Electrostatic networks control plug stabilization in the PapC usher.

Q3 Biochemistry, Genetics and Molecular Biology
Molecular Membrane Biology Pub Date : 2015-08-01 Epub Date: 2016-05-16 DOI:10.3109/09687688.2016.1160450
Thieng Pham, Nadine S Henderson, Glenn T Werneburg, David G Thanassi, Anne H Delcour
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引用次数: 6

Abstract

The PapC usher, a β-barrel pore in the outer membrane of uropathogenic Escherichia coli, is used for assembly of the P pilus, a key virulence factor in bacterial colonization of human kidney cells. Each PapC protein is composed of a 24-stranded β-barrel channel, flanked by N- and C-terminal globular domains protruding into the periplasm, and occluded by a plug domain (PD). The PD is displaced from the channel towards the periplasm during pilus biogenesis, but the molecular mechanism for PD displacement remains unclear. Two structural features within the β-barrel, an α-helix and β5-6 hairpin loop, may play roles in controlling plug stabilization. Here we have tested clusters of residues at the interface of the plug, barrel, α-helix and hairpin, which participate in electrostatic networks. To assess the roles of these residues in plug stabilization, we used patch-clamp electrophysiology to compare the activity of wild-type and mutant PapC channels containing alanine substitutions at these sites. Mutations interrupting each of two salt bridge networks were relatively ineffective in disrupting plug stabilization. However, mutation of two pairs of arginines located at the inner and the outer surfaces of the PD resulted in an enhanced propensity for plug displacement. One arginine pair involved in a repulsive interaction between the linkers that tether the plug to the β-barrel was particularly sensitive to mutation. These results suggest that plug displacement, which is necessary for pilus assembly and translocation, may require a weakening of key electrostatic interactions between the plug linkers, and the plug and the α-helix.

静电网络控制插头稳定在PapC迎来。
PapC usher是尿路致病性大肠杆菌外膜上的一个β桶状孔,用于组装P菌毛,P菌毛是细菌定植人肾细胞的关键毒力因子。每个PapC蛋白由一个24链β-桶状通道组成,两侧是向外周质突出的N端和c端球状结构域,并被一个塞结构域(PD)封闭。在菌毛生物发生过程中,PD从通道向外周质转移,但PD转移的分子机制尚不清楚。β筒体内α-螺旋和β5-6发夹环两种结构特征可能在控制柱塞稳定中起作用。在这里,我们测试了参与静电网络的塞子、桶状、α-螺旋和发夹界面上的残留物簇。为了评估这些残基在插头稳定中的作用,我们使用膜片钳电生理学来比较在这些位点上含有丙氨酸取代的野生型和突变型PapC通道的活性。中断两个盐桥网络中的任何一个的突变在破坏桥塞稳定方面相对无效。然而,位于PD内外表面的两对精氨酸的突变导致堵塞位移的倾向增强。其中一对精氨酸参与了将插头连接到β桶的连接体之间的排斥性相互作用,对突变特别敏感。这些结果表明,对于菌毛组装和易位来说,菌塞位移可能需要削弱菌塞连接体之间以及菌塞与α-螺旋之间的关键静电相互作用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Molecular Membrane Biology
Molecular Membrane Biology 生物-生化与分子生物学
CiteScore
4.80
自引率
0.00%
发文量
0
审稿时长
>12 weeks
期刊介绍: Cessation. Molecular Membrane Biology provides a forum for high quality research that serves to advance knowledge in molecular aspects of biological membrane structure and function. The journal welcomes submissions of original research papers and reviews in the following areas: • Membrane receptors and signalling • Membrane transporters, pores and channels • Synthesis and structure of membrane proteins • Membrane translocation and targeting • Lipid organisation and asymmetry • Model membranes • Membrane trafficking • Cytoskeletal and extracellular membrane interactions • Cell adhesion and intercellular interactions • Molecular dynamics and molecular modelling of membranes. • Antimicrobial peptides.
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