Horizontally acquired CSP genes contribute to wheat adaptation and improvement
作者:Kai Wang, Guanghui Guo, Shenglong Bai, Jianchao Ma, Zhen Zhang, Zeyu Xing, Wei Wang, Hao Li, Huihui Liang, Zheng Li, Xiaomin Si, Jin-Jie Wang, Qian Liu, Wenyao Xu, Cui-cui Yang, Ru-Feng Song, Junrong Li, Tiantian He, Jingyao Li, Xiaoyu Zeng, Jing Liang, Fang Zhang, Xiao-Xia Qiu, Yuanyuan Li, Tiantian Bu, Wencheng Liu, Yusheng Zhao, Jinling Huang, Yun Zhou, Chunpeng Song · 发表于:bioRxiv · 年份:2024 · DOI:10.1038/s41477-025-01952-8 · 被引用次数:12 · 研究领域:Biology、Medicine
Although horizontal gene transfer (HGT) often facilitates environmental adaptation of recipient organisms, whether and how they might affect crop evolution and domestication is unclear. Here we show that three genes encoding cold shock proteins (CSPs) were transferred from bacteria to the last common ancestor of Triticeae, a tribe of the grass family that includes several major staple crops such as wheat, barley, and rye. The acquired CSP genes in wheat (TaCSPs) are functionally conserved with their bacterial homologs by encoding a nucleic acid binding protein. Experimental evidence indicates that TaCSP genes positively regulate drought response and improve photosynthetic efficiency under water deficit conditions, by directly targeting a type 1 metallothionein gene to increase ROS scavenging, which in turn contributed to the geographic expansion of wheat. We identified an elite CSP haplotype in Aegilops-tauschii, introduction of which to wheat significantly increased drought tolerance, photosynthetic efficiency and grain yields. These findings not only provide major insights into the role of HGT in crop adaptation and domestication, but also demonstrate that novel microbial genes introduced through HGT offer a stable and naturally optimized resource for transgenic crop breeding and improvement.