Endosomal actin branching, fission, and receptor recycling require FCHSD2 recruitment by MICAL-L1.

IF 4.3 3区 材料科学 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
ACS Applied Electronic Materials Pub Date : 2024-11-01 Epub Date: 2024-10-09 DOI:10.1091/mbc.E24-07-0324
Devin Frisby, Ajay B Murakonda, Bazella Ashraf, Kanika Dhawan, Leonardo Almeida-Souza, Naava Naslavsky, Steve Caplan
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引用次数: 0

Abstract

Endosome fission is required for the release of carrier vesicles and the recycling of receptors to the plasma membrane. Early events in endosome budding and fission rely on actin branching to constrict the endosomal membrane, ultimately leading to nucleotide hydrolysis and enzymatic fission. However, our current understanding of this process is limited, particularly regarding the coordination between the early and late steps of endosomal fission. Here we have identified a novel interaction between the endosomal scaffolding protein, MICAL-L1, and the human homologue of the Drosophila Nervous Wreck (Nwk) protein, FCH and double SH3 domains protein 2 (FCHSD2). We demonstrate that MICAL-L1 recruits FCHSD2 to the endosomal membrane, where it is required for ARP2/3-mediated generation of branched actin, endosome fission and receptor recycling to the plasma membrane. Because MICAL-L1 first recruits FCHSD2 to the endosomal membrane, and is subsequently responsible for recruitment of the ATPase and fission protein EHD1 to endosomes, our findings support a model in which MICAL-L1 orchestrates endosomal fission by connecting between the early actin-driven and subsequent nucleotide hydrolysis steps of the process.

内体肌动蛋白分支、裂变和受体再循环需要 MICAL-L1 招募 FCHSD2。
内质体裂变是释放载体囊泡和将受体再循环到质膜所必需的。内质体萌发和裂变的早期事件依赖于肌动蛋白分支收缩内质体膜,最终导致核苷酸水解和酶促裂变。然而,我们目前对这一过程的了解还很有限,尤其是对内质体裂变的早期和晚期步骤之间的协调方面。在这里,我们发现了内体支架蛋白 MICAL-L1 与果蝇神经残骸(Nwk)蛋白的人类同源物 FCH 和双 SH3 结构域蛋白 2(FCHSD2)之间的新型相互作用。我们证明,MICAL-L1 将 FCHSD2 募集到内体膜,ARP2/3 介导的支链肌动蛋白的生成、内体裂变和受体再循环到质膜都需要 FCHSD2。由于 MICAL-L1 首先将 FCHSD2 募集到内体膜,随后负责将 ATP 酶和裂变蛋白 EHD1 募集到内体,我们的研究结果支持这样一种模式,即 MICAL-L1 通过连接早期肌动蛋白驱动的裂变过程和随后的核苷酸水解步骤来协调内体裂变。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
7.20
自引率
4.30%
发文量
567
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