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拟南芥丁香假单胞菌效应因子 HopZ3 的计算机结构分析揭示其配体结合活性和毒性功能。

In-silico structural analysis of Pseudomonas syringae effector HopZ3 reveals ligand binding activity and virulence function.

机构信息

, 50, Banerjee para road, Naihati, 743165, West Bengal, India.

出版信息

J Plant Res. 2021 May;134(3):599-611. doi: 10.1007/s10265-021-01274-8. Epub 2021 Mar 17.

DOI:10.1007/s10265-021-01274-8
PMID:33730245
Abstract

Bacterial acetyltransferase effectors belonging to the Yersinia outer protein J (YopJ) group inhibit multiple immune signaling pathways in human and plants. The present study determines in-silico acetyl-coenzyme A (AcCoA) binding and Arabidopsis immune regulator RPM1-interacting protein4 (RIN4) peptide interactions to YopJ effector hypersensitivity and pathogenesis-dependent outer proteinZ3 (HopZ3) from Pseudomonas syringae. Phylogenetic analysis revealed that HopZ3 was clustered by acetyltransferase effectors from plant bacterial pathogens. Structural juxtaposition shows HopZ3 comprises topology matched closer with HopZ1a than PopP2 effectors, respectively. AcCoA binds HopZ3 at two sites i.e., substrate binding pocket and catalytic site. AcCoA interactions to substrate binding pocket was transient and dissipated upon in-silico mutation of Ser 279 residue whereas, attachment to catalytic site was found to be stable in the presence of inositol hexaphosphate (IP6) as a co-factor. Interface atoms used for measuring hydrogen bond distances, bound or accessible surface area, and root-mean-square fluctuation (RMSF) values, suggests that the HopZ3 complex stabilizes after binding to AcCoA ligand and RIN4 peptide. The few non-conserved polymorphic residues that have been displayed on HopZ3 surface presumably confer intracellular recognitions within hosts. Collectively, homology modeling and interactive docking experiments were used to substantiate Arabidopsis immune 'guardee' interactions to HopZ3.

摘要

属于耶尔森氏菌外蛋白 J (YopJ) 组的细菌乙酰转移酶效应物抑制人类和植物中的多种免疫信号通路。本研究通过计算机模拟确定乙酰辅酶 A (AcCoA) 结合和拟南芥免疫调节蛋白 RPM1 相互作用蛋白 4 (RIN4) 肽与来自丁香假单胞菌的 YopJ 效应物超敏反应和发病相关外蛋白 Z3 (HopZ3) 的相互作用。系统发育分析表明,HopZ3 与植物细菌病原体的乙酰转移酶效应物聚类。结构并置表明,HopZ3 与 HopZ1a 的拓扑结构更匹配,而不是 PopP2 效应物。AcCoA 在两个位点与 HopZ3 结合,即底物结合口袋和催化位点。AcCoA 与底物结合口袋的相互作用是短暂的,并且在丝氨酸 279 残基的计算机模拟突变后消失,而在六磷酸肌醇 (IP6) 作为辅助因子存在的情况下,与催化位点的附着被发现是稳定的。用于测量氢键距离、结合或可及表面积以及均方根波动 (RMSF) 值的界面原子表明,HopZ3 复合物在与 AcCoA 配体和 RIN4 肽结合后稳定。HopZ3 表面显示的少数非保守多态性残基可能在宿主细胞内赋予了识别能力。总之,同源建模和交互式对接实验用于证实拟南芥免疫“守护者”与 HopZ3 的相互作用。

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J Chem Inf Model. 2020 Feb 24;60(2):667-683. doi: 10.1021/acs.jcim.9b00905. Epub 2020 Jan 27.
3
Identification and analysis of structurally critical fragments in HopS2.
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BMC Bioinformatics. 2019 Feb 4;19(Suppl 13):552. doi: 10.1186/s12859-018-2551-1.
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STRING v11: protein-protein association networks with increased coverage, supporting functional discovery in genome-wide experimental datasets.STRING v11:具有增强覆盖范围的蛋白质-蛋白质相互作用网络,支持在全基因组实验数据集的功能发现。
Nucleic Acids Res. 2019 Jan 8;47(D1):D607-D613. doi: 10.1093/nar/gky1131.
5
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Front Plant Sci. 2018 Aug 14;9:977. doi: 10.3389/fpls.2018.00977. eCollection 2018.
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