Structure-optimized poly(α-amino acid)-based antimicrobial peptide mimetics with balanced bactericidal activity and biosafety for MRSA peritonitis therapy†

IF 5.7 3区 医学 Q1 MATERIALS SCIENCE, BIOMATERIALS
Hongfei Sun, Guifeng An, Sarula Bao, Wenbo Du, Ya Su, Dezhi Sun and Xiaohui Zhang
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Abstract

Developing novel antimicrobial peptide (AMP) mimetics is a crucial approach to addressing the growing problem of bacterial resistance by inheriting the antibacterial advantages of AMPs while overcoming their inherent limitations. However, improperly controlled positive charges and hydrophobic structures in AMP mimetics can lead to strong cytotoxicity. Therefore, achieving high antibacterial efficacy while maintaining favorable biocompatibility is a crucial challenge for AMP mimetics. Herein, based on poly-α-L-lysine (PLL), which possesses potential for biological applications, we introduced varying numbers of aryl side chains to prepare a series of poly (α-amino acids)-based AMP mimetics. Through structure–activity relationship (SAR) studies modulating the balance between positive charge and hydrophobic units, we identified PAA-1, which exhibits a favorable balance between antimicrobial activity and biocompatibility. In vitro antibacterial studies demonstrated that PAA-1 exhibits potent activity against drug-resistant bacteria and biofilm compared to vancomycin, with negligible toxicity. Mechanistic studies suggested that PAA-1 inherits the membrane-damaging mechanism of AMP and shows no drug resistance after 14 consecutive passages. In vivo studies indicated that PAA-1 exhibits superior therapeutic efficacy against Methicillin-resistant Staphylococcus aureus (MRSA)-induced peritonitis, providing greater survival protection compared to vancomycin, with a 7-day survival rate of 80% and demonstrating favorable biosafety. This study constructed AMP mimetics with a balanced antibacterial-biocompatibility profile by optimizing SAR. This provides a referable methodology for discovering more effective AMP mimetics and offers a preclinical research protocol for peritonitis treatment.

Abstract Image

结构优化的基于聚α-氨基酸的抗菌肽模拟物,具有平衡的杀菌活性和生物安全性,用于MRSA腹膜炎治疗。
开发新型抗菌肽(AMP)模拟物是解决日益严重的细菌耐药性问题的重要途径,可以继承AMP的抗菌优势,同时克服其固有的局限性。然而,AMP模拟物中的正电荷和疏水结构控制不当会导致强烈的细胞毒性。因此,在保持良好的生物相容性的同时实现高抗菌效果是AMP模拟物的关键挑战。本文以具有生物应用潜力的聚α- l -赖氨酸(PLL)为基础,引入不同数量的芳基侧链,制备了一系列基于聚α-氨基酸的AMP模拟物。通过调节正电荷和疏水单元之间平衡的构效关系(SAR)研究,我们发现PAA-1在抗菌活性和生物相容性之间表现出良好的平衡。体外抗菌研究表明,与万古霉素相比,PAA-1对耐药细菌和生物膜具有强效活性,毒性可忽略不计。机制研究表明PAA-1继承了AMP的膜损伤机制,连续传代14次后无耐药表现。体内研究表明,PAA-1对耐甲氧西林金黄色葡萄球菌(MRSA)诱导的腹膜炎具有优越的治疗效果,与万古霉素相比,PAA-1具有更强的生存保护作用,7天存活率为80%,具有良好的生物安全性。本研究通过优化SAR构建了抗菌-生物相容性平衡的AMP模拟物,为发现更有效的AMP模拟物提供了可参考的方法,并为腹膜炎治疗提供了临床前研究方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Biomaterials Science
Biomaterials Science MATERIALS SCIENCE, BIOMATERIALS-
CiteScore
11.50
自引率
4.50%
发文量
556
期刊介绍: Biomaterials Science is an international high impact journal exploring the science of biomaterials and their translation towards clinical use. Its scope encompasses new concepts in biomaterials design, studies into the interaction of biomaterials with the body, and the use of materials to answer fundamental biological questions.
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