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变形链球菌中感受态刺激肽的构效关系揭示了对膜蛋白酶SepM识别和ComD受体激活至关重要的基序。

Structure-Activity Relationships of the Competence Stimulating Peptide in Streptococcus mutans Reveal Motifs Critical for Membrane Protease SepM Recognition and ComD Receptor Activation.

作者信息

Bikash Chowdhury Raihan, Hamry Sally R, Tal-Gan Yftah

机构信息

Department of Chemistry , University of Nevada, Reno , 1664 North Virginia Street , Reno , Nevada 89557 , United states.

出版信息

ACS Infect Dis. 2018 Sep 14;4(9):1385-1394. doi: 10.1021/acsinfecdis.8b00115. Epub 2018 Jul 23.

Abstract

Streptococcus mutans ( S. mutans) is a Gram-positive human pathogen that is one of the major contributors to dental caries, a condition with an economic cost of over $100 billion per year in the United States. S. mutans secretes a 21-amino-acid peptide termed the competence stimulating peptide (21-CSP) to assess its population density in a process termed quorum sensing (QS) and to initiate a variety of phenotypes such as biofilm formation and bacteriocin production. 21-CSP is processed by a membrane bound protease SepM into active 18-CSP, which then binds to the ComD receptor. This study seeks to determine the molecular mechanism that ties 21-CSP:SepM recognition and 18-CSP:ComD receptor binding and to identify QS modulators with distinct activity profiles. To this end, we conducted systematic replacement of the amino acid residues in both 21-CSP and 18-CSP and assessed the ability of the mutated analogs to modulate QS. We identified residues that are important to SepM recognition and ComD receptor binding. Our results shed light on the S. mutans competence QS pathway at the molecular level. Moreover, our structural insights of the CSP signal can be used to design QS-based anti-infective therapeutics against S. mutans.

摘要

变形链球菌是一种革兰氏阳性人类病原体,是导致龋齿的主要因素之一,在美国,龋齿每年造成的经济损失超过1000亿美元。变形链球菌分泌一种名为感受态刺激肽(21-CSP)的21个氨基酸的肽,以在群体感应(QS)过程中评估其种群密度,并启动多种表型,如生物膜形成和细菌素产生。21-CSP由膜结合蛋白酶SepM加工成活性18-CSP,然后与ComD受体结合。本研究旨在确定连接21-CSP:SepM识别和18-CSP:ComD受体结合的分子机制,并鉴定具有不同活性谱的QS调节剂。为此,我们对21-CSP和18-CSP中的氨基酸残基进行了系统替换,并评估了突变类似物调节QS的能力。我们确定了对SepM识别和ComD受体结合重要的残基。我们的结果在分子水平上揭示了变形链球菌感受态QS途径。此外,我们对CSP信号的结构见解可用于设计针对变形链球菌的基于QS的抗感染疗法。

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