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PgaA 的 TPR 结构域是一个多功能支架,可结合 PNAG 并调节 PgaB 依赖性聚合物加工。

The TPR domain of PgaA is a multifunctional scaffold that binds PNAG and modulates PgaB-dependent polymer processing.

机构信息

Program in Molecular Medicine, The Hospital for Sick Children, Toronto, Ontario, Canada.

Department of Biochemistry, University of Toronto, Toronto, Ontario, Canada.

出版信息

PLoS Pathog. 2022 Aug 5;18(8):e1010750. doi: 10.1371/journal.ppat.1010750. eCollection 2022 Aug.

Abstract

The synthesis of exopolysaccharides as biofilm matrix components by pathogens is a crucial factor for chronic infections and antibiotic resistance. Many periplasmic proteins involved in polymer processing and secretion in Gram-negative synthase dependent exopolysaccharide biosynthetic systems have been individually characterized. The operons responsible for the production of PNAG, alginate, cellulose and the Pel polysaccharide each contain a gene that encodes an outer membrane associated tetratricopeptide repeat (TPR) domain containing protein. While the TPR domain has been shown to bind other periplasmic proteins, the functional consequences of these interactions for the polymer remain poorly understood. Herein, we show that the C-terminal TPR region of PgaA interacts with the de-N-acetylase domain of PgaB, and increases its deacetylase activity. Additionally, we found that when the two proteins form a complex, the glycoside hydrolase activity of PgaB is also increased. To better understand structure-function relationships we determined the crystal structure of a stable TPR module, which has a conserved groove formed by three repeat motifs. Tryptophan quenching, mass spectrometry analysis and molecular dynamics simulation studies suggest that the crystallized TPR module can bind PNAG/dPNAG via its electronegative groove on the concave surface, and potentially guide the polymer through the periplasm towards the porin for export. Our results suggest a scaffolding role for the TPR domain that combines PNAG/dPNAG translocation with the modulation of its chemical structure by PgaB.

摘要

病原体合成胞外多糖作为生物膜基质成分是慢性感染和抗生素耐药性的一个关键因素。许多涉及聚合体加工和革兰氏阴性菌依赖的胞外多糖生物合成系统分泌的周质蛋白已被单独鉴定。负责产生 PNAG、海藻酸盐、纤维素和 Pel 多糖的操纵子都包含一个编码与外膜相关的四肽重复(TPR)结构域的基因。虽然已经证明 TPR 结构域可以结合其他周质蛋白,但这些相互作用对聚合物的功能后果仍知之甚少。在此,我们表明 PgaA 的 C 端 TPR 区域与 PgaB 的去乙酰化酶结构域相互作用,并增加其去乙酰化酶活性。此外,我们发现当这两种蛋白质形成复合物时,PgaB 的糖苷水解酶活性也增加。为了更好地理解结构-功能关系,我们确定了一个稳定的 TPR 模块的晶体结构,该结构具有由三个重复基序形成的保守凹槽。色氨酸猝灭、质谱分析和分子动力学模拟研究表明,结晶的 TPR 模块可以通过其凹面的带负电荷的凹槽结合 PNAG/dPNAG,并可能将聚合物引导通过周质空间朝向孔蛋白进行输出。我们的结果表明 TPR 结构域具有支架作用,它将 PNAG/dPNAG 的易位与 PgaB 对其化学结构的调节结合起来。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b847/9384988/b7596ae76cd9/ppat.1010750.g001.jpg

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