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基因组结构和选择信号以补偿方式塑造对新环境的可塑性反应。

Genome architecture and selective signals compensatorily shape plastic response to a new environment.

作者信息

Li Ao, Zhao Mingjie, Zhang Ziyan, Wang Chaogang, Zhang Kexin, Zhang Xu, De Wit Pierre Raoul, Wang Wei, Gao Juntao, Guo Ximing, Zhang Guofan, Li Li

机构信息

CAS and Shandong Province Key Laboratory of Experimental Marine Biology, Center for Ocean Mega-Science, Institute of Oceanology, Chinese Academy of Sciences, Qingdao 266071, China.

Laboratory for Marine Biology and Biotechnology, Laoshan Laboratory, Qingdao 266237, China.

出版信息

Innovation (Camb). 2023 Jun 21;4(4):100464. doi: 10.1016/j.xinn.2023.100464. eCollection 2023 Jul 10.

Abstract

Transcriptional plasticity interacts with natural selection in complex ways and is crucial for the survival of species under rapid climate change. How 3D genome architecture affects transcriptional plasticity and its interaction with genetic adaptation are unclear. We transplanted estuarine oysters to a new environment and found that genes located in active chromatin regions exhibited greater transcriptional plasticity, and changes in these regions were negatively correlated with selective signals. This indicates a trade-off between 3D active regions and selective signals in shaping plastic responses to a new environment. Specifically, a mutation, lincRNA, and changes in the accessibility of a distal enhancer potentially affect its interaction with the gene, which regulates the muscle function and survival of oysters. Our findings reveal that 3D genome architecture compensates for the role of genetic adaptation in environmental response to new environments and provide insights into synergetic genetic and epigenetic interactions critical for fitness-related trait and survival in a model marine species.

摘要

转录可塑性以复杂的方式与自然选择相互作用,对于物种在快速气候变化下的生存至关重要。三维基因组结构如何影响转录可塑性及其与遗传适应的相互作用尚不清楚。我们将河口牡蛎移植到一个新环境中,发现位于活跃染色质区域的基因表现出更大的转录可塑性,并且这些区域的变化与选择信号呈负相关。这表明在塑造对新环境的可塑性反应时,三维活跃区域和选择信号之间存在权衡。具体而言,一个突变、长链非编码RNA以及一个远端增强子可及性的变化可能会影响其与该基因的相互作用,该基因调节牡蛎的肌肉功能和生存。我们的研究结果表明,三维基因组结构补偿了遗传适应在对新环境的环境反应中的作用,并为对一个典型海洋物种中与适应性相关性状和生存至关重要的协同遗传和表观遗传相互作用提供了见解。

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