Department of Chemistry, Emory University, Atlanta, Georgia 30322, United States.
Department of Chemical Biology, Harvard University, Cambridge, Massachusetts 02138, United States.
J Am Chem Soc. 2024 Aug 21;146(33):23449-23456. doi: 10.1021/jacs.4c06658. Epub 2024 Aug 12.
Natural products are important precursors for antibiotic drug design. These chemical scaffolds serve as synthetic inspiration for chemists who leverage their structures to develop novel antibacterials and chemical probes. We have previously studied carolacton, a natural product macrolactone from, and discovered a simplified derivative, , that maintained apparent biofilm inhibitory activity, although the biological target was unknown. Herein, we utilize affinity-based protein profiling (AfBPP) during biofilm formation to identify the protein target using a photoexcitable cross-linking derivative of . From these studies, we identified glucan binding protein B (GbpB), a peptidoglycan hydrolase, as the primary target of . Further characterization of the interaction between and GbpB, as well as PcsB, a closely related homologue from the more pathogenic , revealed binding to the catalytic CHAP (cysteine, histidine, aminopeptidase) domain. To the best of our knowledge, this is the first report of a small-molecule binder of a conserved and essential bacterial CHAP hydrolase, revealing its potential as an antibiotic target. This work also highlights as a useful tool compound for streptococci and as an initial scaffold for the design of more potent CHAP binders.
天然产物是抗生素药物设计的重要前体。这些化学支架为化学家提供了合成灵感,他们利用这些结构开发新型抗菌药物和化学探针。我们之前研究了来自的天然产物大环内酯卡罗内酯,并发现了一种简化的衍生物,尽管其生物靶标未知,但仍保持明显的生物膜抑制活性。在这里,我们在生物膜形成过程中利用基于亲和力的蛋白质谱(AfBPP)来鉴定使用的光可激发交联衍生物的蛋白质靶标。通过这些研究,我们确定了葡聚糖结合蛋白 B(GbpB),一种肽聚糖水解酶,是 的主要靶标。进一步表征与 GbpB 以及来自更具致病性的的密切相关的同源物 PcsB 之间的相互作用,揭示了与催化 CHAP(半胱氨酸、组氨酸、氨肽酶)结构域的结合。据我们所知,这是首次报道小分子结合物与保守且必需的细菌 CHAP 水解酶的结合,揭示了其作为抗生素靶标的潜力。这项工作还突出了 作为链球菌的有用工具化合物,并作为设计更有效的 CHAP 结合物的初始支架。