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通过高尔基体复合体的转运机制。

Mechanisms of transport through the Golgi complex.

作者信息

Jackson Catherine L

机构信息

Laboratoire d'Enzymologie et Biochimie Structurales, CNRS, 91198 Gif-sur-Yvette, France.

出版信息

J Cell Sci. 2009 Feb 15;122(Pt 4):443-52. doi: 10.1242/jcs.032581.

Abstract

The Golgi complex is the central sorting and processing station of the secretory pathway, ensuring that cargo proteins, which are synthesized in the endoplasmic reticulum, are properly glycosylated and packaged into carriers for transport to their final destinations. Two recent studies highlight the fact that properties of membrane lipids play key roles in Golgi structural organization and trafficking. The Antonny laboratory has demonstrated the mechanism by which a Golgi tether containing a membrane-curvature-sensing domain at one end can link highly curved and flat membranes together in a reversible manner. In this way, a strong interaction that binds membranes together in an oriented fashion can easily be disrupted as the properties of the membranes change. The Lippincott-Schwartz laboratory has developed a new model for intra-Golgi trafficking, called the rapid-partitioning model, which incorporates lipid trafficking as an integral part. Simulations reveal that the sorting of lipids into processing and export domains that are connected to each Golgi cisterna, and bidirectional trafficking throughout the Golgi to allow proteins to associate with their preferred lipid environment, is sufficient to drive protein transport through the secretory pathway. Although only a proof in principle, this model for the first time invokes lipid sorting as the driving force in intra-Golgi trafficking, and provides a framework for future experimental work.

摘要

高尔基体复合体是分泌途径的核心分选和加工站,确保在内质网中合成的货物蛋白被正确糖基化,并包装到载体中运输到它们的最终目的地。最近的两项研究突出了膜脂特性在高尔基体结构组织和运输中起关键作用这一事实。安东尼实验室已经证明了一种机制,即一端含有膜曲率传感结构域的高尔基体拴系蛋白可以以可逆的方式将高度弯曲的膜和平坦的膜连接在一起。通过这种方式,随着膜特性的变化,以定向方式将膜结合在一起的强相互作用很容易被破坏。利平科特-施瓦茨实验室已经开发出一种新的高尔基体内部运输模型,称为快速分配模型,该模型将脂质运输作为一个不可或缺的部分。模拟结果表明,将脂质分选到与每个高尔基体潴泡相连的加工和输出结构域,以及在整个高尔基体中的双向运输,以使蛋白质能够与它们偏好的脂质环境结合,足以驱动蛋白质通过分泌途径运输。尽管只是原则上的证明,但这个模型首次将脂质分选作为高尔基体内部运输的驱动力,并为未来的实验工作提供了一个框架。

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