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将ESCRT-III蛋白飞升至飞升量级注射到附着的巨型单层囊泡中。

Femtoliter Injection of ESCRT-III Proteins into Adhered Giant Unilamellar Vesicles.

作者信息

Georgiev Vasil N, Avalos-Padilla Yunuen, Fernàndez-Busquets Xavier, Dimova Rumiana

机构信息

Max Planck Institute of Colloids and Interfaces, 14476 Potsdam, Germany.

Institute for Bioengineering of Catalonia (IBEC), The Barcelona Institute of Science and Technology (BIST), Baldiri Reixac 10-12, ES-08028 Barcelona, Spain.

出版信息

Bio Protoc. 2022 Feb 20;12(4):e4328. doi: 10.21769/BioProtoc.4328.

Abstract

The endosomal sorting complex required for transport (ESCRT) machinery mediates membrane fission reactions that exhibit a different topology from that observed in clathrin-coated vesicles. In all of the ESCRT-mediated events, the nascent vesicle buds away from the cytosol. However, ESCRT proteins are able to act upon membranes with different geometries. For instance, the formation of multivesicular bodies (MVBs) and the biogenesis of extracellular vesicles both require the participation of the ESCRT-III sub-complex, and they differ in their initial membrane geometry before budding starts: the protein complex acts either from outside the membrane organelle (causing inward budding) or from within (causing outward budding). Several studies have reconstituted the action of the ESCRT-III subunits in supported bilayers and cell-sized vesicles mimicking the geometry occurring during MVBs formation (in-bud), but extracellular vesicle budding (out-bud) mechanisms remain less explored, because of the outstanding difficulties encountered in encapsulation of functional ESCRT-III in vesicles. Here, we provide a different approach that allows the recreation of the out-bud formation, by combining giant unilamellar vesicles as a membrane model and a microinjection system. The vesicles are immobilized prior to injection via weak adhesion to the chamber coverslip, which also ensures preserving the membrane excess area required for budding. After protein injection, vesicles exhibit outward budding. The approach presented in this work can be used in the future to disentangle the mechanisms underlying ESCRT-III-mediated fission, recreating the geometry of extracellular bud production, which remains a challenge. Moreover, the microinjection methodology can be also adapted to interrogate the action of other cytosolic components on the encapsulating membranous organelle. Graphic abstract: Out-bud formation after ESCRT-III protein injection into GUVs.

摘要

转运所需的内体分选复合物(ESCRT)机制介导的膜裂变反应,其拓扑结构与网格蛋白包被小泡中的不同。在所有ESCRT介导的事件中,新生小泡从胞质溶胶中芽出。然而,ESCRT蛋白能够作用于具有不同几何形状的膜。例如,多泡体(MVB)的形成和细胞外小泡的生物发生都需要ESCRT-III亚复合物的参与,并且它们在芽出开始前的初始膜几何形状不同:蛋白质复合物要么从膜细胞器外部起作用(导致向内芽出),要么从内部起作用(导致向外芽出)。几项研究已经在支持双层膜和模拟MVB形成过程中出现的几何形状(向内芽出)的细胞大小的小泡中重构了ESCRT-III亚基的作用,但由于在小泡中封装功能性ESCRT-III时遇到的巨大困难,细胞外小泡芽出(向外芽出)机制仍较少被探索。在这里,我们提供了一种不同的方法,通过结合巨型单层囊泡作为膜模型和显微注射系统,实现向外芽出的重建。在注射前,囊泡通过与腔室盖玻片的弱粘附而固定,这也确保了保留芽出所需的膜多余面积。蛋白质注射后,囊泡呈现向外芽出。这项工作中提出的方法未来可用于解析ESCRT-III介导的裂变的潜在机制,重现细胞外芽产生的几何形状,这仍然是一个挑战。此外,显微注射方法也可用于研究其他胞质成分对包封膜细胞器的作用。图形摘要:将ESCRT-III蛋白注射到巨型单层囊泡后向外芽出的形成。

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