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利用破坏性插入突变技术鉴定志贺氏菌易位子蛋白 IpaB 的原位结构-功能图谱。

Using disruptive insertional mutagenesis to identify the in situ structure-function landscape of the Shigella translocator protein IpaB.

机构信息

Higuchi Biosciences Center, University of Kansas, Lawrence, Kansas, 66047.

Department of Molecular Biosciences, University of Kansas, Lawrence, Kansas, 66045.

出版信息

Protein Sci. 2018 Aug;27(8):1392-1406. doi: 10.1002/pro.3428. Epub 2018 May 3.

Abstract

Bacterial type III secretion systems (T3SS) are used to inject proteins into mammalian cells to subvert cellular functions. The Shigella T3SS apparatus (T3SA) is comprised of a basal body, cytoplasmic sorting platform and exposed needle with needle "tip complex" (TC). TC maturation occurs when the translocator protein IpaB is recruited to the needle tip where both IpaD and IpaB control secretion induction. IpaB insertion into the host membrane is the first step of translocon pore formation and secretion induction. We employed disruptive insertional mutagenesis, using bacteriophage T4 lysozyme (T4L), within predicted IpaB loops to show how topological features affect TC functions (secretion control, translocon formation and effector secretion). Insertions within the N-terminal half of IpaB were most likely to result in a loss of steady-state secretion control, however, all but the two that were not recognized by the T3SA retained nearly wild-type hemolysis (translocon formation) and invasiveness levels (effector secretion). In contrast, all but one insertion in the C-terminal half of IpaB maintained secretion control but were impaired for hemolysis and invasion. These nature of the data suggest the latter mutants are defective in a post-secretion event, most likely due to impaired interactions with the second translocator protein IpaC. Intriguingly, only two insertion mutants displayed readily detectable T4L on the bacterial surface. The data create a picture in which the makeup and structure of a functional T3SA TC is highly amenable to physical perturbation, indicating that the tertiary structure of IpaB within the TC is more plastic than previously realized.

摘要

细菌 III 型分泌系统 (T3SS) 用于将蛋白质注入哺乳动物细胞,以颠覆细胞功能。志贺氏菌 T3SS 装置 (T3SA) 由基底体、细胞质分拣平台和暴露的针组成,带有针“尖端复合物” (TC)。当易位蛋白 IpaB 被招募到针尖时,TC 成熟,此时 IpaD 和 IpaB 控制分泌诱导。IpaB 插入宿主膜是形成转位孔和分泌诱导的第一步。我们使用噬菌体 T4 溶菌酶 (T4L) 在预测的 IpaB 环内进行破坏性插入诱变,以显示拓扑特征如何影响 TC 功能(分泌控制、转位孔形成和效应物分泌)。IpaB N 端一半内的插入最有可能导致稳态分泌控制丧失,然而,除了两个未被 T3SA 识别的插入外,所有插入都保留了几乎野生型的溶血(转位孔形成)和侵袭水平(效应物分泌)。相比之下,IpaB C 端一半内的所有插入都保持了分泌控制,但溶血和侵袭能力受损。这些数据的性质表明,后者突变体在后分泌事件中存在缺陷,很可能是由于与第二个易位蛋白 IpaC 的相互作用受损。有趣的是,只有两个插入突变体在细菌表面显示出可检测到的 T4L。这些数据描绘了一个画面,即功能齐全的 T3SA TC 的组成和结构非常容易受到物理干扰,这表明 TC 内 IpaB 的三级结构比以前想象的更具可塑性。

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