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人类内体转运所需分选复合体-I(ESCRT-I)和ALIX作为支架螺旋丝发挥作用。

Human ESCRT-I and ALIX function as scaffolding helical filaments .

作者信息

Spada Stephanie J, Rose Kevin M, Sette Paola, O'Connor Sarah K, Dussupt Vincent, Siddartha Yerramilli V, Nagashima Kunio, Sjoelund Virginie Helle, Cruz Phillip, Kabat Juraj, Ganesan Sundar, Smelkinson Margery, Nita-Lazar Aleksandra, Hoyt Forrest, Scarlata Suzanne, Hirsch Vanessa, Best Sonja M, Grigg Michael E, Bouamr Fadila

出版信息

bioRxiv. 2024 May 2:2024.05.01.592080. doi: 10.1101/2024.05.01.592080.

Abstract

UNLABELLED

The Endosomal Sorting Complex Required for Transport (ESCRT) is an evolutionarily conserved machinery that performs reverse-topology membrane scission in cells universally required from cytokinesis to budding of enveloped viruses. Upstream acting ESCRT-I and ALIX control these events and link recruitment of viral and cellular partners to late-acting ESCRT-III CHMP4 through incompletely understood mechanisms. Using structure-function analyses combined with super-resolution imaging, we show that ESCRT-I and ALIX function as distinct helical filaments . Together, they are essential for optimal structural scaffolding of HIV-1 nascent virions, the retention of viral and human genomes through defined functional interfaces, and recruitment of CHMP4 that itself assembles into corkscrew-like filaments intertwined with ESCRT-I or ALIX helices. Disruption of filament assembly or their conformationally clustered RNA binding interfaces in human cells impaired membrane abscission, resulted in major structural instability and leaked nucleic acid from nascent virions and nuclear envelopes. Thus, ESCRT-I and ALIX function as helical filaments and serve as both nucleic acid-dependent structural scaffolds as well as ESCRT-III assembly templates.

SIGNIFICANCE STATEMENT

When cellular membranes are dissolved or breached, ESCRT is rapidly deployed to repair membranes to restore the integrity of intracellular compartments. Membrane sealing is ensured by ESCRT-III filaments assembled on the inner face of membrane; a mechanism termed inverse topology membrane scission. This mechanism, initiated by ESCRT-I and ALIX, is universally necessary for cytokinesis, wound repair, budding of enveloped viruses, and more. We show ESCRT-I and ALIX individually oligomerize into helical filaments that cluster newly discovered nucleic acid-binding interfaces and scaffold-in genomes within nascent virions and nuclear envelopes. These oligomers additionally appear to serve as ideal templates for ESCRT-III polymerization, as helical filaments of CHMP4B were found intertwined ESCRT-I or ALIX filaments . Similarly, corkscrew-like filaments of ALIX are also interwoven with ESCRT-I, supporting a model of inverse topology membrane scission that is synergistically reinforced by inward double filament scaffolding.

摘要

未标记

转运所需的内体分选复合体(ESCRT)是一种进化上保守的机制,在从胞质分裂到包膜病毒出芽等普遍需要的细胞过程中执行反向拓扑膜切割。上游作用的ESCRT-I和ALIX控制这些事件,并通过尚未完全理解的机制将病毒和细胞伙伴的招募与后期作用的ESCRT-III CHMP4联系起来。通过结合结构功能分析和超分辨率成像,我们表明ESCRT-I和ALIX作为不同的螺旋丝发挥作用。它们共同对于HIV-1新生病毒体的最佳结构支架构建、通过特定功能界面保留病毒和人类基因组以及招募自身组装成与ESCRT-I或ALIX螺旋相互缠绕的螺旋状细丝的CHMP4至关重要。破坏人类细胞中的细丝组装或其构象聚集的RNA结合界面会损害膜脱离,导致主要结构不稳定并使新生病毒体和核膜中的核酸泄漏。因此,ESCRT-I和ALIX作为螺旋丝发挥作用,既是核酸依赖性结构支架,也是ESCRT-III组装模板。

意义声明

当细胞膜溶解或破裂时,ESCRT会迅速被部署来修复膜以恢复细胞内区室的完整性。膜密封由组装在膜内表面的ESCRT-III细丝确保;这一机制称为反向拓扑膜切割。由ESCRT-I和ALIX启动的这一机制对于胞质分裂、伤口修复、包膜病毒出芽等普遍必要。我们表明ESCRT-I和ALIX分别寡聚成螺旋丝,这些螺旋丝聚集新发现的核酸结合界面,并在新生病毒体和核膜内的基因组中作为支架。这些寡聚物似乎还作为ESCRT-III聚合的理想模板,因为发现CHMP4B的螺旋丝与ESCRT-I或ALIX细丝相互缠绕。同样,ALIX的螺旋状细丝也与ESCRT-I交织,支持一种反向拓扑膜切割模型,该模型通过向内双细丝支架得到协同加强。

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