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糖肽类抗生素的六肽衍生物:作用机制研究工具

Hexapeptide derivatives of glycopeptide antibiotics: tools for mechanism of action studies.

作者信息

Allen Norris E, LeTourneau Deborah L, Hobbs Joe N, Thompson Richard C

机构信息

Infectious Diseases Research, Eli Lilly & Company, 14812 E. 77th Street, Indianapolis, IN 46240.

出版信息

Antimicrob Agents Chemother. 2002 Aug;46(8):2344-8. doi: 10.1128/AAC.46.8.2344-2348.2002.

Abstract

Hexapeptide (des-N-methylleucyl) derivatives of LY264826 were prepared in order to examine further the role of N-substituted hydrophobic side chains in defining the mechanisms of action of semisynthetic glycopeptide antibiotics. The hexapeptide of LY264826 binds to the cell wall intermediate analog L-Lys-D-Ala-D-Ala with a 100-fold lower affinity than LY264826 and inhibits Micrococcus luteus almost 200-fold more poorly than LY264826 does. Alkylation of the 4-epi-vancosamine moiety of the disaccharide significantly enhanced the antibacterial activity of the hexapeptide. Alkylation did not affect the binding affinity for D-alanyl-D-alanine residues; however, it did enhance dimerization 7,000-fold and enhanced binding to bacterial membrane vesicles noticeably compared with the levels of dimerization and binding for the unsubstituted hexapeptide. The findings from this study complement those presented in an earlier report (N. E. Allen, D. L. LeTourneau, and J. N. Hobbs, Jr., J. Antibiot. 50:677-684, 1997) and are consistent with the conclusion that the enhanced antibacterial activities of semisynthetic glycopeptide antibiotics derive from the ability of the hydrophobic side chain to markedly affect both dimerization and binding to bacterial membranes.

摘要

制备了LY264826的六肽(去N-甲基亮氨酰)衍生物,以进一步研究N-取代疏水侧链在确定半合成糖肽抗生素作用机制中的作用。LY264826的六肽与细胞壁中间体类似物L-赖氨酸-D-丙氨酸-D-丙氨酸结合,其亲和力比LY264826低100倍,对藤黄微球菌的抑制作用比LY264826差近200倍。二糖的4-表万古糖胺部分的烷基化显著增强了六肽的抗菌活性。烷基化不影响对D-丙氨酰-D-丙氨酸残基的结合亲和力;然而,与未取代的六肽的二聚化和结合水平相比,它确实使二聚化增强了7000倍,并显著增强了与细菌膜囊泡的结合。本研究的结果补充了早期报告(N.E.Allen、D.L.LeTourneau和J.N.Hobbs,Jr.,J.Antibiot.50:677-684,1997)中的结果,并且与以下结论一致:半合成糖肽抗生素增强的抗菌活性源自疏水侧链显著影响二聚化和与细菌膜结合的能力。

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