School of Biology and Biological Engineering, South China University of Technology, Guangzhou, 510006, China.
Guangdong Key Laboratory of Fermentation and Enzyme Engineering, School of Biology and Biological Engineering, South China University of Technology, Guangzhou, 510006, China.
Appl Microbiol Biotechnol. 2019 Feb;103(4):1765-1775. doi: 10.1007/s00253-018-09592-z. Epub 2019 Jan 4.
In recent years, antimicrobial peptides have received increased interest and are potential substitutes for antibiotics. However, natural antimicrobial peptides are always toxic to mammalian cells and usually exhibit weak antibacterial activity, which restrict their wide application. In this study, a novel antibacterial peptide named PEW300 was designed with three mutations to the parental peptide cecropin A. As predicted by bioinformatic programs, the positive charge of PEW300 increased from + 6 to + 9 compared with cecropin A, and the grand average of hydropathicity increased from - 0.084 to - 0.008. Expression of PEW300 resulted in serious inhibition of Escherichia coli BL21(DE3) cells, indicating designed PEW300 may have stronger antibacterial activity. A simple, fast, and low-cost approach without tedious protein purification steps was selected for the efficient production of PEW300 by fusion with ELK16 and about 7.38 μg/mg wet cell weight PEW300 was eventually obtained. Purified PEW300 exhibited strong antibacterial activity against various Gram-positive and Gram-negative bacteria which was enhanced four- to sevenfold compared with the parental peptide cecropin A. Besides, PEW300 had no hemolytic activity toward mammalian cells even at high concentration (224 ng/μl). PEW300 showed good stability in neutral and alkaline solutions. Moreover, PEW300 was thermally stable even at up to 100 °C and resistant to proteinase K, pepsin, snailase, and trypsin. The incubation with human serum had no effect on the antibacterial activity of PEW300. All these results demonstrated that PEW300 designed in this work may have good potential as a candidate pharmaceutical agent.
近年来,抗菌肽受到了越来越多的关注,是抗生素的潜在替代品。然而,天然抗菌肽对哺乳动物细胞总是有毒的,通常表现出较弱的抗菌活性,这限制了它们的广泛应用。在这项研究中,设计了一种新型抗菌肽 PEW300,对亲本肽 Cecropin A 进行了 3 处突变。生物信息学程序预测,PEW300 的正电荷从 Cecropin A 的+6 增加到+9,平均疏水性从-0.084 增加到-0.008。PEW300 的表达导致大肠杆菌 BL21(DE3)细胞严重抑制,表明设计的 PEW300 可能具有更强的抗菌活性。选择了一种简单、快速、低成本的方法,无需繁琐的蛋白纯化步骤,通过与 ELK16 融合表达 PEW300,最终获得了约 7.38μg/mg 湿细胞重的 PEW300。纯化的 PEW300 对各种革兰氏阳性和革兰氏阴性细菌表现出强烈的抗菌活性,与亲本肽 Cecropin A 相比增强了 4 到 7 倍。此外,PEW300 即使在高浓度(224ng/μl)下对哺乳动物细胞也没有溶血活性。PEW300 在中性和碱性溶液中具有良好的稳定性。此外,PEW300 即使在高达 100°C 的温度下也很稳定,并且能够抵抗蛋白酶 K、胃蛋白酶、蜗牛酶和胰蛋白酶。与人血清孵育对 PEW300 的抗菌活性没有影响。所有这些结果表明,本研究设计的 PEW300 可能具有作为候选药物的良好潜力。