Peptide lipidation and shortening optimises antibacterial, antibiofilm and membranolytic actions of an amphiphilic polylysine-polyphenyalanine octapeptide

IF 3.6 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Current Research in Biotechnology Pub Date : 2024-01-01 DOI:10.1016/j.crbiot.2024.100240
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Abstract

The demand for broad-spectrum antibacterial agents continues with increasing rates of resistance of microbial pathogens to traditional antibiotics. Peptides and lipopeptides are gaining traction as promising novel, class-reference antibiotics for tackling difficult-to-treat infections caused by multi-drug resistant bacteria. To identify novel candidates and expand treatment options in clinical settings, we explored the in vitro antibacterial potential and mode of action of a short octapeptide combining a cationic block of four lysines and a highly hydrophobic segment of four phenylalanines (K4F4), and two K4F4-inspired lipopeptides (Palmitoyl-K4F4 and K4-NH-Palmitoyl). Preliminary AI-based screening had revealed the antimicrobial potential of the K4F4 peptide coupled with limited haemolytic activity. Broth dilution and haemolytic assays have confirmed these in silico predictions. Overall, our lipidated peptides were more active at lower MIC values compared to non-lipidated species, indicating the beneficial impact of tailing lipidation on design of peptide-based antimicrobials. An integrated view of the membrane-active mechanism of these novel therapeutic templates was obtained using a combination of flow cytometry, fluorescence microscopy and dye-based permeabilization assays. K4F4 and its lipidated derivatives act via a fast-disrupting mechanism without inducing bacterial resistance mechanisms in a long-term exposure assay. A K4F4-inspired lipopeptide together with its shorter version (K4-NH-Palmitoyl), were more stable in environments closer emulating physiological conditions, showing a higher antibacterial response in physiological salts and serum than their parent peptide. Our findings reveal the antibacterial and antibiofilm potential of a novel polylysine-polyphenyalanine peptide and highlight the significant contribution of lipidation and shortening as molecular engineering strategies to improve and guide the future design of next-generation membrane-targeting antibiotics.

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肽脂化和缩短优化了两亲性聚赖氨酸-聚苯丙氨酸八肽的抗菌、抗生物膜和膜溶解作用
随着微生物病原体对传统抗生素的耐药性不断增加,对广谱抗菌剂的需求持续增长。肽类和脂肽作为有前景的新型类抗生素,在解决由多重耐药菌引起的难以治疗的感染方面正受到越来越多的关注。为了确定新的候选药物并扩大临床治疗选择,我们探索了一种由四个赖氨酸组成的阳离子区块和四个苯丙氨酸组成的高疏水区段相结合的短八肽(K4F4)以及两种受 K4F4 启发的脂肽(棕榈酰-K4F4 和 K4-NH-棕榈酰)的体外抗菌潜力和作用模式。基于人工智能的初步筛选显示,K4F4 肽具有抗菌潜力,但溶血活性有限。肉汤稀释和溶血试验证实了这些硅学预测。总体而言,与非脂质化物种相比,我们的脂质化多肽在较低的 MIC 值下具有更高的活性,这表明尾端脂质化对设计基于多肽的抗菌剂具有有利影响。通过流式细胞仪、荧光显微镜和基于染料的渗透分析,我们综合了解了这些新型治疗模板的膜活性机制。在长期暴露试验中,K4F4 及其脂化衍生物通过快速破坏机制发挥作用,不会诱发细菌的抗药性机制。受 K4F4 启发的脂肽及其更短的衍生物(K4-NH-棕榈酰)在更接近生理条件的环境中更加稳定,在生理盐和血清中的抗菌反应高于其母体肽。我们的研究结果揭示了一种新型聚赖氨酸-聚苯丙氨酸多肽的抗菌和抗生物膜潜力,并强调了脂化和缩短作为分子工程策略对改进和指导未来下一代膜靶向抗生素设计的重要贡献。
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来源期刊
Current Research in Biotechnology
Current Research in Biotechnology Biochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
6.70
自引率
3.60%
发文量
50
审稿时长
38 days
期刊介绍: Current Research in Biotechnology (CRBIOT) is a new primary research, gold open access journal from Elsevier. CRBIOT publishes original papers, reviews, and short communications (including viewpoints and perspectives) resulting from research in biotechnology and biotech-associated disciplines. Current Research in Biotechnology is a peer-reviewed gold open access (OA) journal and upon acceptance all articles are permanently and freely available. It is a companion to the highly regarded review journal Current Opinion in Biotechnology (2018 CiteScore 8.450) and is part of the Current Opinion and Research (CO+RE) suite of journals. All CO+RE journals leverage the Current Opinion legacy-of editorial excellence, high-impact, and global reach-to ensure they are a widely read resource that is integral to scientists' workflow.
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