广谱
生物
果胶
植物抗病性
抗性(生态学)
疾病
生物技术
计算生物学
植物
生物化学
农学
组合化学
内科学
化学
医学
基因
作者
Yeqiang Xia,Guangzheng Sun,Jun‐Hua Xiao,Xinping He,Haibin Jiang,Zhichao Zhang,Qi Zhang,Kainan Li,Sicong Zhang,Xiaoxiao Shi,Zhaoyun Wang,Lin Liu,Yao Zhao,Yuheng Yang,Kaixuan Duan,Wenwu Ye,Yiming Wang,Suomeng Dong,Yan Wang,Zhenchuan Ma,Xufang Qiu
标识
DOI:10.1016/j.molp.2024.07.008
摘要
Plant cell walls are a critical site where plants and pathogens continuously struggle for physiological dominance. Here we show that dynamic remodeling of pectin methylesterification of plant cell walls is a component of the physiological and co-evolutionary struggles between hosts and pathogens. A Phytophthora sojae secreted pectin methylesterase (PsPME1) decreases the degree of pectin methylesterification, thus synergizing with an endo-polygalacturonase (PsPG1) to weaken plant cell walls. To counter PsPME1-mediated susceptibility, a plant-derived pectin methylesterase inhibitor protein, GmPMI1, protects pectin to maintain a high methylesterification status. GmPMI1 protects plant cell walls from enzymatic degradation by inhibiting both soybean and P. sojae pectin methylesterases during infection. However, constitutive expression of GmPMI1 disrupted the tradeoff between host growth and defense responses. So, we used AlphaFold structure tools to design a modified form of GmPMI1 (GmPMI1R) which specifically targets and inhibits pectin methylesterases secreted from pathogens but not from the plants. Transient expression of GmPMI1R enhanced plant resistance to oomycetes and fungal pathogens. In summary, our work highlights biochemical modification of the cell wall as an important focal point in the physiological and co-evolutionary conflict between the hosts and microbes and serves as an important proof-of-concept for how rapid advancements in AI-driven structure-based tools can accelerate the prediction of new strategies for plant protection.
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