Department of Biochemistry, School of Medical Sciences, University Walk, University of Bristol, Bristol BS8 1TD, UK.
Trends Biochem Sci. 2011 Apr;36(4):199-210. doi: 10.1016/j.tibs.2010.09.004. Epub 2010 Oct 26.
Endosomal sorting complexes required for transport (ESCRT) have been implicated in topologically similar but diverse cellular and pathological processes including multivesicular body (MVB) biogenesis, cytokinesis and enveloped virus budding. Although receptor sorting at the endosomal membrane producing MVBs employs the regulated assembly of ESCRT-0 followed by ESCRT-I, -II, -III and the vacuolar protein sorting (VPS)4 complex, other ESCRT-catalyzed processes require only a subset of complexes which commonly includes ESCRT-III and VPS4. Recent progress has shed light on the pathway of ESCRT assembly and highlights the separation of tasks of different ESCRT complexes and associated partners. The emerging picture suggests that among all ESCRT-catalyzed processes, divergent pathways lead to ESCRT-III assembly within the neck of a budding structure catalyzing membrane fission.
内体分选复合物(ESCRT)在拓扑结构相似但多样化的细胞和病理过程中发挥作用,包括多泡体(MVB)的生物发生、胞质分裂和包膜病毒出芽。尽管在产生 MVB 的内体膜上,受体分选需要 ESCRT-0 的调节组装,然后是 ESCRT-I、-II、-III 和液泡蛋白分选(VPS)4 复合物,但其他 ESCRT 催化的过程只需要一组复合物,其中通常包括 ESCRT-III 和 VPS4。最近的研究进展揭示了 ESCRT 组装的途径,并强调了不同 ESCRT 复合物和相关伙伴的任务分离。新兴的图景表明,在所有 ESCRT 催化的过程中,不同的途径导致 ESCRT-III 在出芽结构的颈部组装,从而催化膜分裂。