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具有可置换聚合物抗衡阴离子的无毒抗菌阳离子肽纳米结构。

Nontoxic Antimicrobial Cationic Peptide Nanoconstructs with Bacteria-Displaceable Polymeric Counteranions.

机构信息

Centre of Antimicrobial Bioengineering School of Chemical and Biomedical Engineering, Nanyang Technological University, Singapore 637459, Singapore.

Department of Chemical & Biomolecular Engineering, National University of Singapore 4 Engineering Drive 4, Kent Ridge 117585, Singapore.

出版信息

Nano Lett. 2021 Jan 27;21(2):899-906. doi: 10.1021/acs.nanolett.0c03261. Epub 2021 Jan 15.

Abstract

Antimicrobial peptides that target the integrity of bacterial envelopes can eradicate pathogens with little development of resistance, but they often inflict nonselective toxicity toward mammalian cells. The prevailing approach to optimize the selectivity of cationic peptides has been to modify their composition. Instead, we invent a new generation of broad-spectrum antibacterial nanoconstructs with negligible mammalian cell toxicity through a competitive displacement of counter polyanions from the complementary polycations. The nanoconstruct, which has a highly cationic Au nanoparticles (NPs) core shielded by polymeric counterions, is inert in nonbacterial environments. When exposed to negatively charged bacterial envelopes, this construct sheds its polyanions, triggering a cationic Au NP/bacterial membrane interaction that rapidly kills Gram-positive and Gram-negative bacteria. The anionic charge and hydrophilicity of the polyanion provides charge neutralization for the peptide-decorated Au NP core, but it is also bacteria-displaceable. These results provide a foundation for the development of other cationic particles and polymeric counterion combinations with potent antimicrobial activity without toxicity.

摘要

靶向细菌包膜完整性的抗菌肽可以在几乎不产生耐药性的情况下消灭病原体,但它们通常对哺乳动物细胞造成非选择性毒性。优化阳离子肽选择性的主要方法一直是改变它们的组成。相反,我们通过从互补聚阳离子上竞争性置换抗衡阴离子,发明了一种新一代的对哺乳动物细胞毒性可忽略不计的广谱抗菌纳米结构。该纳米结构具有带正电荷的金纳米颗粒 (Au NPs) 核,由聚合抗衡离子屏蔽,在非细菌环境中是惰性的。当暴露于带负电荷的细菌包膜时,该结构会脱落其聚阴离子,触发带正电荷的 Au NP/细菌膜相互作用,从而迅速杀死革兰氏阳性菌和革兰氏阴性菌。聚阴离子的阴离子电荷和亲水性为肽修饰的 Au NP 核提供了电荷中和,但它也可被细菌置换。这些结果为开发具有强大抗菌活性而无毒性的其他阳离子颗粒和聚合抗衡离子组合提供了基础。

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