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不同聚乙二醇化设计对具有高效抗菌和抗真菌活性的抗菌肽的体外功效。

In vitro efficacy of different PEGylation designs on cathelicidin-like peptide with high antibacterial and antifungal activity.

机构信息

Department of Medical Biotechnology, Institute of Health Sciences, Acibadem Mehmet Ali Aydinlar University, Istanbul, Turkey.

Department of Medical Microbiology, School of Medicine, Acibadem Mehmet Ali Aydinlar University, Istanbul, Turkey.

出版信息

Sci Rep. 2023 Jul 11;13(1):11213. doi: 10.1038/s41598-023-38449-3.

Abstract

Recent reports on antibiotic resistance have highlighted the need to reduce the impact of this global health issue through urgent prevention and control. The World Health Organization currently considers antibiotic resistance as one of the most dangerous threats to global health. Therefore, Antimicrobial peptides (AMPs) are promising for the development of novel antibiotic molecules due to their high antimicrobial effects, non-inducing antimicrobial resistance (AMR) properties, and broad spectrum. Hence, in this study, we developed novel antimicrobial peptide/polymer conjugates to reduce the adverse effects of TN6 (RLLRLLLRLLR) peptide. We demonstrate how our constructs function in vitro in terms of antimicrobial activity, hemolytic activity, cytotoxicity, and protease resistance. Our findings show that our molecules are effective against different types of microorganisms such as Staphylococcus aureus, Escherichia coli, Pseudomonas aeruginosa, methicillin-resistant S. aureus, vancomycin-resistant Enteroccus faecium, and Candida albicans, which are known to be pathogenic and antibiotic-resistant. Our constructs generally showed low cytotoxicity relative to the peptide in HaCaT and 3T3 cells. Especially these structures are very successful in terms of hemotoxicity. In the bacteremia model with S. aureus, the naked peptide (TN6) was hemotoxic even at 1 µg/mL, while the hemotoxicity of the conjugates was considerably lower than the peptide. Remarkably in this model, the hemolytic activity of PepC-PEG-pepC conjugate decreased 15-fold from 2.36 to 31.12 µg/mL compared to the bacteria-free 60-min treatment. This is proof that in the case of bacteremia and sepsis, the conjugates specifically direct to bacterial cell membranes rather than red blood cells. In addition, the PepC-PEG-pepC conjugate is resistant to plasma proteases. Moreover, morphological and intracellular damage of the peptide/conjugates to Escherichia coli are demonstrated in SEM and TEM images. These results suggest our molecules can be considered potential next-generation broad-spectrum antibiotic molecule/drug candidates that might be used in clinical cases such as bacteremia and sepsis.

摘要

最近有关抗生素耐药性的报告强调了通过紧急预防和控制来减少这一全球健康问题影响的必要性。世界卫生组织目前认为抗生素耐药性是对全球健康最危险的威胁之一。因此,由于其高抗菌效果、不诱导抗菌耐药性(AMR)特性和广谱性,抗菌肽(AMPs)有望开发新型抗生素分子。因此,在这项研究中,我们开发了新型抗菌肽/聚合物缀合物,以降低 TN6(RLLRLLLRLLR)肽的不良反应。我们展示了我们的构建物在体外的抗菌活性、溶血活性、细胞毒性和蛋白酶抗性方面的功能。我们的研究结果表明,我们的分子对不同类型的微生物有效,如金黄色葡萄球菌、大肠杆菌、铜绿假单胞菌、耐甲氧西林金黄色葡萄球菌、耐万古霉素肠球菌和白色念珠菌,这些微生物已知具有致病性和抗药性。与肽在 HaCaT 和 3T3 细胞中的毒性相比,我们的构建物通常表现出较低的细胞毒性。这些结构在血液毒性方面尤其非常成功。在金黄色葡萄球菌菌血症模型中,裸肽(TN6)即使在 1 µg/mL 时也具有血液毒性,而缀合物的血液毒性明显低于肽。值得注意的是,在这种模型中,与无细菌的 60 分钟处理相比,PepC-PEG-pepC 缀合物的溶血活性从 2.36 降低到 31.12 µg/mL,降低了 15 倍。这证明在菌血症和败血症的情况下,缀合物特异性地靶向细菌细胞膜而不是红细胞。此外,PepC-PEG-pepC 缀合物对血浆蛋白酶具有抗性。此外,还通过 SEM 和 TEM 图像证明了肽/缀合物对大肠杆菌的形态和细胞内损伤。这些结果表明,我们的分子可以被认为是具有潜力的下一代广谱抗生素分子/药物候选物,可能用于菌血症和败血症等临床病例。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b4f5/10336128/79215ea4bb77/41598_2023_38449_Fig1_HTML.jpg

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