frequency-based methods detected potential demographic changes in nine species of fishes, while extended Bayesian skyline plots identified population expansions in four species. These results suggest that despite the relatively stable nature of the deep-pelagic environment, the fishes that reside here have likely been impacted by past changes in climate. Further investigation is necessary to better understand how deep-pelagic fishes, by far Earth's most abundant vertebrates, will respond to future climatic changes.

摘要

种群历史往往是环境的产物,因为种群会随着主要环境变化而扩大或收缩,而这些变化通常由气候改变驱动。中上层和深海鱼类栖息在地球上一些时间和空间上最稳定的栖息地。深海环境的稳定性可能使深海鱼类能够抵御居住在其他海洋栖息地的鱼类中常见的种群不稳定情况,然而深海鱼类的种群历史却无人知晓。我们利用线粒体和核DNA序列数据重建了11种深海鱼类的历史种群动态。我们在研究的物种中发现了广泛的种群扩张证据,这一结果与深海生态系统的性质相悖。基于频率的方法检测到9种鱼类存在潜在的种群变化,而扩展贝叶斯天际线图则确定了4种鱼类的种群扩张。这些结果表明,尽管深海环境相对稳定,但栖息于此的鱼类可能受到了过去气候变化的影响。有必要进行进一步调查,以更好地了解作为地球上迄今为止数量最多的脊椎动物,深海鱼类将如何应对未来的气候变化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/960a/11024635/96426b264d9c/ECE3-14-e11267-g001.jpg

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