Decuyper Lena, Magdalenić Katarina, Verstraete Marie, Jukič Marko, Sosič Izidor, Sauvage Eric, Amoroso Ana Maria, Verlaine Olivier, Joris Bernard, Gobec Stanislav, D'hooghe Matthias
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. 2019 Dec 13;25(70):16128-16140. doi: 10.1002/chem.201904139. Epub 2019 Nov 19.
Innovative monocyclic β-lactam entities create opportunities in the battle against resistant bacteria because of their PBP acylation potential, intrinsically high β-lactamase stability and compact scaffold. α-Benzylidene-substituted 3-amino-1-carboxymethyl-β-lactams were recently shown to be potent PBP inhibitors and constitute eligible anchor points for synthetic elaboration of the chemical space around the central β-lactam ring. The present study discloses a 12-step synthesis of ten α-arylmethylidenecarboxylates using a microwave-assisted Wittig olefination as the crucial reaction step. The library was designed aiming at enhanced β-lactam electrophilicity and extended electron flow after enzymatic attack. Additionally, increased β-lactamase stability and intermolecular target interaction were envisioned by tackling both the substitution pattern of the aromatic ring and the β-lactam C4-position. The significance of α-unsaturation was validated and the R39/PBP3 inhibitory potency shown to be augmented the most through decoration of the aromatic ring with electron-withdrawing groups. Furthermore, ring cleavage by representative β-lactamases was ruled out, providing new insights in the SAR landscape of monocyclic β-lactams as eligible PBP or β-lactamase inhibitors.
创新的单环β-内酰胺类化合物因其对青霉素结合蛋白(PBP)的酰化潜力、固有的高β-内酰胺酶稳定性和紧凑的骨架结构,在对抗耐药细菌的战斗中创造了机会。最近研究表明,α-亚苄基取代的3-氨基-1-羧甲基-β-内酰胺是有效的PBP抑制剂,并且是对中心β-内酰胺环周围化学空间进行合成修饰的合适锚点。本研究公开了一种使用微波辅助维蒂希烯烃化反应作为关键反应步骤的12步合成十种α-芳基亚甲基羧酸酯的方法。该化合物库的设计旨在增强β-内酰胺的亲电性,并在酶攻击后扩展电子流。此外,通过处理芳环的取代模式和β-内酰胺的C4位,设想提高β-内酰胺酶稳定性和分子间靶点相互作用。α-不饱和键的重要性得到了验证,并且通过用吸电子基团修饰芳环,R39/PBP3抑制效力增强最为显著。此外,排除了代表性β-内酰胺酶的环裂解,为单环β-内酰胺作为合适的PBP或β-内酰胺酶抑制剂的构效关系研究提供了新的见解。