志贺氏杆菌在上皮细胞入侵过程中产生不同的 IAM 亚群,以促进细胞内生态位的有效形成

IF 4.5 3区 生物学 Q2 CELL BIOLOGY
Lisa Sanchez , Arthur Lensen , Michael G. Connor , Mélanie Hamon , Jost Enninga , Camila Valenzuela
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引用次数: 0

摘要

变应性细胞内病原体志贺氏菌(Shigella flexneri)侵入非吞噬性肠道上皮细胞。它通过一种被称为 3 型分泌系统的注射器状装置,将效应蛋白注入宿主细胞,引发肌动蛋白重排,导致宿主细胞在一个被称为含细菌空泡(BCV)的紧密空泡中吸收效应蛋白。与此同时,志贺氏菌诱导在进入部位周围形成大囊泡,我们称之为感染相关大泡体(IAMs)。志贺氏菌进入宿主体内后,会使BCV破裂,并通过分解BCV残余物逃逸到宿主细胞质中。以前的研究表明,IAM 的形成是 BCV 有效逃逸所必需的,但与 BCV 分解相关的分子事件仍不清楚。为了确定BCV分解所需的宿主成分,我们进行了一项基于显微镜的筛选,以监测含BAR结构域的蛋白的招募,这些蛋白是志贺氏杆菌上皮细胞入侵过程中参与膜塑形和传感(如内吞和再循环)的宿主蛋白家族。我们发现内吞循环 BAR 蛋白 Sorting Nexin-8 (SNX8) 在 BCV 分解前以 PI(3)P 依赖性方式定位于 IAM。在 BCV 周围发现了至少两种不同的 IAM 亚群,它们要么被回收回细胞区室(如质膜),要么转变为 RAB11A 阳性的 "接触 IAM",参与促进 BCV 破裂。IAM亚群的双重性表现为SNX8或RAB11A的独家招募。阻碍 IAMs 产生 PI(3)P 会抑制 SNX8 在这些区室的招募,并延迟 BCV 破裂时间和 BCV 成功解体的时间。最后,SNX8的siRNA耗竭加速了BCV的破裂和BCV残余物的剥离,这表明SNX8参与控制了胞浆释放的时间。总之,我们的工作揭示了志贺氏杆菌如何通过颠覆一组特定的IAMs来建立其细胞内生态位。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Shigella generates distinct IAM subpopulations during epithelial cell invasion to promote efficient intracellular niche formation

The facultative intracellular pathogen Shigella flexneri invades non-phagocytic epithelial gut cells. Through a syringe-like apparatus called type 3 secretion system, it injects effector proteins into the host cell triggering actin rearrangements leading to its uptake within a tight vacuole, termed the bacterial-containing vacuole (BCV). Simultaneously, Shigella induces the formation of large vesicles around the entry site, which we refer to as infection-associated macropinosomes (IAMs). After entry, Shigella ruptures the BCV and escapes into the host cytosol by disassembling the BCV remnants. Previously, IAM formation has been shown to be required for efficient BCV escape, but the molecular events associated with BCV disassembly have remained unclear. To identify host components required for BCV disassembly, we performed a microscopy-based screen to monitor the recruitment of BAR domain-containing proteins, which are a family of host proteins involved in membrane shaping and sensing (e.g. endocytosis and recycling) during Shigella epithelial cell invasion. We identified endosomal recycling BAR protein Sorting Nexin-8 (SNX8) localized to IAMs in a PI(3)P-dependent manner before BCV disassembly. At least two distinct IAM subpopulations around the BCV were found, either being recycled back to cellular compartments such as the plasma membrane or transitioning to become RAB11A positive “contact-IAMs” involved in promoting BCV rupture. The IAM subpopulation duality was marked by the exclusive recruitment of either SNX8 or RAB11A. Hindering PI(3)P production at the IAMs led to an inhibition of SNX8 recruitment at these compartments and delayed both, the step of BCV rupture time and successful BCV disassembly. Finally, siRNA depletion of SNX8 accelerated BCV rupture and unpeeling of BCV remnants, indicating that SNX8 is involved in controlling the timing of the cytosolic release. Overall, our work sheds light on how Shigella establishes its intracellular niche through the subversion of a specific set of IAMs.

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来源期刊
European journal of cell biology
European journal of cell biology 生物-细胞生物学
CiteScore
7.30
自引率
1.50%
发文量
80
审稿时长
38 days
期刊介绍: The European Journal of Cell Biology, a journal of experimental cell investigation, publishes reviews, original articles and short communications on the structure, function and macromolecular organization of cells and cell components. Contributions focusing on cellular dynamics, motility and differentiation, particularly if related to cellular biochemistry, molecular biology, immunology, neurobiology, and developmental biology are encouraged. Manuscripts describing significant technical advances are also welcome. In addition, papers dealing with biomedical issues of general interest to cell biologists will be published. Contributions addressing cell biological problems in prokaryotes and plants are also welcome.
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