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纳米盘揭示了SecYEG通道与其胞质伴侣SecA之间的相互作用。

Nanodiscs unravel the interaction between the SecYEG channel and its cytosolic partner SecA.

作者信息

Alami Meriem, Dalal Kush, Lelj-Garolla Barbara, Sligar Stephen G, Duong Franck

机构信息

Department of Biochemistry and Molecular Biology, Life Sciences Institute, Faculty of Medicine, University of British Columbia, British Columbia, Canada.

出版信息

EMBO J. 2007 Apr 18;26(8):1995-2004. doi: 10.1038/sj.emboj.7601661. Epub 2007 Mar 29.

Abstract

The translocon is a membrane-embedded protein assembly that catalyzes protein movement across membranes. The core translocon, the SecYEG complex, forms oligomers, but the protein-conducting channel is at the center of the monomer. Defining the properties of the SecYEG protomer is thus crucial to understand the underlying function of oligomerization. We report here the reconstitution of a single SecYEG complex into nano-scale lipid bilayers, termed Nanodiscs. These water-soluble particles allow one to probe the interactions of the SecYEG complex with its cytosolic partner, the SecA dimer, in a membrane-like environment. The results show that the SecYEG complex triggers dissociation of the SecA dimer, associates only with the SecA monomer and suffices to (pre)-activate the SecA ATPase. Acidic lipids surrounding the SecYEG complex also contribute to the binding affinity and activation of SecA, whereas mutations in the largest cytosolic loop of the SecY subunit, known to abolish the translocation reaction, disrupt both the binding and activation of SecA. Altogether, the results define the fundamental contribution of the SecYEG protomer in the translocation subreactions and illustrate the power of nanoscale lipid bilayers in analyzing the dynamics occurring at the membrane.

摘要

转运体是一种嵌入膜中的蛋白质组装体,可催化蛋白质跨膜移动。核心转运体,即SecYEG复合物,会形成寡聚体,但蛋白质传导通道位于单体的中心。因此,定义SecYEG原体的特性对于理解寡聚化的潜在功能至关重要。我们在此报告了将单个SecYEG复合物重构到纳米级脂质双层(称为纳米盘)中的情况。这些水溶性颗粒使人们能够在类似膜的环境中探究SecYEG复合物与其胞质伴侣SecA二聚体之间的相互作用。结果表明,SecYEG复合物会触发SecA二聚体的解离,仅与SecA单体结合,并且足以(预)激活SecA ATP酶。SecYEG复合物周围的酸性脂质也有助于SecA的结合亲和力和激活,而SecY亚基最大的胞质环中的突变(已知会消除转运反应)会破坏SecA的结合和激活。总之,这些结果确定了SecYEG原体在转运子反应中的基本作用,并说明了纳米级脂质双层在分析膜上发生的动力学方面的作用。

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