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基于美国牡蛎防御素类似物A3的强效活性抗菌肽的合理设计与合成。

Rational design and synthesis of potent active antimicrobial peptides based on American oyster defensin analogue A3.

作者信息

Zhao Jiawei, Zhang Xin, Liu Yu, Geng Zhixing, Dai Jili, Guo Ye

机构信息

School of Pharmacy, Baotou Medical College Baotou 014060 China

School of Basic Medicine and Forensic Medicine, Baotou Medical College Baotou 014060 China.

出版信息

RSC Adv. 2025 Jun 12;15(25):19954-19965. doi: 10.1039/d5ra02745d. eCollection 2025 Jun 10.

Abstract

The rise of drug-resistant microbes is increasingly recognized as a significant global health challenge. Microbial drug resistance diminishes the efficacy of existing treatment options, underscoring the urgent necessity for the development of novel antibiotic candidates to effectively address infections. Antimicrobial peptides, owing to their distinctive antibacterial mechanisms, are considered a promising alternative to conventional antibiotics. In this work, we modified the structure of the American oyster defensin (AOD) analogue A3 to obtain four novel antimicrobial peptides (D-A3, A3-C4, A3-C5, A3-C6). These synthesized peptides exhibited broad-spectrum antibacterial activity. Notably, it was demonstrated that A3-C4, A3-C5, and A3-C6 showed enhanced glutathione (GSH) stability compared to A3, while D-A3 exhibited superior protease stability. Importantly, none of the peptides displayed hemolytic toxicity. Mechanistic investigations suggested that the synthesized peptides exert their anti-bacterial effects primarily through membrane disruption. D-A3 and A3-C6 were peptides with the best antibacterial activity and enzymatic stability among the synthesized derived peptides. These studies of D-A3 and A3-C6 will contribute to the development of new candidate drugs for the treatment of microbial infections.

摘要

耐药微生物的出现日益被视为一项重大的全球健康挑战。微生物耐药性降低了现有治疗方案的疗效,凸显了开发新型抗生素候选药物以有效应对感染的迫切必要性。抗菌肽因其独特的抗菌机制,被认为是传统抗生素的一种有前途的替代品。在这项工作中,我们对美国牡蛎防御素(AOD)类似物A3的结构进行了修饰,以获得四种新型抗菌肽(D-A3、A3-C4、A3-C5、A3-C6)。这些合成肽表现出广谱抗菌活性。值得注意的是,已证明A3-C4、A3-C5和A3-C6与A3相比,表现出增强的谷胱甘肽(GSH)稳定性,而D-A3表现出优异的蛋白酶稳定性。重要的是,这些肽均未表现出溶血毒性。机理研究表明,合成肽主要通过破坏细胞膜发挥抗菌作用。D-A3和A3-C6是合成衍生肽中抗菌活性和酶稳定性最佳的肽。对D-A3和A3-C6的这些研究将有助于开发用于治疗微生物感染的新型候选药物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b59a/12160004/6178b1e039b5/d5ra02745d-f1.jpg

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