鱼类模型探索低氧耐受性的表观遗传决定因素。

IF 2.1 3区 生物学 Q4 BIOCHEMISTRY & MOLECULAR BIOLOGY Comparative Biochemistry and Physiology A-Molecular & Integrative Physiology Pub Date : 2025-01-06 DOI:10.1016/j.cbpa.2025.111811
William Johnston, Sally Adil, Catherine Cao, Niepukolie Nipu, Jan A. Mennigen
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引用次数: 0

摘要

在过去的一个世纪中,淡水和海洋水生系统中环境缺氧的发生率有所增加,预计随着气候变化将进一步增加。作为现存最大的脊椎动物群体的成员,淡水鱼,以及在较小程度上的海洋鱼类,很容易受到缺氧增加的影响。这一点很重要,因为鱼类提供重要的生态系统服务,并具有重要的文化和经济作用。鱼类在进化上是成功的,它们已经适应了不同的淡水和海洋栖息地以及不同的氧气条件。虽然一些鱼类表现出耐受缺氧甚至缺氧的遗传适应性,但其他鱼类仅限于富氧栖息地。分子表观遗传学的最新进展表明,一些表观遗传机制,特别是组蛋白和DNA去甲基化酶,直接依赖于氧,并在这一过程中调节重要的转录调节表观遗传标记。在转录后水平,缺氧已被证明会影响非编码microRNA的丰度。总之,这一证据为研究鱼类的缺氧耐受性提供了新的分子表观遗传学基础。在此,我们回顾了水生系统中环境缺氧变化的文献和预测,并讨论了鱼类缺氧耐受性的多样性和比较生理学,包括分子和生理适应。然后,我们讨论了环境表观遗传学的最新机制进展如何为未来的工作提供信息,探讨氧依赖性表观遗传标记在塑造鱼类机体缺氧耐受性方面的作用,重点关注物种内和物种间变异、驯化、代际和多代可塑性以及多种气候变化应激源。最后,我们描述了这种方法在保护生理学、生态毒理学和水产养殖方面的转化潜力。
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Fish models to explore epigenetic determinants of hypoxia-tolerance
The occurrence of environmental hypoxia in freshwater and marine aquatic systems has increased over the last century and is predicted to further increase with climate change. As members of the largest extant vertebrate group, freshwater fishes, and to a much lesser extent marine fishes, are vulnerable to increased occurrence of hypoxia. This is important as fishes render important ecosystem services and have important cultural and economic roles. Evolutionarily successful, fishes have adapted to diverse aquatic freshwater and marine habitats with different oxygen conditions. While some fishes exhibit genetic adaptions to tolerate hypoxia and even anoxia, others are limited to oxygen-rich habitats. Recent advances in molecular epigenetics have shown that some epigenetic machinery, especially histone- and DNA demethylases, is directly dependent on oxygen and modulates important transcription-regulating epigenetic marks in the process. At the post-transcriptional level, hypoxia has been shown to affect non-coding microRNA abundance. Together, this evidence adds a new molecular epigenetic basis to study hypoxia tolerance in fishes. Here, we review the documented and predicted changes in environmental hypoxia in aquatic systems and discuss the diversity and comparative physiology of hypoxia tolerance in fishes, including molecular and physiological adaptations. We then discuss how recent mechanistic advances in environmental epigenetics can inform future work probing the role of oxygen-dependent epigenetic marks in shaping organismal hypoxia-tolerance in fishes with a focus on within- and between-species variation, acclimation, inter- and multigenerational plasticity, and multiple climate-change stressors. We conclude by describing the translational potential of this approach for conservation physiology, ecotoxicology, and aquaculture.
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来源期刊
CiteScore
5.00
自引率
4.30%
发文量
155
审稿时长
3 months
期刊介绍: Part A: Molecular & Integrative Physiology of Comparative Biochemistry and Physiology. This journal covers molecular, cellular, integrative, and ecological physiology. Topics include bioenergetics, circulation, development, excretion, ion regulation, endocrinology, neurobiology, nutrition, respiration, and thermal biology. Study on regulatory mechanisms at any level of organization such as signal transduction and cellular interaction and control of behavior are also published.
期刊最新文献
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