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通过棘孢小单孢菌的genN基因破坏菌株生物合成3″-去甲基庆大霉素C组分并体外测试其抗菌活性。

Biosynthesis of 3″-demethyl-gentamicin C components by genN disruption strain of Micromonospora echinospora and test their antimicrobial activities in vitro.

作者信息

Ni Xianpu, Zong Tingting, Zhang Hongyu, Gu Yawen, Huang Miaoling, Tian Wei, Xia Huanzhang

机构信息

School of Life Science and Biopharmaceutics, Shenyang Pharmaceutical University, Shenyang, Liaoning, China.

School of Life Science and Biopharmaceutics, Shenyang Pharmaceutical University, Shenyang, Liaoning, China.

出版信息

Microbiol Res. 2016 Apr;185:36-44. doi: 10.1016/j.micres.2016.01.005. Epub 2016 Jan 28.

Abstract

Gentamicin consists primarily of four components, which have different patterns of methylation at C-6' position. The methyl groups have a significant impact on gentamicin antimicrobial activity. Sequence analysis predicted that GenN was a methyltransferase in the gentamicin biosynthetic pathway. To study the function of genN, it was disrupted in Micromonospora echinospora. The genN disruption strains produced 3″-N-demethyl-gentamicin C complex instead of the gentamicin C complex. In this study, 3″-N-demethyl gentamicin C1a was purified from the broth of disruption strain, and its structure was elucidated using MS and NMR. Besides 3″-N-demethyl products corresponding to gentamicin C1a, C2, and C2a, two 3″-N-demethyl products corresponding to gentamicin C1 were detected, which were concluded as C-6' epimers originating from decreased substrate specificity of 6'-N methyltransferase. To explore the effects of 3″-N-methyl on gentamicin antimicrobial activity, antimicrobial activity of these demethyl gentamicin analogues were tested in vitro. 3″-N-Demethyl gentamicin components have identical activity with corresponding components of gentamicin. The results of bioassays showed that the 3″-N-methyl group has little impact on gentamicin activity. However, these highly bioactive compounds afforded a unique opportunity for creating new and high potent aminoglycoside antibiotics.

摘要

庆大霉素主要由四种组分组成,它们在C-6'位具有不同的甲基化模式。甲基对庆大霉素的抗菌活性有显著影响。序列分析预测GenN是庆大霉素生物合成途径中的一种甲基转移酶。为了研究genN的功能,在棘孢小单孢菌中对其进行了破坏。genN破坏菌株产生的是3″-N-去甲基庆大霉素C复合物而非庆大霉素C复合物。在本研究中,从破坏菌株的发酵液中纯化出了3″-N-去甲基庆大霉素C1a,并利用质谱和核磁共振对其结构进行了阐明。除了与庆大霉素C1a、C2和C2a相对应的3″-N-去甲基产物外,还检测到了两种与庆大霉素C1相对应的3″-N-去甲基产物,它们被认为是6'-N甲基转移酶底物特异性降低产生的C-6'差向异构体。为了探究3″-N-甲基对庆大霉素抗菌活性的影响,对这些去甲基庆大霉素类似物的抗菌活性进行了体外测试。3″-N-去甲基庆大霉素组分与庆大霉素的相应组分具有相同的活性。生物测定结果表明,3″-N-甲基对庆大霉素活性影响很小。然而,这些高生物活性化合物为创制新型高效氨基糖苷类抗生素提供了独特的机会。

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