Tooke Fiona J, Babot Marion, Chandra Govind, Buchanan Grant, Palmer Tracy
Division of Molecular Microbiology, School of Life Sciences, University of Dundee, Dundee, United Kingdom.
Department of Molecular Microbiology, John Innes Centre, Norwich, United Kingdom.
Elife. 2017 May 17;6:e26577. doi: 10.7554/eLife.26577.
The majority of multi-spanning membrane proteins are co-translationally inserted into the bilayer by the Sec pathway. An important subset of membrane proteins have globular, cofactor-containing extracytoplasmic domains requiring the dual action of the co-translational Sec and post-translational Tat pathways for integration. Here, we identify further unexplored families of membrane proteins that are dual Sec-Tat-targeted. We establish that a predicted heme-molybdenum cofactor-containing protein, and a complex polyferredoxin, each require the concerted action of two translocases for their assembly. We determine that the mechanism of handover from Sec to Tat pathway requires the relatively low hydrophobicity of the Tat-dependent transmembrane domain. This, coupled with the presence of C-terminal positive charges, results in abortive insertion of this transmembrane domain by the Sec pathway and its subsequent release at the cytoplasmic side of the membrane. Together, our data points to a simple unifying mechanism governing the assembly of dual targeted membrane proteins.
大多数多跨膜蛋白通过Sec途径共翻译插入双层膜中。膜蛋白的一个重要子集具有含球状辅因子的胞外结构域,其整合需要共翻译Sec途径和翻译后Tat途径的双重作用。在这里,我们鉴定出了更多未被探索的双靶向Sec-Tat途径的膜蛋白家族。我们确定,一种预测含血红素-钼辅因子的蛋白和一种复杂的多铁氧还蛋白,它们的组装都需要两种转位酶的协同作用。我们确定从Sec途径切换到Tat途径的机制需要Tat依赖性跨膜结构域相对较低的疏水性。这与C端正电荷的存在相结合,导致该跨膜结构域被Sec途径错误插入,并随后在膜的细胞质侧释放。总之,我们的数据指向了一种控制双靶向膜蛋白组装的简单统一机制。