SynBioC Research Group, Department of Green Chemistry and Technology, Faculty of Bioscience Engineering, Ghent University, Coupure Links 653, 9000, Ghent, Belgium.
Department of Pharmaceutical Chemistry, Faculty of Pharmacy, University of Ljubljana, Aškerčeva 7, 1000, Ljubljana, Slovenia.
Chemistry. 2018 Oct 12;24(57):15254-15266. doi: 10.1002/chem.201801868. Epub 2018 Sep 13.
As a complement to the renowned bicyclic β-lactam antibiotics, monocyclic analogues provide a breath of fresh air in the battle against resistant bacteria. In that framework, the present study discloses the in silico design and unprecedented ten-step synthesis of eleven nocardicin-like enantiomerically pure 2-{3-[2-(2-aminothiazol-4-yl)-2-(methoxyimino)acetamido]-2-oxoazetidin-1-yl}acetic acids starting from serine as a readily accessible precursor. The capability of this novel class of monocyclic 3-amino-β-lactams to inhibit penicillin-binding proteins (PBPs) of various (resistant) bacteria was assessed, revealing the potential of α-benzylidenecarboxylates as interesting leads in the pursuit of novel PBP inhibitors. No deactivation by representative enzymes belonging to the four β-lactamase classes was observed, while weak inhibition of class C β-lactamase P99 was demonstrated.
作为著名的双环β-内酰胺抗生素的补充,单环类似物为对抗耐药菌的斗争带来了新的希望。在这一框架下,本研究通过计算机设计并以前所未有的十步合成方法,从丝氨酸这一易得的前体出发,合成了十一个诺卡菌素样对映体纯的 2-{3-[2-(2-氨基噻唑-4-基)-2-(甲氧亚氨基)乙酰胺基]-2-氧代氮杂环丁-1-基}乙酸。评估了这类新型单环 3-氨基-β-内酰胺抑制各种(耐药)细菌青霉素结合蛋白(PBP)的能力,揭示了α-苄叉基羧酸酯作为新型 PBP 抑制剂的有趣先导化合物的潜力。没有观察到代表四种β-内酰胺酶类的代表性酶的失活,而对 C 类β-内酰胺酶 P99 表现出较弱的抑制作用。