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Biochemical and biophysical combined study of bicarinalin, an ant venom antimicrobial peptide

机译:毒液抗菌肽双卡那林的生化和生物物理联合研究

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We have recently characterized bicarinalin as the most abundant peptide from the venom of the ant Tetramorium bicarinatum. This antimicrobial peptide is active against Staphylococcus and Enterobacteriaceae. To further investigate the antimicrobial properties of this cationic and cysteine-free peptide, we have studied its antibacterial, antifungal and antiparasitic activities on a large array of microorganisms. Bicarinalin was active against fifteen microorganisms with minimal inhibitory concentrations ranging from 2 and 25 mol L-1. Cronobacter sakazakii, Salmonella enterica, Candida albicans, Aspergilus niger and Saccharomyces cerevisiae were particularly susceptible to this novel antimicrobial peptide. Resistant strains of Staphylococcus aureus, Pseudomonas aeruginosa and C. albicans were as susceptible as the canonical strains. Interestingly, bicarinalin was also active against the parasite Leishmania infantum with a minimal inhibitory concentrations of 2 mol L-1. The bicarinalin pre-propeptide cDNA sequence has been determined using a combination of degenerated primers with RACE PCR strategy. Interestingly, the N-terminal domain of bicarinalin pre-propeptide exhibited sequence similarity with the pilosulin antimicrobial peptide family previously described in the Myrmecia venoms. Moreover, using SYTOX green uptake assay, we showed that, for all the tested microorganisms, bicarinalin acted through a membrane permeabilization mechanism. Two dimensional-NMR experiments showed that bicarinalin displayed a 10 residue-long a-helical structure flanked by two N- and C-terminal disordered regions. This partially amphipathic helix may explain the membrane permeabilization mechanism of bicarinalin observed in this study. Finally, therapeutic value of bicarinalin was highlighted by its low cytotoxicity against human lymphocytes at bactericidal concentrations and its long half-life in human serum which was around 15 h. (C) 2016 Elsevier Inc. All rights reserved.
机译:我们最近已将比卡里纳林定性为蚂蚁四叶螨的毒液中含量最丰富的肽。该抗菌肽对葡萄球菌和肠杆菌科有活性。为了进一步研究这种阳离子和无半胱氨酸的肽的抗菌特性,我们已经研究了其对多种微生物的抗菌,抗真菌和抗寄生虫活性。 Bicarinalin对15种微生物具有抑制活性,最小抑制浓度范围为2至25 mol L-1。阪崎肠杆菌,肠炎沙门氏菌,白色念珠菌,黑曲霉和酿酒酵母对这种新型抗菌肽特别敏感。金黄色葡萄球菌,铜绿假单胞菌和白色念珠菌的抗性菌株与标准菌株一样易感。有趣的是,双香豆素还具有最小抑制浓度2 mol L-1的活性,可对抗婴儿利什曼原虫。已使用简并引物与RACE PCR策略结合确定了双香豆素前原肽cDNA序列。有趣的是,双香豆素前原肽的N-末端结构域与先前在肉豆蔻毒液中描述的菌毛蛋白抗菌肽家族表现出序列相似性。此外,使用SYTOX绿色吸收测定法,我们表明,对于所有测试的微生物,双香豆素都通过膜透化机制起作用。二维NMR实验表明,双香叶素显示出10个残基长的a螺旋结构,两侧是两个N和C端无序区域。这种部分两亲的螺旋可能解释了本研究中观察到的双香豆素的膜通透性机制。最后,双杀菌素的治疗价值突出在于其在杀菌浓度下对人淋巴细胞的低细胞毒性和在人血清中的长半衰期约为15小时。 (C)2016 Elsevier Inc.保留所有权利。

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