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Antimicrobial activity and membrane-active mechanism of tryptophan zipper-like beta-hairpin antimicrobial peptides

机译:色氨酸拉链样β-发夹抗菌肽的抗菌活性和膜活性机制

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Antimicrobial peptides (AMPs) with amphipathic beta-hairpin structures have been demonstrated to possess potent antimicrobial activities and great cell selectivities. However, our understanding of beta-hairpin antimicrobial peptides lags behind that of alpha-helices, mainly because it is difficult for short peptides to form robust beta-hairpin structures. Tryptophan zipper (trpzip) peptides are among the most stable beta-hairpin peptides known to fold spontaneously without requiring covalent disulfide constraint or metal binding. To develop model beta-hairpin AMPs with small size and remarkable stability, a series of amphiphilic linear peptides were designed based on the trpzip motif. The sequence of designed peptides is (WK) (n) (D) PG(KW) (n) -NH2 (n = 1, 2, 3, 4, 5), and the antimicrobial activity and membrane interaction mechanism of the peptides were evaluated. The results showed that these peptides readily fold into beta-hairpin structures in aqueous and membrane-mimicking environments and exhibit broad-spectrum antimicrobial activities against both gram-positive and gram-negative bacteria. The antibacterial potency of the peptides initially increased and then decreased with increasing chain length. WK3, a 14-residue peptide, displayed excellent antimicrobial activity with minimal hemolytic activity and cytotoxicity, suggesting that it possesses great cell selectivity. Scanning electron microscopy (SEM), transmission electron microscopy (TEM), fluorescence spectroscopy, and flow cytometry indicated that representative peptides WK3 and WK4 exert their activities by permeabilizing the microbial membrane and damaging cell membrane integrity. This study reveals the application potential of the designed peptides as promising antimicrobial agents for the control of infectious diseases, and it also provides new insights into the design and optimization of highly stable beta-hairpin AMPs with great antimicrobial activities and cell selectivities.
机译:具有两亲性β-发夹结构的抗菌肽(AMP)已被证明具有有效的抗菌活性和极大的细胞选择性。然而,我们对β-发夹抗菌肽的理解落后于α-螺旋,主要是因为短肽难以形成坚固的β-发夹结构。色氨酸拉链(trpzip)肽是已知最稳定的β-发夹肽,可自发折叠而无需共价二硫键约束或金属结合。为了开发具有小尺寸和出色稳定性的模型β-发夹型AMP,基于trpzip母题设计了一系列两亲线性肽。设计的肽序列为(WK)(n)(D)PG(KW)(n)-NH2(n = 1,2,3,4,5),其抗菌活性和膜相互作用机理为评估。结果表明,这些肽在水性和膜模拟环境中容易折叠成β-发夹结构,并且对革兰氏阳性和革兰氏阴性细菌均具有广谱抗菌活性。肽的抗菌能力最初随着链长的增加而增加,然后降低。 WK3,一种14个残基的肽,具有极好的抗微生物活性,同时具有最小的溶血活性和细胞毒性,表明它具有很大的细胞选择性。扫描电子显微镜(SEM),透射电子显微镜(TEM),荧光光谱和流式细胞术表明,代表性的肽WK3和WK4通过透化微生物膜并破坏细胞膜完整性发挥其活性。这项研究揭示了设计的肽作为有望用于控制传染病的抗菌剂的应用潜力,并且还为具有出色的抗菌活性和细胞选择性的高度稳定的β-发夹型AMP的设计和优化提供了新的见识。

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