Department of Biomolecular Chemistry, University of Wisconsin-Madison School of Medicine and Public Health, 440 Henry Mall, Madison, WI, 53706, USA.
The Scripps Research Institute, 10550 North Torrey Pines Rd., Department of Chemical Physiology, La Jolla, CA, 92037, USA.
Nat Commun. 2017 Nov 13;8(1):1439. doi: 10.1038/s41467-017-01636-8.
Degradation of most integral membrane proteins is directed by the endosomal sorting complex required for transport (ESCRT) machinery, which selectively targets ubiquitin-modified cargoes into intralumenal vesicles (ILVs) within multivesicular endosomes (MVEs). To better understand the mechanisms underlying ESCRT-mediated formation of ILVs, we exploited the rapid, de novo biogenesis of MVEs during the oocyte-to-embryo transition in C. elegans. In contrast to previous models suggesting that ILVs form individually, we demonstrate that they remain tethered to one another subsequent to internalization, arguing that they bud continuously from stable subdomains. In addition, we show that membrane bending and ILV formation are directed specifically by the ESCRT-III complex in vivo in a manner regulated by Ist1, which promotes ESCRT-III assembly and inhibits the incorporation of upstream ESCRT components into ILVs. Our findings underscore essential actions for ESCRT-III in membrane remodeling, cargo selection, and cargo retention, which act repetitively to maximize the rate of ILV formation.
大多数完整膜蛋白的降解是由内体分选复合物必需的运输(ESCRT)机制指导的,该机制将泛素修饰的货物选择性地靶向到多泡体(MVEs)内的腔内小泡(ILVs)中。为了更好地理解 ESCRT 介导的 ILV 形成的机制,我们利用了 C. elegans 卵母细胞到胚胎过渡期间 MVE 的快速、从头生物发生。与先前的模型表明 ILVs 单独形成的观点相反,我们证明它们在内化后仍然彼此连接,这表明它们连续从稳定的亚域中出芽。此外,我们还表明,膜弯曲和 ILV 形成在体内是由 ESCRT-III 复合物特异性指导的,这种方式受到 Ist1 的调节,Ist1 促进 ESCRT-III 组装并抑制上游 ESCRT 成分掺入 ILVs。我们的发现强调了 ESCRT-III 在膜重塑、货物选择和货物保留中的基本作用,这些作用重复作用以最大限度地提高 ILV 形成的速度。