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家蚕抗菌肽 cecropin A 的抗菌机制和构效关系。

Antibacterial mechanism and structure-activity relationships of Bombyx mori cecropin A.

机构信息

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.

出版信息

Insect Mol Biol. 2024 Dec;33(6):708-721. doi: 10.1111/imb.12934. Epub 2024 Jun 19.

Abstract

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.

摘要

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。

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