Horizontally acquired CSP genes contribute to wheat adaptation and improvement

IF 13.6 1区 生物学 Q1 PLANT SCIENCES Nature Plants Pub Date : 2025-03-27 DOI:10.1038/s41477-025-01952-8
Kai Wang, Guanghui Guo, Shenglong Bai, Jianchao Ma, Zhen Zhang, Zeyu Xing, Wei Wang, Hao Li, Huihui Liang, Zheng Li, Xiaomin Si, Jinjin Wang, Qian Liu, Wenyao Xu, Cuicui Yang, Ru-Feng Song, Junrong Li, Tiantian He, Jingyao Li, Xiaoyu Zeng, Jingge Liang, Fang Zhang, Xiaolong Qiu, Yuanyuan Li, Tiantian Bu, Wen-Cheng Liu, Yusheng Zhao, Jinling Huang, Yun Zhou, Chun-Peng Song
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Abstract

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 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 in their bacterial homologues by encoding a nucleic acid-binding protein. Experimental evidence indicates that TaCSP genes positively regulate drought response and improve photosynthetic efficiency under water-deficient conditions by directly targeting a type 1 metallothionein gene to increase reactive oxygen species 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. This study reports the horizontal gene transfer of CSP genes from bacteria to Triticeae, promoting the adaptation and spread of wheat through enhanced drought tolerance and photosynthetic efficiency.

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水平获得的CSP基因有助于小麦的适应和改良
虽然水平基因转移(HGT)通常有助于受体生物的环境适应,但它们是否以及如何影响作物的进化和驯化尚不清楚。在这里,我们展示了编码冷休克蛋白(CSPs)的三个基因从细菌转移到小麦科的一个部落,包括几种主要的主食作物,如小麦、大麦和黑麦。小麦获得性CSP基因(TaCSPs)通过编码核酸结合蛋白,在其细菌同源物中功能保守。实验证据表明,在缺水条件下,TaCSP基因通过直接靶向1型金属硫蛋白基因增加活性氧的清除,正向调节干旱响应,提高光合效率,从而促进小麦的地理扩张。在小麦中鉴定出一种优良的CSP单倍型,将其引入小麦,显著提高了小麦的抗旱性、光合效率和籽粒产量。这些发现不仅为HGT在作物适应和驯化中的作用提供了重要的见解,而且表明通过HGT引入的新型微生物基因为转基因作物的育种和改良提供了稳定的、自然优化的资源。
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来源期刊
Nature Plants
Nature Plants PLANT SCIENCES-
CiteScore
25.30
自引率
2.20%
发文量
196
期刊介绍: Nature Plants is an online-only, monthly journal publishing the best research on plants — from their evolution, development, metabolism and environmental interactions to their societal significance.
期刊最新文献
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