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VirD2结合蛋白的二聚化对于农杆菌诱导植物肿瘤形成至关重要。

Dimerization of VirD2 binding protein is essential for Agrobacterium induced tumor formation in plants.

作者信息

Padavannil Abhilash, Jobichen Chacko, Qinghua Yang, Seetharaman Jayaraman, Velazquez-Campoy Adrian, Yang Liu, Pan Shen Q, Sivaraman J

机构信息

Department of Biological Sciences, National University of Singapore, Singapore.

X4 Beamline, Brookhaven National Laboratory, Upton, New York, United States of America.

出版信息

PLoS Pathog. 2014 Mar 13;10(3):e1003948. doi: 10.1371/journal.ppat.1003948. eCollection 2014 Mar.

Abstract

The Type IV Secretion System (T4SS) is the only bacterial secretion system known to translocate both DNA and protein substrates. The VirB/D4 system from Agrobacterium tumefaciens is a typical T4SS. It facilitates the bacteria to translocate the VirD2-T-DNA complex to the host cell cytoplasm. In addition to protein-DNA complexes, the VirB/D4 system is also involved in the translocation of several effector proteins, including VirE2, VirE3 and VirF into the host cell cytoplasm. These effector proteins aid in the proper integration of the translocated DNA into the host genome. The VirD2-binding protein (VBP) is a key cytoplasmic protein that recruits the VirD2-T-DNA complex to the VirD4-coupling protein (VirD4 CP) of the VirB/D4 T4SS apparatus. Here, we report the crystal structure and associated functional studies of the C-terminal domain of VBP. This domain mainly consists of α-helices, and the two monomers of the asymmetric unit form a tight dimer. The structural analysis of this domain confirms the presence of a HEPN (higher eukaryotes and prokaryotes nucleotide-binding) fold. Biophysical studies show that VBP is a dimer in solution and that the HEPN domain is the dimerization domain. Based on structural and mutagenesis analyses, we show that substitution of key residues at the interface disrupts the dimerization of both the HEPN domain and full-length VBP. In addition, pull-down analyses show that only dimeric VBP can interact with VirD2 and VirD4 CP. Finally, we show that only Agrobacterium harboring dimeric full-length VBP can induce tumors in plants. This study sheds light on the structural basis of the substrate recruiting function of VBP in the T4SS pathway of A. tumefaciens and in other pathogenic bacteria employing similar systems.

摘要

IV型分泌系统(T4SS)是已知的唯一一种能转运DNA和蛋白质底物的细菌分泌系统。根癌农杆菌的VirB/D4系统是典型的T4SS。它有助于细菌将VirD2-T-DNA复合物转运到宿主细胞细胞质中。除了蛋白质-DNA复合物外,VirB/D4系统还参与几种效应蛋白的转运,包括VirE2、VirE3和VirF进入宿主细胞细胞质。这些效应蛋白有助于将转运的DNA正确整合到宿主基因组中。VirD2结合蛋白(VBP)是一种关键的细胞质蛋白,它将VirD2-T-DNA复合物招募到VirB/D4 T4SS装置的VirD4偶联蛋白(VirD4 CP)上。在此,我们报道了VBP C端结构域的晶体结构及相关功能研究。该结构域主要由α螺旋组成,不对称单元的两个单体形成紧密的二聚体。对该结构域的结构分析证实了存在一个HEPN(高等真核生物和原核生物核苷酸结合)折叠。生物物理研究表明,VBP在溶液中是二聚体,且HEPN结构域是二聚化结构域。基于结构和诱变分析,我们表明界面处关键残基的取代会破坏HEPN结构域和全长VBP的二聚化。此外,下拉分析表明只有二聚体VBP能与VirD2和VirD4 CP相互作用。最后,我们表明只有携带二聚体全长VBP的根癌农杆菌才能在植物中诱导肿瘤。这项研究揭示了VBP在根癌农杆菌T4SS途径及其他采用类似系统的致病细菌中底物招募功能的结构基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/654d/3953389/0845da9fa29c/ppat.1003948.g001.jpg

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