Evolutionary Genomics Unravels the Responses and Adaptation to Climate Change in a Key Alpine Forest Tree Species.

IF 11 1区 生物学 Q1 BIOCHEMISTRY & MOLECULAR BIOLOGY
Zhiqin Long, Yupeng Sang, Jiajun Feng, Xinxin Zhang, Tingting Shi, Lushui Zhang, Kangshan Mao, Loren H Rieseberg, Jianquan Liu, Jing Wang
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Abstract

Despite widespread biodiversity loss, our understanding of how species and populations will respond to accelerated climate change remains limited. In this study, we integrate population genomics, experimental evolution, and environmental modeling to elucidate the evolutionary responses to climate change in Populus lasiocarpa, a key alpine forest tree species primarily distributed in the mountainous regions of a global biodiversity hotspot. Over historical timescales, our findings demonstrate that demographic dynamics, divergent selection, and long-term balancing selection have shaped and maintained genetic variation within and between populations. In examining genomic signatures of contemporary climate adaptation, we found that haplotype blocks, potentially caused by inversion polymorphisms that suppress recombination, are linked to enriched combinations of locally adaptive environmental variations. We further assessed the relative contributions of environmentally induced plastic responses, constitutive expression divergence between genetic clusters, and their interactions in driving gene expression variation and divergence. Notably, we observed a strong correlation between sequence divergence and constitutive differential expression among genetic clusters. Finally, by incorporating genetic adaptation, migration, and genetic load into our predictions of population-level climate change risks, we identified western populations-primarily distributed in the Hengduan Mountains, a region known for its environmental heterogeneity and significant biodiversity-as the most vulnerable to climate change. These populations should be prioritized for conservation and management. Overall, our study advances the understanding of the relative roles of long-term natural selection, local environmental adaptation, and immediate plastic expression changes in shaping the responses of natural populations of keystone species to climate change.

进化基因组学揭示了一种重要高山森林树种对气候变化的响应和适应。
尽管生物多样性普遍丧失,但我们对物种和种群如何应对加速的气候变化的理解仍然有限。本研究将种群基因组学、实验进化和环境模型相结合,研究了主要分布在全球生物多样性热点山区的高寒森林树种lasiocarpa对气候变化的进化响应。在历史时间尺度上,我们的研究结果表明,人口动态、分化选择和长期平衡选择塑造并维持了种群内部和种群之间的遗传变异。在研究当代气候适应的基因组特征时,我们发现单倍型块可能是由抑制重组的倒置多态性引起的,与局部适应性环境变化的丰富组合有关。我们进一步评估了环境诱导的可塑性反应的相对贡献,遗传簇之间的组成表达差异,以及它们在驱动基因表达变异和差异中的相互作用。值得注意的是,我们观察到序列分化和基因簇之间的组成差异表达之间存在很强的相关性。最后,通过将遗传适应、迁移和遗传负荷纳入我们对种群水平气候变化风险的预测,我们确定了西部种群(主要分布在以环境异质性和显著生物多样性而闻名的横断山脉地区)最容易受到气候变化的影响。应优先保护和管理这些种群。总的来说,我们的研究促进了对长期自然选择、局部环境适应和即时塑性表达变化在塑造关键物种自然种群对气候变化的响应中的相对作用的理解。
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来源期刊
Molecular biology and evolution
Molecular biology and evolution 生物-进化生物学
CiteScore
19.70
自引率
3.70%
发文量
257
审稿时长
1 months
期刊介绍: Molecular Biology and Evolution Journal Overview: Publishes research at the interface of molecular (including genomics) and evolutionary biology Considers manuscripts containing patterns, processes, and predictions at all levels of organization: population, taxonomic, functional, and phenotypic Interested in fundamental discoveries, new and improved methods, resources, technologies, and theories advancing evolutionary research Publishes balanced reviews of recent developments in genome evolution and forward-looking perspectives suggesting future directions in molecular evolution applications.
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