生态型
生物
拟南芥
拟南芥
特质
适应(眼睛)
局部适应
赤霉素
避光
遗传建筑学
基因座(遗传学)
植物生物学
植物种类
开花位点C
基因调控网络
遗传学
植物生理学
限制
植物发育
数量性状位点
植物进化
全球变化
等位基因
基因
作者
Han Zhang,Meng Liu,Shangling Lou,Yu Han,Bao Liu,Songyi Yang,Xiaoqin Feng,Landi Feng,Hao Lin,Yudan Zheng,Yan Song,Jin Yan,Jing Hou,Xuemeng Gao,Shaobo Gu,Yingjun Yao,Xiang Guo,Xuejing Liu,Ruyun Liang,Mengyun Guo
摘要
Ideal plant architectures are crucial for adapting to environmental changes, yet the molecular mechanisms behind high-altitude plant adaptations remain elusive. We characterized the dwarf and highly branched traits of the Tibet ecotype of Arabidopsis thaliana (L.) Heynh. Quantitative trait locus (QTL) analysis revealed that GA5 and BRC1, as major genes regulating plant height and branching, respectively, underlie the variation in plant architecture of the Tibet ecotype. Loss-of-function of GA5 disrupts gibberellin biosynthesis, leading to dwarfism, and natural variations in the BRC1 promoter reduce its expression, promoting branching. A positive feedback loop formed by GA5 and BRC1 via the DELLA-SPL9 module balances plant height and branching. Additionally, alleles of GA5 and BRC1 exhibit contrasting sensitivity to UV-B radiation and low temperatures, suggesting that they have experienced strong ecological selections at high altitudes. Our findings reveal that GA5 and BRC1 form a feedback regulatory module that coordinately regulates the balance between plant height and branching, thereby governing developmental adaptation to high-altitude environments.
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