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TatB 表面暴露结构域参与. 中的 Tat 转运酶的结构和功能组装。

Surface-exposed domains of TatB involved in the structural and functional assembly of the Tat translocase in .

机构信息

Institute of Biochemistry and Molecular Biology, ZBMZ, Faculty of Medicine, University of Freiburg, 79104 Freiburg, Germany.

Institute of Biology II, Biochemistry-Functional Proteomics, Faculty of Biology, University of Freiburg, 79104 Freiburg, Germany.

出版信息

J Biol Chem. 2019 Sep 20;294(38):13902-13914. doi: 10.1074/jbc.RA119.009298. Epub 2019 Jul 24.

Abstract

Twin-arginine-dependent translocases transport folded proteins across bacterial, archaeal, and chloroplast membranes. Upon substrate binding, they assemble from hexahelical TatC and single-spanning TatA and TatB membrane proteins. Although structural and functional details of individual Tat subunits have been reported previously, the sequence and dynamics of Tat translocase assembly remain to be determined. Employing the zero-space cross-linker ,'-dicyclohexylcarbodiimide (DCCD) in combination with LC-MS/MS, we identified as yet unknown intra- and intermolecular contact sites of TatB and TatC. In addition to their established intramembrane binding sites, both proteins were thus found to contact each other through the soluble N terminus of TatC and the interhelical linker region around the conserved glutamyl residue Glu of TatB from Functional analyses suggested that by interacting with the TatC N terminus, TatB improves the formation of a proficient substrate recognition site of TatC. The Glu region of TatB was found also to contact distinct downstream sites of a neighboring TatB molecule and to thereby mediate oligomerization of TatB within the TatBC receptor complex. Finally, we show that global DCCD-mediated cross-linking of TatB and TatC in membrane vesicles or, alternatively, creating covalently linked TatC oligomers prevents TatA from occupying a position close to the TatBC-bound substrate. Collectively, our results are consistent with a circular arrangement of the TatB and TatC units within the TatBC receptor complex and with TatA entering the interior TatBC-binding cavity through lateral gates between TatBC protomers.

摘要

双精氨酸依赖的转运体将折叠蛋白跨细菌、古菌和叶绿体膜运输。在底物结合后,它们由六螺旋 TatC 和单跨 TatA 和 TatB 膜蛋白组装而成。尽管以前已经报道了单个 Tat 亚基的结构和功能细节,但 Tat 转运体组装的序列和动力学仍有待确定。本研究采用零空间交联剂,'-二环己基碳化二亚胺(DCCD)与 LC-MS/MS 相结合,鉴定了 TatB 和 TatC 的未知的内在和分子间接触位点。除了它们已建立的跨膜结合位点外,这两种蛋白质还通过 TatC 的可溶性 N 端和 TatB 的保守谷氨酸残基 Glu 周围的螺旋间连接区相互接触。功能分析表明,通过与 TatC N 端相互作用,TatB 改善了 TatC 形成有效的底物识别位点的能力。还发现 TatB 的 Glu 区域与相邻 TatB 分子的不同下游位点接触,并通过这种方式介导 TatB 在 TatBC 受体复合物内的寡聚化。最后,我们表明在膜泡中进行全局 DCCD 介导的 TatB 和 TatC 交联,或者相反,形成共价连接的 TatC 寡聚物,可阻止 TatA 占据靠近 TatBC-结合底物的位置。总的来说,我们的结果与 TatBC 受体复合物内 TatB 和 TatC 单元的圆形排列一致,并且 TatA 通过 TatBC 前体之间的侧门进入内部 TatBC 结合腔。

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本文引用的文献

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How to achieve Tat transport with alien TatA.如何实现用外来 TatA 进行 Tat 转运。
Sci Rep. 2017 Aug 18;7(1):8808. doi: 10.1038/s41598-017-08818-w.

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