Misra Rajeev, Stikeleather Ryan, Gabriele Rebecca
School of Life Sciences, Arizona State University, Tempe, AZ 85287, USA.
School of Life Sciences, Arizona State University, Tempe, AZ 85287, USA.
J Mol Biol. 2015 Mar 13;427(5):1061-74. doi: 10.1016/j.jmb.2014.04.021. Epub 2014 May 2.
Assembly of the β-barrel outer membrane proteins (OMPs) is an essential cellular process in Gram-negative bacteria and in the mitochondria and chloroplasts of eukaryotes--two organelles of bacterial origin. Central to this process is the conserved β-barrel OMP that belongs to the Omp85 superfamily. In Escherichia coli, BamA is the core β-barrel OMP and, together with four outer membrane lipoproteins, BamBCDE, constitutes the β-barrel assembly machine (BAM). In this paper, we investigated the roles of BamD, an essential lipoprotein, and BamB in BamA biogenesis. Depletion of BamD caused impairment in BamA biogenesis and cessation of cell growth. These defects of BamD depletion were partly reversed by single-amino-acid substitutions mapping within the β-barrel domain of BamA. However, in the absence of BamB, the positive effects of the β-barrel substitutions on BamA biogenesis under BamD depletion conditions were nullified. By employing a BamA protein bearing one such substitution, F474L, it was demonstrated that the mutant BamA protein could not only assemble without BamD but also facilitate the assembly of wild-type BamA expressed in trans. Based on these data, we propose a model in which the Bam lipoproteins, which are localized to the outer membrane by the BAM-independent Lol pathway, aid in the creation of new BAM complexes by serving as outer membrane receptors and folding factors for nascent BamA molecules. The newly assembled BAM holocomplex then catalyzes the assembly of substrate OMPs and BamA. These in vivo findings are corroborated by recently published in vitro data.
β-桶状外膜蛋白(OMPs)的组装是革兰氏阴性菌以及真核生物的线粒体和叶绿体(起源于细菌的两种细胞器)中的一个重要细胞过程。这一过程的核心是属于Omp85超家族的保守β-桶状OMP。在大肠杆菌中,BamA是核心β-桶状OMP,它与四种外膜脂蛋白BamBCDE一起构成β-桶状组装机器(BAM)。在本文中,我们研究了必需脂蛋白BamD和BamB在BamA生物合成中的作用。BamD的缺失导致BamA生物合成受损和细胞生长停止。BamD缺失的这些缺陷部分被位于BamAβ-桶结构域内的单氨基酸替换所逆转。然而,在没有BamB的情况下,β-桶替换在BamD缺失条件下对BamA生物合成的积极作用被抵消。通过使用带有一个这样替换(F474L)的BamA蛋白,证明突变的BamA蛋白不仅可以在没有BamD的情况下组装,还可以促进反式表达的野生型BamA的组装。基于这些数据,我们提出了一个模型,其中通过不依赖BAM的Lol途径定位于外膜的Bam脂蛋白,作为新生BamA分子的外膜受体和折叠因子,有助于形成新的BAM复合物。新组装的BAM全复合物然后催化底物OMPs和BamA的组装。最近发表的体外数据证实了这些体内研究结果。