State Key Laboratory of Green Pesticide, Guizhou University, Guiyang, China.
Key Laboratory of Green Pesticide and Agricultural Bioengineering, Ministry of Education, Guizhou University, Guiyang, China.
Insect Mol Biol. 2024 Dec;33(6):708-721. doi: 10.1111/imb.12934. Epub 2024 Jun 19.
Bombyx mori cecropin A (Bmcecropin A) has antibacterial, antiviral, anti-filamentous fungal and tumour cell inhibition activities and is considered a potential succedaneum for antibiotics. We clarified the antibacterial mechanism and structure-activity relationships and then directed the structure-activity optimization of Bmcecropin A. Firstly, we found Bmcecropin A shows a strong binding force and permeability to cell membranes like a detergent; Bmcecropin A could competitively bind to the cell membrane with the cell membrane-specific dye DiI, then damaged the membrane for the access of DiI into the cytoplasm and leading to the leakage of electrolyte and proteins. Secondly, we found Bmcopropin A could also bind to and degrade DNA; furthermore, DNA library polymerase chain reaction (PCR) results indicated that Bmcecropin A inhibited DNA replication by non-specific binding. In addition, we have identified C-terminus amidation and serine-lysine- glycine (SLG) amino acids of Bmcecropin A played critical roles in the membrane damage and DNA degradation. Based on the above results, we designed a mutant of Bmcecropin A (E to H, D to K, K to A), which showed higher antibacterial activity, thermostability and pH stability than ampicillin but no haemolytic activity. Finally, we speculated that Bmcecropin A damaged the cell membrane through a carpet model and drew the schematic diagram of its antibacterial mechanism, based on the antibacterial mechanism and the three-dimensional configuration. These findings yield insights into the mechanism of antimicrobial peptide-pathogen interaction and beneficial for the development of new antibiotics.
家蚕抗菌肽(Bmcecropin A)具有抗菌、抗病毒、抗丝状真菌和抑制肿瘤细胞的活性,被认为是抗生素的潜在替代品。我们阐明了其抗菌机制和构效关系,并对 Bmcecropin A 进行了结构-活性优化。首先,我们发现 Bmcecropin A 像去污剂一样对细胞膜具有很强的结合力和通透性;Bmcecropin A 可以与细胞膜特异性染料 DiI 竞争结合,然后破坏细胞膜,使 DiI 进入细胞质,导致电解质和蛋白质的渗漏。其次,我们发现 Bmcopropin A 还可以与 DNA 结合并降解;此外,DNA 文库聚合酶链反应(PCR)结果表明,Bmcecropin A 通过非特异性结合抑制 DNA 复制。此外,我们已经确定 Bmcecropin A 的 C 末端酰胺化和丝氨酸-赖氨酸-甘氨酸(SLG)氨基酸在膜损伤和 DNA 降解中起着关键作用。基于上述结果,我们设计了一种 Bmcecropin A 的突变体(E 到 H、D 到 K、K 到 A),其抗菌活性、热稳定性和 pH 稳定性均高于氨苄西林,但没有溶血活性。最后,我们推测 Bmcecropin A 通过地毯模型破坏细胞膜,并根据抗菌机制和三维结构绘制了其抗菌机制的示意图。这些发现深入了解了抗菌肽-病原体相互作用的机制,有利于开发新的抗生素。