生物
代谢组
转录组
非生物胁迫
转录因子
氧化应激
代谢组学
基因
生物化学
基因表达
生物信息学
作者
Tai‐Fei Yu,Zehao Hou,Hai‐Long Wang,Shiyang Chang,Xinyuan Song,Weijun Zheng,Lei Zheng,Ji‐Tong Wei,Zhiwei Lü,Jun Chen,Yongbin Zhou,Ming Chen,Suli Sun,Qiyan Jiang,Long‐Guo Jin,You‐Zhi Ma,Zhao‐Shi Xu
摘要
Summary Sterols have long been associated with diverse fields, such as cancer treatment, drug development, and plant growth; however, their underlying mechanisms and functions remain enigmatic. Here, we unveil a critical role played by a GmNF‐YC9‐mediated CCAAT‐box transcription complex in modulating the steroid metabolism pathway within soybeans. Specifically, this complex directly activates squalene monooxygenase (GmSQE1), which is a rate‐limiting enzyme in steroid synthesis. Our findings demonstrate that overexpression of either GmNF‐YC9 or GmSQE1 significantly enhances soybean stress tolerance, while the inhibition of SQE weakens this tolerance. Field experiments conducted over two seasons further reveal increased yields per plant in both GmNF‐YC9 and GmSQE1 overexpressing plants under drought stress conditions. This enhanced stress tolerance is attributed to the reduction of abiotic stress‐induced cell oxidative damage. Transcriptome and metabolome analyses shed light on the upregulation of multiple sterol compounds, including fucosterol and soyasaponin II, in GmNF‐YC9 and GmSQE1 overexpressing soybean plants under stress conditions. Intriguingly, the application of soybean steroids, including fucosterol and soyasaponin II, significantly improves drought tolerance in soybean, wheat, foxtail millet, and maize. These findings underscore the pivotal role of soybean steroids in countering oxidative stress in plants and offer a new research strategy for enhancing crop stress tolerance and quality from gene regulation to chemical intervention.
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