Tomkiewicz Danuta, Nouwen Nico, Driessen Arnold J M
Department of Microbiology, Groningen Biomolecular Sciences and Biotechnology Institute, University of Groningen, Kerklaan 30, 9751 NN Haren, The Netherlands.
J Mol Biol. 2008 Mar 14;377(1):83-90. doi: 10.1016/j.jmb.2008.01.014. Epub 2008 Jan 15.
Protein translocation in Escherichia coli is mediated by the translocase that, in its minimal form, comprises a protein-conducting pore (SecYEG) and a motor protein (SecA). The SecYEG complex forms a narrow channel in the membrane that allows passage of secretory proteins (preproteins) in an unfolded state only. It has been suggested that the SecA requirement for translocation depends on the folding stability of the mature preprotein domain. Here we studied the effects of the signal sequence and SecB on the folding and translocation of folding stabilizing and destabilizing mutants of the mature maltose binding protein (MBP). Although the mutations affect the folding of the precursor form of MBP, these are drastically overruled by the combined unfolding stabilization of the signal sequence and SecB. Consequently, the translocation kinetics, the energetics and the SecA and SecB dependence of the folding mutants are indistinguishable from those of wild-type preMBP. These data indicate that unfolding of the mature domain of preMBP is likely not a rate-determining step in translocation when the protein is targeted to the translocase via SecB.
大肠杆菌中的蛋白质转运由转位酶介导,其最简形式包括一个蛋白质传导孔道(SecYEG)和一个动力蛋白(SecA)。SecYEG复合物在膜中形成一个狭窄通道,仅允许分泌蛋白(前体蛋白)以未折叠状态通过。有人提出,转运对SecA的需求取决于成熟前体蛋白结构域的折叠稳定性。在此,我们研究了信号序列和SecB对成熟麦芽糖结合蛋白(MBP)折叠稳定和不稳定突变体的折叠及转运的影响。尽管这些突变影响了MBP前体形式的折叠,但信号序列和SecB的联合去折叠稳定作用极大地克服了这些影响。因此,折叠突变体的转运动力学、能量学以及对SecA和SecB的依赖性与野生型前体MBP无法区分。这些数据表明,当蛋白质通过SecB靶向转位酶时,前体MBP成熟结构域的去折叠可能不是转运中的限速步骤。