Department of Chemistry and Biochemistry, University of Oklahoma, Norman, OK 73019.
School of Pharmacy & Health Professions, Department of Pharmacy Sciences, Creighton University, Omaha, NE 68178.
Proc Natl Acad Sci U S A. 2022 Jul 26;119(30):e2113963119. doi: 10.1073/pnas.2113963119. Epub 2022 Jul 19.
Transporters belonging to the Resistance-Nodulation-cell Division (RND) superfamily of proteins such as MmpL3 and its analogs are the focus of intense investigations due to their importance in the physiology of species and antimycobacterial drug discovery. These transporters deliver trehalose monomycolates, the precursors of major lipids of the outer membrane, to the periplasm by a proton motive force-dependent mechanism. In this study, we successfully purified, from native membranes, the full-length and the C-terminal truncated MmpL3 and CmpL1 proteins and reconstituted them into proteoliposomes. We also generated a series of substrate mimics and inhibitors specific to these transporters, analyzed their activities in the reconstituted proteoliposomes, and carried out molecular dynamics simulations of the model MmpL3 transporter at different pH. We found that all reconstituted proteins facilitate proton translocation across a phospholipid bilayer, but MmpL3 and CmpL1 differ dramatically in their responses to pH and interactions with substrate mimics and indole-2-carboxamide inhibitors. Our results further suggest that some inhibitors abolish the transport activity of MmpL3 and CmpL1 by inhibition of proton translocation.
属于抗性-调节-细胞分裂(RND)蛋白超家族的转运蛋白,如 MmpL3 及其类似物,由于它们在物种生理学和抗分枝杆菌药物发现中的重要性,成为了研究的焦点。这些转运蛋白通过质子动力依赖的机制将海藻糖单胞苷脂(外膜主要脂质的前体)输送到周质空间。在这项研究中,我们成功地从天然膜中纯化了全长和 C 端截断的 MmpL3 和 CmpL1 蛋白,并将它们重新组装到脂蛋白体中。我们还生成了一系列针对这些转运蛋白的底物类似物和抑制剂,分析了它们在重组脂蛋白体中的活性,并在不同 pH 值下对模型 MmpL3 转运蛋白进行了分子动力学模拟。我们发现所有重组蛋白都能促进质子穿过磷脂双层的转运,但 MmpL3 和 CmpL1 在对 pH 的反应和与底物类似物和吲哚-2-羧酰胺抑制剂的相互作用方面有很大的差异。我们的结果进一步表明,一些抑制剂通过抑制质子转运来消除 MmpL3 和 CmpL1 的转运活性。