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Gap1 作为分子伴侣,在富含丝氨酸重复序列的细菌黏附素的生物发生过程中稳定其相互作用伙伴 Gap3。

Gap1 functions as a molecular chaperone to stabilize its interactive partner Gap3 during biogenesis of serine-rich repeat bacterial adhesin.

机构信息

Departments of Pediatric Dentistry and Microbiology, University of Alabama at Birmingham, Schools of Dentistry and Medicine, Birmingham, AL 35294, USA.

出版信息

Mol Microbiol. 2012 Feb;83(4):866-78. doi: 10.1111/j.1365-2958.2012.07970.x. Epub 2012 Jan 18.

Abstract

Serine-rich repeat glycoproteins (SRRPs) are important bacterial adhesins that are conserved in streptococci and staphylococci. Fimbriae-associated protein (Fap1) from Streptococcus parasanguinis, was the first SRRP identified; it plays an important role in bacterial biofilm formation. A gene cluster encoding glycosyltransferases and accessory secretion components is required for Fap1 biogenesis. Two glycosylation-associated proteins, Gap1 and Gap3 within the cluster, interact with each other and function in concert in Fap1 biogenesis. Here we report the new molecular events underlying contribution of the interaction to Fap1 biogenesis. The Gap1-deficient mutant rendered Gap3 unstable and degraded in vitro and in vivo. Inactivation of a gene encoding protease ClpP reversed the phenotype of the gap1 mutant, suggesting that ClpP is responsible for degradation of Gap3. Molecular chaperone GroEL was co-purified with Gap3 only when Gap1 was absent and also reacted with Gap1 monoclonal antibody, suggesting that Gap1 functions as a specific chaperone for Gap3. The N-terminal interacting domains of Gap1 mediated the Gap3 stability and Fap1 biogenesis. Gap1 homologues from Streptococcus agalactiae and Staphylococcus aureus also interacted with and stabilized corresponding Gap3 homologues, suggesting that the chaperone activity of the Gap1 homologues is common in biogenesis of SRRPs.

摘要

丝氨酸丰富重复糖蛋白 (SRRPs) 是一种重要的细菌黏附素,在链球菌和葡萄球菌中保守。副猪链球菌的菌毛相关蛋白 (Fap1) 是首个被鉴定的 SRRP;它在细菌生物膜形成中发挥重要作用。Fap1 生物发生需要编码糖基转移酶和辅助分泌成分的基因簇。簇内的两个糖基化相关蛋白 Gap1 和 Gap3 相互作用,并在 Fap1 生物发生中协同作用。在这里,我们报告了相互作用对 Fap1 生物发生的新分子事件。在体外和体内,Gap1 缺失突变体使 Gap3 不稳定并降解。编码蛋白酶 ClpP 的基因失活逆转了 gap1 突变体的表型,表明 ClpP 负责降解 Gap3。分子伴侣 GroEL 仅在没有 Gap1 时与 Gap3 共纯化,并且与 Gap1 单克隆抗体反应,表明 Gap1 作为 Gap3 的特异性伴侣发挥作用。Gap1 的 N 端相互作用结构域介导 Gap3 的稳定性和 Fap1 的生物发生。来自无乳链球菌和金黄色葡萄球菌的 Gap1 同源物也相互作用并稳定相应的 Gap3 同源物,表明 Gap1 同源物的伴侣活性在 SRRPs 的生物发生中是常见的。

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