Auto-Assembling Detoxified Staphylococcus aureus Alpha-Hemolysin Mimicking the Wild-Type Cytolytic Toxin

Luigi Fiaschi, Benedetta Di Palo, M. Scarselli, C. Pozzi, Kelly Tomaszewski, Bruno Galletti, V. Nardi‐Dei, L. Arcidiacono, Ravi P. N. Mishra, Elena Mori, M. Pallaoro, F. Falugi, Antonina Torre, M. Fontana, M. Soriani, J. Bubeck Wardenburg, G. Grandi, R. Rappuoli, I. Ferlenghi, F. Bagnoli
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引用次数: 11

Abstract

ABSTRACT Staphylococcus aureus alpha-hemolysin (Hla) assembles into heptameric pores on the host cell membrane, causing lysis, apoptosis, and junction disruption. Herein, we present the design of a newly engineered S. aureus alpha-toxin, HlaPSGS, which lacks the predicted membrane-spanning stem domain. This protein is able to form heptamers in aqueous solution in the absence of lipophilic substrata, and its structure, obtained by transmission electron microscopy and single-particle reconstruction analysis, resembles the cap of the wild-type cytolytic Hla pore. HlaPSGS was found to be impaired in binding to host cells and to its receptor ADAM10 and to lack hemolytic and cytotoxic activity. Immunological studies using human sera as well as sera from mice convalescent from S. aureus infection suggested that the heptameric conformation of HlaPSGS mimics epitopes exposed by the cytolytic Hla pore during infection. Finally, immunization with this newly engineered Hla generated high protective immunity against staphylococcal infection in mice. Overall, this study provides unprecedented data on the natural immune response against Hla and suggests that the heptameric HlaPSGS is a highly valuable vaccine candidate against S. aureus.
模拟野生型细胞溶解毒素的自动组装解毒金黄色葡萄球菌α溶血素
金黄色葡萄球菌α -溶血素(Hla)在宿主细胞膜上组装成七聚体孔,导致裂解、凋亡和连接破坏。在此,我们设计了一种新的工程金黄色葡萄球菌α毒素,HlaPSGS,它缺乏预测的跨膜茎结构域。该蛋白能够在没有亲脂底物的水溶液中形成七聚体,其结构通过透射电子显微镜和单颗粒重建分析获得,类似于野生型细胞溶解Hla孔的帽。发现HlaPSGS与宿主细胞及其受体ADAM10的结合受损,缺乏溶血和细胞毒活性。利用人血清和金黄色葡萄球菌感染恢复期小鼠血清进行的免疫学研究表明,HlaPSGS的七聚体构象模拟了感染期间细胞溶解性Hla孔暴露的表位。最后,用这种新设计的Hla免疫可以在小鼠体内产生高保护性的抗葡萄球菌感染免疫。总的来说,这项研究提供了前所未有的自然免疫应答Hla的数据,并表明七聚体Hla - sgs是一种非常有价值的金黄色葡萄球菌候选疫苗。
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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