Department of Chemistry, Duke University, Durham, NC 27708, USA.
Department of Biochemistry, Duke University Medical Center, Durham, NC 27710, USA.
J Med Chem. 2013 Sep 12;56(17):6954-6966. doi: 10.1021/jm4007774. Epub 2013 Aug 21.
The zinc-dependent deacetylase LpxC catalyzes the committed step of lipid A biosynthesis in Gram-negative bacteria and is a validated target for the development of novel antibiotics to combat multidrug-resistant Gram-negative infections. Many potent LpxC inhibitors contain an essential threonyl-hydroxamate headgroup for high-affinity interaction with LpxC. We report the synthesis, antibiotic activity, and structural and enzymatic characterization of novel LpxC inhibitors containing an additional aryl group in the threonyl-hydroxamate moiety, which expands the inhibitor-binding surface in LpxC. These compounds display enhanced potency against LpxC in enzymatic assays and superior antibiotic activity against Francisella novicida in cell culture. The comparison of the antibiotic activities of these compounds against a leaky Escherichia coli strain and the wild-type strain reveals the contribution of the formidable outer-membrane permeability barrier that reduces the compounds efficacy in cell culture and emphasizes the importance of maintaining a balanced hydrophobicity and hydrophilicity profile in developing effective LpxC-targeting antibiotics.
锌依赖的去乙酰化酶 LpxC 催化革兰氏阴性菌中脂 A 生物合成的关键步骤,是开发新型抗生素以对抗多药耐药革兰氏阴性感染的有效靶点。许多有效的 LpxC 抑制剂含有一个必需的苏氨酸羟肟酸头部基团,用于与 LpxC 高亲和力相互作用。我们报告了含有额外芳基的新型 LpxC 抑制剂的合成、抗生素活性以及结构和酶学特征,该抑制剂在 LpxC 中扩展了抑制剂结合表面。这些化合物在酶促测定中对 LpxC 的活性增强,并且在细胞培养中对弗朗西斯菌 novicida 的抗生素活性更高。这些化合物对渗漏型大肠杆菌菌株和野生型菌株的抗生素活性比较揭示了强大的外膜通透性屏障的贡献,该屏障降低了化合物在细胞培养中的功效,并强调了在开发有效的 LpxC 靶向抗生素时保持平衡的疏水性和亲水性特征的重要性。