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蜂毒溶血肽衍生抗菌肽的快速杀菌动力学、显著的治疗指数和高稳定性。

Fast killing kinetics, significant therapeutic index, and high stability of melittin-derived antimicrobial peptide.

作者信息

Akbari Reza, Hakemi Vala Mojdeh, Sabatier Jean-Marc, Pooshang Bagheri Kamran

机构信息

Department of Microbiology, Faculty of Medicine, Urmia University of Medical Sciences, Urmia, West Azerbaijan, Iran.

Department of Microbiology, Faculty of Medicine, Shahid Beheshti University of Medical Sciences, Tehran, Iran.

出版信息

Amino Acids. 2022 Sep;54(9):1275-1285. doi: 10.1007/s00726-022-03180-2. Epub 2022 Jul 2.

Abstract

The emergence of multidrug-resistant (MDR) bacteria is a major challenge for antimicrobial chemotherapy. Concerning this issue, antimicrobial peptides (AMPs) have been presented as novel promising antibiotics. Our previous de novo designed melittin-derived peptides (MDP1 and MDP2) indicated their potential as peptide drug leads. Accordingly, this study was aimed to evaluate the kinetics of activity, toxicity, and stability of MDP1 and MDP2 as well as determination of their structures. The killing kinetics of MDP1 and MDP2 demonstrate that all bacterial strains were rapidly killed. MDP1 and MDP2 were ca. 100- and 26.6-fold less hemolytic than melittin and found to be respectively 72.9- and 41.6-fold less cytotoxic than melittin on the HEK293 cell line. MDP1 and MDP2 showed 252- and 132-fold improvement in their therapeutic index in comparison to melittin. MDP1 and MDP2 sustained their activities in the presence of human plasma and were found to be ca. four to eightfold more stable than melittin. Spectropolarimetry analysis of MDP1 and MDP2 indicates that the peptides adopt an alpha-helical structure predominantly. According to the fast killing kinetics, significant therapeutic index, and high stability of MDP1, it could be considered as a drug lead in a mouse model of septicemia infections.

摘要

多重耐药(MDR)细菌的出现是抗微生物化疗面临的一项重大挑战。针对这一问题,抗菌肽(AMPs)已被视为有前景的新型抗生素。我们之前通过从头设计得到的蜂毒肽衍生肽(MDP1和MDP2)显示出它们作为肽类药物先导物的潜力。因此,本研究旨在评估MDP1和MDP2的活性动力学、毒性和稳定性,并确定它们的结构。MDP1和MDP2的杀菌动力学表明,所有细菌菌株均被迅速杀灭。MDP1和MDP2的溶血活性分别比蜂毒肽低约100倍和26.6倍,并且在HEK293细胞系上的细胞毒性分别比蜂毒肽低72.9倍和41.6倍。与蜂毒肽相比,MDP1和MDP2的治疗指数分别提高了252倍和132倍。MDP1和MDP2在人血浆存在的情况下仍能保持其活性,并且发现它们的稳定性比蜂毒肽高约4至8倍。对MDP1和MDP2的圆二色光谱分析表明,这些肽主要采用α-螺旋结构。根据MDP1快速的杀菌动力学、显著的治疗指数和高稳定性,它可被视为败血症感染小鼠模型中的一种药物先导物。

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