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外排泵 Rv1258c 激活结核分枝杆菌氧化应激和 VII 型分泌系统 ESX-3 介导的铁代谢途径的新功能。

Efflux pump Rv1258c activates novel functions of the oxidative stress and via the VII secretion system ESX-3-mediated iron metabolic pathway in Mycobacterium tuberculosis.

机构信息

Translational Medicine Center, Beijing Chest Hospital, Capital Medical University, Beijing 101149, China, Beijing Key Laboratory in Drug Resistant Tuberculosis Research, Beijing Tuberculosis and Thoracic Tumor Research Institute, Beijing 101149, China.

Institute of Chinese Materia Medica, China Academy of Chinese Medical Science, Beijing 100700, China.

出版信息

Microbes Infect. 2024 Jan-Feb;26(1-2):105239. doi: 10.1016/j.micinf.2023.105239. Epub 2023 Oct 18.

Abstract

Oxidative stress and iron metabolism are essential for Mycobacterium tuberculosis (M.tb) survival in host cells. The efflux pump Rv1258c belongs to the major facilitator superfamily (MFS) and can actively pump drugs to promote certain drug resistance in M.tb. In this study, we compared H37RvΔRv1258c with wild-type (WT) M.tb H37Rv. The qRT-PCR results suggested that Rv1258c is potentially involved in the iron metabolic pathway by regulating the expression of ESX-3, which is required for iron uptake. Protein-Protein Affinity Predictor (PPA-Pred2) and the artificial intelligence program AlphaFold 2 were used for prediction and showed that Rv1258c has direct interactions with PPE4 and EccD3 but weak interactions with EccB3. This was further determined via protein-protein interaction analysis of the yeast two-hybrid expression system. By comparing mutant H37RvΔRv1258c strains with WT strains, we discovered that the absence of Rv1258c led to elevated intracellular H potential and NAD+/NADH ratios in M.tb, thereby resulting in oxidative stress. We hypothesize that the efflux pump Rv1258c not only has the function of regulating drug resistance in M.tb but also has a novel function in activating oxidative stress and regulating ESX-3-associated iron metabolism in M.tb.

摘要

氧化应激和铁代谢对于结核分枝杆菌(M.tb)在宿主细胞中的存活至关重要。外排泵 Rv1258c 属于主要易化子超家族(MFS),可以主动泵出药物,促进 M.tb 中的某些药物耐药性。在这项研究中,我们将 H37RvΔRv1258c 与野生型(WT)M.tb H37Rv 进行了比较。qRT-PCR 结果表明,Rv1258c 通过调节 ESX-3 的表达,可能参与铁代谢途径,ESX-3 是铁摄取所必需的。蛋白质-蛋白质亲和力预测器(PPA-Pred2)和人工智能程序 AlphaFold 2 用于预测,并表明 Rv1258c 与 PPE4 和 EccD3 具有直接相互作用,但与 EccB3 具有较弱的相互作用。这通过酵母双杂交表达系统的蛋白质-蛋白质相互作用分析进一步确定。通过比较突变体 H37RvΔRv1258c 菌株与 WT 菌株,我们发现 Rv1258c 的缺失导致 M.tb 中细胞内 H 势和 NAD+/NADH 比值升高,从而导致氧化应激。我们假设外排泵 Rv1258c 不仅具有调节 M.tb 药物耐药性的功能,而且在激活 M.tb 中的氧化应激和调节 ESX-3 相关铁代谢方面具有新的功能。

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