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溶菌酶活性位点裂隙上唇的一个螺旋-环-螺旋肽具有强大的抗菌活性并伴有膜通透作用。

A helix-loop-helix peptide at the upper lip of the active site cleft of lysozyme confers potent antimicrobial activity with membrane permeabilization action.

作者信息

Ibrahim H R, Thomas U, Pellegrini A

机构信息

Department of Biochemistry and Biotechnology, Faculty of Agriculture, Kagoshima University, Kagoshima 890-0065, Japan.

出版信息

J Biol Chem. 2001 Nov 23;276(47):43767-74. doi: 10.1074/jbc.M106317200. Epub 2001 Sep 17.

Abstract

Recently, we have found that partially unfolded lysozyme exerts broad spectrum antimicrobial action in vitro against Gram-negative and Gram-positive bacteria independent of its catalytic activity. In parallel, an internal peptide (residues 98-112) of hen egg white lysozyme, obtained after digestion with clostripain, possessed broad spectrum antimicrobial action in vitro. This internal peptide is part of a helix-loop-helix domain (87-114 sequence of hen lysozyme) located at the upper lip of the active site cleft of lysozyme. The helix-loop-helix (HLH) structures are known motifs commonly found in membrane-active and DNA-binding proteins. To evaluate the contribution of the HLH peptide to the antimicrobial properties of lysozyme, the HLH sequence and its secondary structure derivatives of chicken and human lysozyme were synthesized and tested for antimicrobial activity against several bacterial strains. We found that the full HLH peptide of both chicken and human lysozymes was potently microbicidal against both Gram-positive and Gram-negative bacteria and the fungus Candida albicans. The N-terminal helix of HLH was specifically bactericidal to Gram-positive bacteria, whereas the C-terminal helix was bactericidal to all tested strains. Outer and inner membrane permeabilization studies, as well as measurements of transmembrane electrochemical potentials, provided evidence that HLH peptide and its C-terminal helix domain kill Gram-negative bacteria by crossing the outer membrane via self-promoted uptake and causing damage to the inner membrane through channel formation. The results are discussed in terms of proposed mechanisms for the catalytically independent antimicrobial activity of lysozyme that offer a new strategy for the design of potential antimicrobial drugs in the treatment of infectious diseases.

摘要

最近,我们发现部分未折叠的溶菌酶在体外对革兰氏阴性菌和革兰氏阳性菌具有广谱抗菌作用,且与其催化活性无关。与此同时,经梭菌蛋白酶消化后获得的鸡卵清溶菌酶内部肽段(第98 - 112位氨基酸残基)在体外也具有广谱抗菌作用。该内部肽段是位于溶菌酶活性位点裂隙上唇的螺旋 - 环 - 螺旋结构域(鸡溶菌酶第87 - 114位氨基酸序列)的一部分。螺旋 - 环 - 螺旋(HLH)结构是常见于膜活性蛋白和DNA结合蛋白中的基序。为了评估HLH肽对溶菌酶抗菌特性的贡献,我们合成了鸡和人溶菌酶的HLH序列及其二级结构衍生物,并测试了它们对几种细菌菌株的抗菌活性。我们发现鸡和人溶菌酶的完整HLH肽对革兰氏阳性菌、革兰氏阴性菌以及白色念珠菌均具有强效杀菌作用。HLH的N端螺旋对革兰氏阳性菌具有特异性杀菌作用,而C端螺旋对所有测试菌株均有杀菌作用。外膜和内膜通透性研究以及跨膜电化学电位测量结果表明,HLH肽及其C端螺旋结构域通过自我促进摄取穿过外膜,并通过形成通道对内膜造成损伤,从而杀死革兰氏阴性菌。我们从溶菌酶催化独立抗菌活性的潜在机制方面对这些结果进行了讨论,这为设计治疗传染病的潜在抗菌药物提供了新策略。

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