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通过分隔到不同的内体域来激活 Notch 的替代机制。

Alternative mechanisms of Notch activation by partitioning into distinct endosomal domains.

机构信息

School of Biological Sciences, Manchester Academic Health Science Centre, University of Manchester, Manchester, UK.

出版信息

J Cell Biol. 2024 May 6;223(5). doi: 10.1083/jcb.202211041. Epub 2024 Feb 15.

Abstract

Different membrane microdomain compositions provide unique environments that can regulate signaling receptor function. We identify microdomains on the endosome membrane of Drosophila endosomes, enriched in lipid-raft or clathrin/ESCRT-0, which are associated with Notch activation by distinct, ligand-independent mechanisms. Transfer of Notch between microdomains is regulated by Deltex and Suppressor of deltex ubiquitin ligases and is limited by a gate-keeper role for ESCRT complexes. Ubiquitination of Notch by Deltex recruits it to the clathrin/ESCRT-0 microdomain and enhances Notch activation by an ADAM10-independent/TRPML-dependent mechanism. This requirement for Deltex is bypassed by the downregulation of ESCRT-III. In contrast, while ESCRT-I depletion also activates Notch, it does so by an ADAM10-dependent/TRPML-independent mechanism and Notch is retained in the lipid raft-like microdomain. In the absence of such endosomal perturbation, different activating Notch mutations also localize to different microdomains and are activated by different mechanisms. Our findings demonstrate the interplay between Notch regulators, endosomal trafficking components, and Notch genetics, which defines membrane locations and activation mechanisms.

摘要

不同的膜微区组成提供了独特的环境,可以调节信号受体的功能。我们鉴定了果蝇内体膜上富含脂筏或网格蛋白/ESCRT-0 的微区,这些微区与 Notch 通过不同的、配体非依赖的机制激活有关。Notch 在微区之间的转移受 Deltex 和 Suppressor of deltex 泛素连接酶的调控,并受 ESCRT 复合物的“守门员”角色限制。Deltex 通过泛素化 Notch 将其募集到网格蛋白/ESCRT-0 微区,并通过一种 ADAM10 非依赖/TRPML 依赖的机制增强 Notch 的激活。ESCRT-III 的下调可以绕过对 Deltex 的这种需求。相比之下,虽然 ESCRT-I 耗尽也能激活 Notch,但它通过一种 ADAM10 依赖/TRPML 非依赖的机制起作用,并且 Notch 保留在类脂筏样微区中。在没有这种内体扰动的情况下,不同的激活 Notch 突变也定位于不同的微区,并通过不同的机制被激活。我们的研究结果表明,Notch 调节剂、内体运输成分和 Notch 遗传学之间存在相互作用,这些作用决定了膜的位置和激活机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5359/10868400/8f23f3dcdabc/JCB_202211041_Fig1.jpg

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