Medhekar Bob, Shrivastava Ruchi, Mattoo Seema, Gingery Mari, Miller Jeff F
Department of Microbiology, Immunology and Molecular Genetics, David Geffen School of Medicine, University of California, Los Angeles, CA 90095, USA.
Mol Microbiol. 2009 Jan;71(2):492-504. doi: 10.1111/j.1365-2958.2008.06543.x. Epub 2008 Dec 5.
Type III secretion system (T3SS) tip complexes serve as adaptors that bridge the T3SS needle and the pore-forming translocation apparatus. In this report we demonstrate that Bsp22, the most abundantly secreted substrate of the Bordetella T3SS, self-polymerizes to form the Bordetella bronchiseptica tip complex. Bsp22 is required for both T3SS-mediated cytotoxicity against eukaryotic cells and haemoglobin release from erythrocytes. Bacterial two-hybrid analysis and protein pull-down assays demonstrated the ability of Bsp22 to associate with itself and to bind BopD, a component of the Bordetella translocation pore. Immunoblot and cross-linking analysis of secreted proteins or purified Bsp22 showed extensive multimerization which was shown by transmission electron microscopy to lead to the formation of variable length flexible filaments. Immunoelectron microscopy revealed Bsp22 filaments on the surface of bacterial cells. Given its required role in secretion and cell-surface exposure, we tested the protective effects of antibodies against Bsp22 in vitro and in vivo. Polyclonal antisera against Bsp22 fully protected epithelial cells from T3SS-dependent killing and immunization with Bsp22 protected mice against Bordetella infection. Of the approximately 30 genes which encode the Bordetella T3SS apparatus, bsp22 is the only one without characterized orthologues in other well-characterized T3SS loci. A maximum likelihood phylogenetic analysis indicated that Bsp22 defines a new subfamily of T3SS tip complex proteins. Given its immunogenic and immunoprotective properties and high degree of conservation among Bordetella species, Bsp22 and its homologues may prove useful for diagnostics and next-generation subunit vaccines.
III型分泌系统(T3SS)尖端复合物作为衔接T3SS针和形成孔道的转运装置的适配器。在本报告中,我们证明了博德特氏菌T3SS最丰富分泌的底物Bsp22会自我聚合形成支气管败血博德特氏菌的尖端复合物。Bsp22对于T3SS介导的针对真核细胞的细胞毒性以及红细胞血红蛋白释放均是必需的。细菌双杂交分析和蛋白质下拉实验证明了Bsp22自身缔合以及结合博德特氏菌转运孔组分BopD的能力。对分泌蛋白或纯化的Bsp22进行免疫印迹和交联分析显示出广泛的多聚化,透射电子显微镜显示这会导致形成可变长度的柔性细丝。免疫电子显微镜揭示了细菌细胞表面存在Bsp22细丝。鉴于其在分泌和细胞表面暴露中的必需作用,我们在体外和体内测试了抗Bsp22抗体的保护作用。抗Bsp22多克隆抗血清完全保护上皮细胞免受T3SS依赖性杀伤,用Bsp22免疫可保护小鼠免受博德特氏菌感染。在编码博德特氏菌T3SS装置的大约30个基因中,bsp22是唯一一个在其他特征明确的T3SS位点中没有特征明确的直系同源物的基因。最大似然系统发育分析表明,Bsp22定义了一个新的T3SS尖端复合蛋白亚家族。鉴于其免疫原性和免疫保护特性以及在博德特氏菌属物种中的高度保守性,Bsp22及其同源物可能对诊断和下一代亚单位疫苗有用。