气候变化
基因组学
脆弱性(计算)
生物多样性
Nexus(标准)
环境资源管理
群体基因组学
环境变化
全球变暖
地理
生态学
生物
计算机科学
环境科学
基因组
计算机安全
嵌入式系统
生物化学
基因
作者
Jiajun Feng,Xuming Dan,Yangkai Cui,Yi Gong,Minyue Peng,Yupeng Sang,Pär K. Ingvarsson,Jing Wang
标识
DOI:10.1016/j.xplc.2024.101044
摘要
Global climate change is leading to rapid and drastic shifts in environmental conditions, posing threats to biodiversity and nearly all life forms worldwide. Forest trees serve as foundational components of terrestrial ecosystems and play a crucial and leading role in combating and mitigating the adverse effects of extreme climate events, despite their own vulnerability to these threats. Therefore, understanding and monitoring how natural forests respond to rapid climate change is a key priority for biodiversity conservation. Recent progress in evolutionary genomics, driven primarily by cutting-edge multi-omics technologies, offers powerful new tools to address several key issues. These include precise delineation of species and evolutionary units, inference of past evolutionary histories and demographic fluctuations, identification of environmentally adaptive variants, and measurement of genetic load levels. As the urgency to deal with more extreme environmental stresses grows, understanding the genomics of evolutionary history, local adaptation, future responses to climate change, and conservation and restoration of natural forest trees will be critical for research at the nexus of global change, population genomics, and conservation biology. In this review, we explore the application of evolutionary genomics to assess the effects of global climate change using multi-omics approaches and discuss the outlook for breeding of climate-adapted trees.
科研通智能强力驱动
Strongly Powered by AbleSci AI