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Mycobacterium tuberculosis WhiB3 Responds to Vacuolar pH-induced Changes in Mycothiol Redox Potential to Modulate Phagosomal Maturation and Virulence.

机译:结核分枝杆菌WhiB3响应液泡pH诱导的分枝硫醇氧化还原电位的变化,以调节噬菌体的成熟和毒力。

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摘要

The ability of Mycobacterium tuberculosis to resist intraphagosomal stresses, such as oxygen radicals and low pH, is critical for its persistence. Here, we show that a cytoplasmic redox sensor, WhiB3, and the major M. tuberculosis thiol, mycothiol (MSH), are required to resist acidic stress during infection. WhiB3 regulates the expression of genes involved in lipid anabolism, secretion, and redox metabolism, in response to acidic pH. Furthermore, inactivation of the MSH pathway subverted the expression of whiB3 along with other pH-specific genes in M. tuberculosis. Using a genetic biosensor of mycothiol redox potential (E-MSH), we demonstrated that a modest decrease in phagosomal pH is sufficient to generate redox heterogeneity in E-MSH of the M. tuberculosis population in a WhiB3-dependent manner. Data indicate that M. tuberculosis needs low pH as a signal to alter cytoplasmic E-MSH, which activates WhiB3-mediated gene expression and acid resistance. Importantly, WhiB3 regulates intraphagosomal pH by down-regulating the expression of innate immune genes and blocking phagosomal maturation. We show that this block in phagosomal maturation is in part due to WhiB3-dependent production of polyketide lipids. Consistent with these observations, Mtb Delta whiB3 displayed intramacrophage survival defect, which can be rescued by pharmacological inhibition of phagosomal acidification. Last, Mtb Delta whiB3 displayed marked attenuation in the lungs of guinea pigs. Altogether, our study revealed an intimate link between vacuolar acidification, redox physiology, and virulence in M. tuberculosis and discovered WhiB3 as crucial mediator of phagosomal maturation arrest and acid resistance in M. tuberculosis.
机译:结核分枝杆菌抵抗吞噬体内应激(如氧自由基和低pH)的能力对其持久性至关重要。在这里,我们表明细胞质氧化还原传感器WhiB3和主要的结核分枝杆菌硫醇,霉菌硫醇(MSH)在感染期间需要抵抗酸性胁迫。 WhiB3响应酸性pH调节涉及脂质合成代谢,分泌和氧化还原代谢的基因的表达。此外,MSH途径的失活破坏了结核分枝杆菌中whiB3以及其他pH特异基因的表达。使用霉菌硫醇氧化还原电位(E-MSH)的遗传生物传感器,我们证明吞噬体pH的适度降低足以以WhiB3依赖的方式在结核分枝杆菌种群的E-MSH中产生氧化还原异质性。数据表明,结核分枝杆菌需要低pH值作为改变细胞质E-MSH的信号,从而激活WhiB3介导的基因表达和耐酸性。重要的是,WhiB3通过下调先天免疫基因的表达并阻断吞噬体成熟来调节吞噬体pH。我们表明,吞噬体成熟中的这一阻滞部分是由于WhiB3依赖的聚酮脂质的生产。与这些观察结果一致,Mtb Delta whiB3表现出巨噬细胞内生存缺陷,可以通过药理学抑制吞噬体酸化来挽救。最后,Mtb Delta whiB3在豚鼠的肺部显示出明显的衰减。总而言之,我们的研究揭示了结核分枝杆菌液泡酸化,氧化还原生理学和毒力之间的密切联系,并发现WhiB3是吞噬体成熟停滞和酸性抗性的关键介体。

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