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通过在特定结构框架内调节疏水性来优化环肽中的微生物特异性。

Optimization of microbial specificity in cyclic peptides by modulation of hydrophobicity within a defined structural framework.

作者信息

Kondejewski Leslie H, Lee Darin L, Jelokhani-Niaraki Masood, Farmer Susan W, Hancock Robert E W, Hodges Robert S

机构信息

Protein Engineering Network of Centres of Excellence, University of Alberta, Edmonton, Alberta T6G 2S2, Canada.

出版信息

J Biol Chem. 2002 Jan 4;277(1):67-74. doi: 10.1074/jbc.M107825200. Epub 2001 Oct 26.

Abstract

In the present study we have utilized the structural framework of the analog GS14K4 (cyclo(VKLd-KVd-YPL KVKLd-YP, where d denotes a d-amino acid)), to examine the role of hydrophobicity in microbial activity and specificity. The hydrophobicity of GS14K4 was systematically altered by residue replacements in the hydrophobic sites of the molecule to produce a series of analogs that were either less or more hydrophobic than the parent compound. Circular dichroism spectroscopy and reversed-phase high performance liquid chromatography analysis showed that the molecules were structurally similar and only differed in overall hydrophobicity. The hydrophobicity of GS14K4 was found to be the midpoint for hemolytic activity, with more hydrophobic analogs exhibiting increased hemolytic activity and less hydrophobic analogs showing decreased hemolytic activity. For antimicrobial activity there were differences between the hydrophobicity requirements against Gram-positive and Gram-negative microorganisms. The hydrophobicity of GS14K4 was sufficient for maximum activity against Gram-negative microorganisms and yeast, with no further increases in activity occurring with increasing hydrophobicity. With Gram-positive microorganisms significant increases in activity with increasing hydrophobicity were seen in three of the six microorganisms tested. A therapeutic index (calculated as a measure of specificity of the peptides for the microorganisms over human erythrocytes) served to define the boundaries of a therapeutic window within which lay the optimum peptide hydrophobicity for each microorganism. The therapeutic window was found to be at a lower hydrophobicity level for Gram-negative microorganisms than for Gram-positive microorganisms, although the limits were more variable for the latter. Our results show that the balance between activity and specificity in the present cyclic peptides can be optimized for each microorganism by systematic modulation of hydrophobicity.

摘要

在本研究中,我们利用类似物GS14K4(环(VKLd-KVd-YPL KVKLd-YP,其中d表示d-氨基酸))的结构框架,来研究疏水性在微生物活性和特异性中的作用。通过替换分子疏水位点中的残基,系统地改变了GS14K4的疏水性,从而产生了一系列比母体化合物疏水性更强或更弱的类似物。圆二色光谱和反相高效液相色谱分析表明,这些分子在结构上相似,只是总体疏水性有所不同。发现GS14K4的疏水性是溶血活性的中点,疏水性更强的类似物表现出更高的溶血活性,而疏水性更弱的类似物则表现出更低的溶血活性。对于抗菌活性,针对革兰氏阳性菌和革兰氏阴性菌的疏水性要求存在差异。GS14K4的疏水性足以对革兰氏阴性菌和酵母产生最大活性,随着疏水性增加,活性不再进一步提高。对于革兰氏阳性菌,在所测试的六种微生物中有三种随着疏水性增加活性显著提高。治疗指数(计算为肽对微生物相对于人红细胞的特异性的量度)用于定义治疗窗口的边界,在该窗口内存在每种微生物的最佳肽疏水性。发现革兰氏阴性菌的治疗窗口疏水性水平低于革兰氏阳性菌,尽管后者的界限更具变化性。我们的结果表明,通过系统调节疏水性,可以针对每种微生物优化当前环肽中活性和特异性之间的平衡。

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