Jilaveanu Lucia B, Zito Christopher R, Oliver Donald
Department of Molecular Biology and Biochemistry, Wesleyan University, Middletown, CT 06459, USA.
Proc Natl Acad Sci U S A. 2005 May 24;102(21):7511-6. doi: 10.1073/pnas.0502774102. Epub 2005 May 16.
SecA facilitates bacterial protein translocation by its association with presecretory or membrane proteins and the SecYEG translocon channel. Once assembled, SecA ATPase undergoes cycles of membrane insertion and retraction at SecYEG that drive protein translocation in a stepwise fashion. SecA exists in equilibrium between a monomer and dimer, and association with its translocation ligands shifts this equilibrium dramatically. Here, we examined the proposal that protein translocation can occur by means of a SecA monomer. We produced a mutant SecA protein lacking residues 2-11, which was found to exist mostly as a monomer, and it was unable to complement a conditional-lethal secA mutant, was inactive for in vitro protein translocation, and was poorly active for translocation ATPase activity. Furthermore, we developed a technique termed membrane trapping, where wild-type SecA subunits became trapped within the membrane by overproduction of membrane-stuck mutant SecA proteins, and, in one case, a membrane-associated SecA heterodimer was demonstrated. Finally, we examined both endogenous and reconstituted membrane-bound SecA and found a significant level of SecA dimer in both cases, as assessed by chemical crosslinking. Collectively, our results strongly suggest that membrane-bound SecA dimer is critical for the protein translocation cycle, although these results cannot exclude participation of SecA monomer at some stage in the translocation process. Our findings have important implications regarding SecA motor function and translocon assembly and activation.
SecA通过与分泌前或膜蛋白以及SecYEG转位通道结合来促进细菌蛋白质的转运。一旦组装完成,SecA ATP酶在SecYEG处经历膜插入和回缩的循环,以逐步方式驱动蛋白质转运。SecA以单体和二聚体之间的平衡状态存在,与其转运配体的结合会显著改变这种平衡。在此,我们研究了蛋白质转运可通过SecA单体进行的这一假说。我们制备了一种缺少2 - 11位残基的SecA突变蛋白,发现它大多以单体形式存在,它无法互补条件致死性的secA突变体,对体外蛋白质转运无活性,且对转运ATP酶活性的活性较差。此外,我们开发了一种称为膜捕获的技术,通过过量表达膜结合的突变SecA蛋白,野生型SecA亚基会被困在膜内,并且在一个案例中,证明了一种膜相关的SecA异二聚体。最后,我们研究了内源性和重组的膜结合SecA,通过化学交联评估发现,在这两种情况下都存在显著水平的SecA二聚体。总体而言,我们的结果强烈表明膜结合的SecA二聚体对于蛋白质转运循环至关重要,尽管这些结果不能排除SecA单体在转运过程的某些阶段的参与。我们的发现对于SecA运动功能以及转位通道的组装和激活具有重要意义。