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解锁潜力:聚乙二醇化和离子聚合物分子量降低以提高抗真菌活性和生物相容性。

Unlocking the Potential: PEGylation and Molecular Weight Reduction of Ionenes for Enhanced Antifungal Activity and Biocompatibility.

机构信息

Faculty of Chemistry, Warsaw University of Technology, Noakowskiego 3, Warsaw, 00-664, Poland.

School of Pharmacy, University of Nottingham, Boots Science Building, University Park, Nottingham, NG7 2RD, UK.

出版信息

Macromol Biosci. 2024 Sep;24(9):e2400032. doi: 10.1002/mabi.202400032. Epub 2024 Jul 17.

DOI:10.1002/mabi.202400032
PMID:39018491
Abstract

Numerous synthetic polymers, imitating natural antimicrobial peptides, have demonstrated potent antimicrobial activity, positioning them as potential candidates for new antimicrobial drugs. However, the high activity of these molecules often comes at the cost of elevated toxicity against eukaryotic organisms. In this study, a series of cationic ionenes with varying molecular weights to assess the influence of polymer chain length on ionene activity is investigated. To enhance polymer antimicrobial activity and limit toxicity a PEG side chain is introduced into the repeating unit. The resulting molecules consistently exhibited high activity against three model organisms: E. coli, S. aureus and C. albicans. The incorporation of side PEG chain improves antifungal properties and biocompatibility, regardless of molecular weight. The most important finding of this work is that the reduction of polymer molecular mass led to increased antifungal activity and reduced cytotoxicity against HMF and MRC-5 cell lines simultaneously. As a result, the best-performing molecules reported herein displayed minimal inhibitory concentrations (MIC) as low as 2 and 0.0625 µg mL for C. albicans and C. tropicalis respectively, demonstrating exceptional selectivity. It is plausible that some of described herein molecules can serve as potential lead candidates for new antifungal drugs.

摘要

许多合成聚合物模仿天然抗菌肽,表现出很强的抗菌活性,使它们成为新型抗菌药物的潜在候选药物。然而,这些分子的高活性往往是以对真核生物的毒性升高为代价的。在这项研究中,我们研究了一系列具有不同分子量的阳离子聚轮烷,以评估聚合物链长对聚轮烷活性的影响。为了提高聚合物的抗菌活性并限制其毒性,我们在重复单元中引入了 PEG 侧链。结果表明,这些分子对三种模式生物(大肠杆菌、金黄色葡萄球菌和白色念珠菌)具有很高的活性。无论分子量如何,侧链 PEG 链的引入都提高了抗真菌性能和生物相容性。这项工作的最重要发现是,降低聚合物的分子量会导致抗真菌活性增加,同时对 HMF 和 MRC-5 细胞系的细胞毒性降低。因此,本文报道的表现最好的分子对白色念珠菌和热带念珠菌的最低抑菌浓度(MIC)分别低至 2 和 0.0625μg/mL,表现出非凡的选择性。可以推测,本文描述的一些分子可以作为新型抗真菌药物的潜在先导候选物。

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