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设计、合成及两亲性苯并吡喃衍生物的生物评价作为对抗多重耐药菌的有效抗菌剂。

Design, synthesis and biological evaluation of amphiphilic benzopyran derivatives as potent antibacterial agents against multidrug-resistant bacteria.

机构信息

State Key Laboratory for Macromolecule Drugs and Large-scale Manufacturing, School of Pharmaceutical Sciences and Food Engineering, Liaocheng University, Liaocheng, 252059, China.

State Key Laboratory for Macromolecule Drugs and Large-scale Manufacturing, School of Pharmaceutical Sciences and Food Engineering, Liaocheng University, Liaocheng, 252059, China.

出版信息

Eur J Med Chem. 2024 Nov 5;277:116784. doi: 10.1016/j.ejmech.2024.116784. Epub 2024 Aug 20.

Abstract

Antimicrobial resistance has emerged as a significant threat to global public health. To develop novel, high efficiency antibacterial alternatives to combat multidrug-resistant bacteria, A total of thirty-two novel amphiphilic benzopyran derivatives by mimicking the structure and function of antimicrobial peptides were designed and synthesized. Among them, the most promising compounds 4h and 17e displayed excellent antibacterial activity against Gram-positive bacteria (MICs = 1-4 μg/mL) with weak hemolytic activity and good membrane selectivity. Additionally, compounds 4h and 17e had rapid bactericidal properties, low resistance frequency, good plasma stability, and strong capabilities of inhibiting and eliminating bacterial biofilms. Mechanistic studies revealed that compounds 4h and 17e could effectively disrupt the integrity of bacterial cell membranes, and accompanied by an increase in intracellular reactive oxygen species and the leakage of proteins and DNA, ultimately leading to bacterial death. Notably, compound 4h exhibited comparable in vivo antibacterial potency in a mouse septicemia model infected by Staphylococcus aureus ATCC43300, as compared to vancomycin. These findings indicated that 4h might be a promising antibacterial candidate to combat antimicrobial resistance.

摘要

抗菌耐药性已成为全球公共卫生的重大威胁。为了开发新型、高效的抗菌替代品来对抗多药耐药菌,我们通过模拟抗菌肽的结构和功能设计并合成了总共 32 种新型两亲性苯并吡喃衍生物。其中,最有前途的化合物 4h 和 17e 对革兰氏阳性菌表现出优异的抗菌活性(MICs = 1-4 μg/mL),具有较弱的溶血活性和良好的膜选择性。此外,化合物 4h 和 17e 具有快速杀菌特性、低耐药频率、良好的血浆稳定性以及强大的抑制和消除细菌生物膜的能力。机制研究表明,化合物 4h 和 17e 可以有效地破坏细菌细胞膜的完整性,并伴随着细胞内活性氧的增加以及蛋白质和 DNA 的泄漏,最终导致细菌死亡。值得注意的是,化合物 4h 在金黄色葡萄球菌 ATCC43300 感染的小鼠败血症模型中表现出与万古霉素相当的体内抗菌效力。这些发现表明 4h 可能是一种有前途的抗菌候选药物,可用于对抗抗菌耐药性。

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