The Research Institute of Pharmaceutical Sciences, College of Pharmacy, Seoul National University, Seoul 08826, Korea.
College of Pharmacy, Jeju National University, Jeju 63243, Korea.
J Med Chem. 2020 Nov 25;63(22):13669-13679. doi: 10.1021/acs.jmedchem.0c01118. Epub 2020 Nov 4.
is one of the most critical opportunistic pathogens. TA systems are promising drug targets because they are related to the survival of bacterial pathogens. However, structural information on TA systems in remains lacking; therefore, it is necessary to explore this information for the development of antibacterial agents. Here, we present the first crystal structure of the VapBC complex from at a resolution of 2.00 Å. We determined the toxin inhibitory mechanism of the VapB antitoxin through an Mg switch, in which Mg is displaced by R79 of VapB. This inhibitory mechanism of the active site is a novel finding and the first to be identified in a bacterial TA system. Furthermore, inhibitors, including peptides and small molecules, that activate the VapC toxin were discovered and investigated. These inhibitors can act as antimicrobial agents by disrupting the VapBC complex and activating VapC. Our comprehensive investigation of the VapBC system will help elucidate an unsolved conundrum in VapBC systems and develop potential antimicrobial agents.
是一种最重要的机会性病原体之一。TA 系统是很有前途的药物靶点,因为它们与细菌病原体的存活有关。然而,在 中,TA 系统的结构信息仍然缺乏;因此,有必要探索这些信息,以开发抗菌剂。在这里,我们呈现了来自 的 VapBC 复合物的第一个晶体结构,分辨率为 2.00 Å。我们通过 Mg 开关确定了 VapB 抗毒素对 VapB 的抑制机制,其中 Mg 被 VapB 的 R79 取代。这种活性位点的抑制机制是一个新的发现,也是在细菌 TA 系统中首次发现的。此外,还发现并研究了能够激活 VapC 毒素的抑制剂,包括肽和小分子。这些抑制剂可以通过破坏 VapBC 复合物并激活 VapC 来作为抗菌剂发挥作用。我们对 VapBC 系统的全面研究将有助于阐明 VapBC 系统中一个未解决的难题,并开发潜在的抗菌剂。