Bonnett Shilah A, Ollinger Juliane, Chandrasekera Susantha, Florio Stephanie, O'Malley Theresa, Files Megan, Jee Jo-Ann, Ahn James, Casey Allen, Ovechkina Yulia, Roberts David, Korkegian Aaron, Parish Tanya
TB Discovery Research, Infectious Disease Research Institute , 1616 Eastlake Avenue East, Suite 400, Seattle, Washington 98102, United States.
ACS Infect Dis. 2016 Dec 9;2(12):893-902. doi: 10.1021/acsinfecdis.6b00075. Epub 2016 Sep 19.
The general secretion (Sec) pathway is a conserved essential pathway in bacteria and is the primary route of protein export across the cytoplasmic membrane. During protein export, the signal peptidase LepB catalyzes the cleavage of the signal peptide and subsequent release of mature proteins into the extracellular space. We developed a target-based whole cell assay to screen for potential inhibitors of LepB, the sole signal peptidase in Mycobacterium tuberculosis, using a strain engineered to underexpress LepB (LepB-UE). We screened 72,000 compounds against both the Lep-UE and wild-type (wt) strains. We identified the phenylhydrazone (PHY) series as having higher activity against the LepB-UE strain. We conducted a limited structure-activity relationship determination around a representative PHY compound with differential activity (MICs of 3.0 μM against the LepB-UE strain and 18 μM against the wt); several analogues were less potent against the LepB overexpressing strain. A number of chemical modifications around the hydrazone moiety resulted in improved potency. Inhibition of LepB activity was observed for a number of compounds in a biochemical assay using cell membrane fraction derived from M. tuberculosis. Compounds did not increase cell permeability, dissipate membrane potential, or inhibit an unrelated mycobacterial enzyme, suggesting a specific mode of action related to the LepB secretory mechanism.
一般分泌(Sec)途径是细菌中一种保守的必需途径,是蛋白质跨细胞质膜输出的主要途径。在蛋白质输出过程中,信号肽酶LepB催化信号肽的切割,并随后将成熟蛋白质释放到细胞外空间。我们开发了一种基于靶点的全细胞检测方法,使用工程改造为低表达LepB(LepB-UE)的菌株,筛选结核分枝杆菌中唯一的信号肽酶LepB的潜在抑制剂。我们针对Lep-UE和野生型(wt)菌株筛选了72000种化合物。我们确定苯腙(PHY)系列对LepB-UE菌株具有更高的活性。我们围绕一种具有差异活性(对LepB-UE菌株的MIC为3.0 μM,对wt菌株的MIC为18 μM)的代表性PHY化合物进行了有限的构效关系测定;几种类似物对LepB过表达菌株的效力较低。腙部分周围的一些化学修饰导致效力提高。在使用源自结核分枝杆菌的细胞膜组分进行的生化检测中,观察到多种化合物对LepB活性有抑制作用。化合物不会增加细胞通透性、消散膜电位或抑制无关的分枝杆菌酶,表明其作用方式与LepB分泌机制相关。