通过来自Ralstonia solanacearum的Nudix效应器RipN进行二核酸基体识别和催化的结构基础
Xiaofang Chen1, Ziyi Zhou2, Lixin Lu2
1School of Future Technology, Anhui Finance & Trade Vocational College, Hefei, 230601, PR China.
Biochemical and biophysical research communications
|February 17, 2026
概括
拉尔斯托尼亚 (Ralstonia solanacearumarum) 是一个海洋植物.
科学领域:
- 植物与微生物的相互作用
- 植物免疫的分子机制
- 酵素学和结构生物学.
背景情况:
- 来自Ralstonia solanacearum的细菌效应剂RipN准宿主二核酸代谢,以抑制植物免疫力.
- RipN是一种Nudix酶,优先化NADH,但其基质特异性和催化机制尚不清楚.
研究的目的:
- 阐明RipN基底特异性和催化机制的结构基础.
- 了解RipN如何选择性地准宿主二核酸代谢物.
主要方法:
- 全长RipN和一个突变的X射线晶体学 (RipN^E220AΔN81).
- 计算分析包括CASTp用于口袋分析和分子对接.
- 通过结构分析识别关键的基质区分残留物.
主要成果:
- RipN 具有一个 Nudix 折叠,有一个复合基质结合口袋,可以容纳二核酸.
- NADH,ADP-ribose和FAD共享了一个保留的结合模式.
- Tyr318和Glu384对于基特异性相互作用和固体排斥至关重要,确保NADH在相关代谢物上的水解.
- 提出了一种依赖于Glu220的,Mg2+辅助的催化机制,涉及水激活用于酸键裂解.
结论:
- 对RipN对宿主二核酸代谢的选择性向的结构和机制见解.
- 演示如何保存的努迪克斯支架可以适应植物病原体相互作用中的特定效应器功能.
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