Aix-Marseille Université, Laboratoire de Bioénergétique et Ingénierie des Protéines, Institut de Microbiologie de la Méditerranée, Centre National de la Recherche Scientifique, 13402, Marseille, France.
Aix-Marseille Université, Laboratoire de Chimie Bactérienne, Institut de Microbiologie de la Méditerranée, Centre National de la Recherche Scientifique, 13402, Marseille, France.
Sci Rep. 2018 Sep 11;8(1):13576. doi: 10.1038/s41598-018-31851-2.
In this report, we investigate small proteins involved in bacterial alternative respiratory systems that improve the enzymatic efficiency through better anchorage and multimerization of membrane components. Using the small protein TorE of the respiratory TMAO reductase system as a model, we discovered that TorE is part of a subfamily of small proteins that are present in proteobacteria in which they play a similar role for bacterial respiratory systems. We reveal by microscopy that, in Shewanella oneidensis MR1, alternative respiratory systems are evenly distributed in the membrane contrary to what has been described for Escherichia coli. Thus, the better efficiency of the respiratory systems observed in the presence of the small proteins is not due to a specific localization in the membrane, but rather to the formation of membranous complexes formed by TorE homologs with their c-type cytochrome partner protein. By an in vivo approach combining Clear Native electrophoresis and fluorescent translational fusions, we determined the 4:4 stoichiometry of the complexes. In addition, mild solubilization of the cytochrome indicates that the presence of the small protein reinforces its anchoring to the membrane. Therefore, assembly of the complex induced by this small protein improves the efficiency of the respiratory system.
在本报告中,我们研究了参与细菌替代呼吸系统的小蛋白,这些小蛋白通过更好地锚定和多聚化膜组件来提高酶的效率。我们以呼吸 TMAO 还原酶系统的小蛋白 TorE 作为模型,发现 TorE 是存在于变形菌中的小蛋白亚家族的一部分,在这些细菌中,它们在细菌呼吸系统中发挥着相似的作用。通过显微镜观察,我们发现,在 Shewanella oneidensis MR1 中,替代呼吸系统在膜中均匀分布,这与在大肠杆菌中描述的情况相反。因此,在存在小蛋白的情况下观察到的呼吸系统的更高效率不是由于其在膜中的特定定位,而是由于 TorE 同源物与其 c 型细胞色素伴侣蛋白形成的膜复合物的形成。通过结合清晰天然电泳和荧光翻译融合的体内方法,我们确定了复合物的 4:4 计量比。此外,细胞色素的温和溶解表明小蛋白的存在增强了其对膜的锚定。因此,这种小蛋白诱导的复合物组装提高了呼吸系统的效率。