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菌毛血凝素和腺苷酸环化酶毒素在细菌表面的相互作用与 FhaB 介导的 ACT 递送至吞噬细胞一致。

filamentous hemagglutinin and adenylate cyclase toxin interactions on the bacterial surface are consistent with FhaB-mediated delivery of ACT to phagocytic cells.

机构信息

Department of Microbiology and Immunology, School of Medicine, University of North Carolina-Chapel Hill, Chapel Hill, North Carolina, USA.

Department of Molecular, Cellular and Developmental Biology, University of California, Santa Barbara, Santa Barbara, California, USA.

出版信息

mBio. 2024 May 8;15(5):e0063224. doi: 10.1128/mbio.00632-24. Epub 2024 Mar 27.

Abstract

species that cause respiratory infections in mammals include , which causes human whooping cough, and , which infects nearly all mammals. Both bacterial species produce filamentous hemagglutinin (FhaB) and adenylate cyclase toxin (ACT), prominent surface-associated and secreted virulence factors that contribute to persistence in the lower respiratory tract by inhibiting clearance by phagocytic cells. FhaB and ACT proteins interact with themselves, each other, and host cells. Using immunoblot analyses, we showed that ACT binds to FhaB on the bacterial surface before it can be detected in culture supernatants. We determined that SphB1, a surface protease identified based on its requirement for FhaB cleavage, is also required for ACT cleavage, and we determined that the presence of ACT blocks SphB1-dependent and -independent cleavage of FhaB, but the presence of FhaB does not affect SphB1-dependent cleavage of ACT. The primary SphB1-dependent cleavage site on ACT is proximal to ACT's active site, in a region that is critical for ACT activity. We also determined that FhaB-bound ACT on the bacterial surface can intoxicate host cells producing CR3, the receptor for ACT. In addition to increasing our understanding of FhaB, ACT, and FhaB-ACT interactions on the surface, our data are consistent with a model in which FhaB functions as a novel toxin delivery system by binding to ACT and allowing its release upon binding of ACT to its receptor, CR3, on phagocytic cells.IMPORTANCEBacteria need to control the variety, abundance, and conformation of proteins on their surface to survive. Members of the Gram-negative bacterial genus include , which causes whooping cough in humans, and , which causes respiratory infections in a broad range of mammals. These species produce two prominent virulence factors, the two-partner secretion (TPS) effector FhaB and adenylate cyclase toxin (ACT), that interact with themselves, each other, and host cells. Here, we determined that ACT binds FhaB on the bacterial surface before being detected in culture supernatants and that ACT bound to FhaB can be delivered to eukaryotic cells. Our data are consistent with a model in which FhaB delivers ACT specifically to phagocytic cells. This is the first report of a TPS system facilitating the delivery of a separate polypeptide toxin to target cells and expands our understanding of how TPS systems contribute to bacterial pathogenesis.

摘要

引起哺乳动物呼吸道感染的物种包括,它导致人类百日咳,和,它感染了几乎所有的哺乳动物。这两种细菌都产生丝状血凝素(FhaB)和腺苷酸环化酶毒素(ACT),这两种突出的表面相关和分泌的毒力因子通过抑制吞噬细胞的清除作用,有助于在下呼吸道持续存在。FhaB 和 ACT 蛋白相互作用,相互作用,与宿主细胞相互作用。使用免疫印迹分析,我们表明,在培养上清液中检测到之前,ACT 就与细菌表面的 FhaB 结合。我们确定基于其对 FhaB 切割的要求而被鉴定为表面蛋白酶的 SphB1 也需要切割 ACT,并且我们确定 ACT 的存在阻断了 SphB1 依赖性和非依赖性的 FhaB 切割,但 FhaB 的存在并不影响 SphB1 依赖性的 ACT 切割。ACT 上的主要 SphB1 依赖性切割位点靠近 ACT 的活性位点,在该区域 ACT 的活性至关重要。我们还确定细菌表面上与 FhaB 结合的 ACT 可以使产生 ACT 受体 CR3 的宿主细胞中毒。除了增加我们对表面上的 FhaB、ACT 和 FhaB-ACT 相互作用的理解外,我们的数据与以下模型一致,即 FhaB 通过与 ACT 结合并在 ACT 与其在吞噬细胞上的受体 CR3 结合时允许其释放来充当新型毒素传递系统。

重要性:
细菌需要控制其表面上蛋白质的种类、丰度和构象才能存活。革兰氏阴性菌属的成员包括,它导致人类百日咳,和,它导致广泛的哺乳动物呼吸道感染。这些物种产生两种突出的毒力因子,即两部分分泌(TPS)效应物 FhaB 和腺苷酸环化酶毒素(ACT),它们相互作用,相互作用,与宿主细胞相互作用。在这里,我们确定在培养上清液中检测到之前,ACT 就与细菌表面上的 FhaB 结合,并且与 FhaB 结合的 ACT 可以递送到真核细胞。我们的数据与以下模型一致,即 FhaB 将 ACT 特异性递送至吞噬细胞。这是第一个报道 TPS 系统有助于将单独的多肽毒素递送至靶细胞的报告,并扩展了我们对 TPS 系统如何有助于细菌发病机制的理解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0193/11077949/d797ee61a4d3/mbio.00632-24.f001.jpg

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