Jangpromma Nisachon, Konkchaiyaphum Monruedee, Punpad Arpaporn, Sosiangdi Sirinthip, Daduang Sakda, Klaynongsruang Sompong, Tankrathok Anupong
Faculty of Science, Protein and Proteomics Research Center for Commercial and Industrial Purposes (ProCCI), Khon Kaen University, 40000, Khon Kaen, Thailand.
Faculty of Science, Department of Integrated Science, Khon Kaen University, 40000, Khon Kaen, Thailand.
Appl Biochem Biotechnol. 2023 Feb;195(2):1096-1108. doi: 10.1007/s12010-022-04210-1. Epub 2022 Nov 3.
Antimicrobial peptides are becoming a new generation of antibiotics due to their therapeutic potential and ability to decrease drug-resistant bacteria development. Cathelicidins are known as effective peptides of vertebrate immunity that play crucial roles in the defensive strategy against pathogens. To improve its potency, the RN15 antibacterial peptide derived from the cathelin domain of Crocodylus siamensis cathelicidin has been modified and its antimicrobial properties investigated. Peptides were derived by template-based and physicochemical designation. The RN15 derivative peptides were predicted through their structure modeling, antimicrobial potency, and peptide-membrane calculation. The antimicrobial and cytotoxic activities of candidate peptides were investigated. Simultaneous consideration of physicochemical characteristics, secondary structure modeling, and the result of antimicrobial peptide tools prediction indicated that RN15m4 peptide was a candidate derivative antimicrobial peptide. The RN15m4 peptide expresses antimicrobial activity against most Gram-positive and Gram-negative bacteria and fungi with a lower minimum inhibition concentration (MIC) than the parent peptide. Besides, the time-killing assay shows that the designed peptide performed its ability to quickly kill bacteria better than the original peptide. Scanning electron microscopy (SEM) displayed the destruction of the bacterial cell membrane caused by the RN15m4 peptide. In addition, the RN15m4 peptide exhibits low hemolytic activity and low cytotoxic activity as good as the template peptide. The RN15m4 peptide performs a range of antimicrobial activities with low cell toxicity. Our study has illustrated the combination approach to peptide design for potent antibiotic peptide discovery.
抗菌肽因其治疗潜力以及减少耐药菌产生的能力,正成为新一代抗生素。Cathelicidins是脊椎动物免疫中的有效肽,在抵御病原体的防御策略中发挥着关键作用。为提高其效力,对源自暹罗鳄cathelicidin的cathelin结构域的RN15抗菌肽进行了修饰,并研究了其抗菌特性。肽是通过基于模板和物理化学设计衍生而来的。通过结构建模、抗菌效力和肽-膜计算对RN15衍生肽进行了预测。研究了候选肽的抗菌和细胞毒性活性。综合考虑物理化学特性、二级结构建模以及抗菌肽工具预测结果表明,RN15m4肽是一种候选衍生抗菌肽。RN15m4肽对大多数革兰氏阳性菌、革兰氏阴性菌和真菌均表现出抗菌活性,其最低抑菌浓度(MIC)低于亲本肽。此外,时间杀菌试验表明,设计的肽比原始肽能更好地快速杀灭细菌。扫描电子显微镜(SEM)显示了RN15m4肽对细菌细胞膜的破坏作用。此外,RN15m4肽与模板肽一样,表现出低溶血活性和低细胞毒性。RN15m4肽具有一系列抗菌活性且细胞毒性低。我们的研究阐明了用于发现强效抗生素肽的肽设计组合方法。