Department of Molecular Cell Biology, Faculty of Earth and Life Sciences, VU University Amsterdam, Amsterdam, The Netherlands.
PLoS One. 2011;6(8):e23575. doi: 10.1371/journal.pone.0023575. Epub 2011 Aug 17.
Infections with Mycobacterium tuberculosis are substantially increasing on a worldwide scale and new antibiotics are urgently needed to combat concomitantly emerging drug-resistant mycobacterial strains. The diarylquinoline TMC207 is a highly promising drug candidate for treatment of tuberculosis. This compound kills M. tuberculosis by binding to a new target, mycobacterial ATP synthase. In this study we used biochemical assays and binding studies to characterize the interaction between TMC207 and ATP synthase. We show that TMC207 acts independent of the proton motive force and does not compete with protons for a common binding site. The drug is active on mycobacterial ATP synthesis at neutral and acidic pH with no significant change in affinity between pH 5.25 and pH 7.5, indicating that the protonated form of TMC207 is the active drug entity. The interaction of TMC207 with ATP synthase can be explained by a one-site binding mechanism, the drug molecule thus binds to a defined binding site on ATP synthase. TMC207 affinity for its target decreases with increasing ionic strength, suggesting that electrostatic forces play a significant role in drug binding. Our results are consistent with previous docking studies and provide experimental support for a predicted function of TMC207 in mimicking key residues in the proton transfer chain and blocking rotary movement of subunit c during catalysis. Furthermore, the high affinity of TMC207 at low proton motive force and low pH values may in part explain the exceptional ability of this compound to efficiently kill mycobacteria in different microenvironments.
结核分枝杆菌的感染在全球范围内大幅增加,迫切需要新的抗生素来对抗同时出现的耐药分枝杆菌菌株。二芳基喹啉 TMC207 是一种极具潜力的抗结核药物候选物。该化合物通过与新的靶标结核分枝杆菌 ATP 合酶结合来杀死结核分枝杆菌。在本研究中,我们使用生化测定和结合研究来表征 TMC207 与 ATP 合酶的相互作用。我们表明,TMC207 独立于质子动力势发挥作用,并且不与质子竞争共同的结合位点。该药物在中性和酸性 pH 值下对分枝杆菌的 ATP 合成具有活性,在 pH 5.25 与 pH 7.5 之间亲和力没有明显变化,表明 TMC207 的质子化形式是活性药物实体。TMC207 与 ATP 合酶的相互作用可以用单一位点结合机制来解释,药物分子因此结合到 ATP 合酶上的一个特定结合位点。TMC207 与靶标的亲和力随离子强度的增加而降低,表明静电作用力在药物结合中起重要作用。我们的结果与先前的对接研究一致,并为 TMC207 在模拟质子转移链关键残基和在催化过程中阻止亚基 c 旋转运动的预测功能提供了实验支持。此外,TMC207 在低质子动力势和低 pH 值下的高亲和力可能部分解释了该化合物在不同微环境中有效杀死分枝杆菌的特殊能力。