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分枝杆菌属 2′-氨基糖苷乙酰转移酶的结构和生化分析。

Structural and biochemical analyses of an aminoglycoside 2'-N-acetyltransferase from Mycolicibacterium smegmatis.

机构信息

Research Unit of Cryogenic Novel Material, Korea Polar Research Institute, Incheon, 21990, Republic of Korea.

Department of Polar Sciences, University of Science and Technology, Incheon, 21990, Republic of Korea.

出版信息

Sci Rep. 2020 Dec 9;10(1):21503. doi: 10.1038/s41598-020-78699-z.

Abstract

The expression of aminoglycoside-modifying enzymes represents a survival strategy of antibiotic-resistant bacteria. Aminoglycoside 2'-N-acetyltransferase [AAC(2')] neutralizes aminoglycoside drugs by acetylation of their 2' amino groups in an acetyl coenzyme A (CoA)-dependent manner. To understand the structural features and molecular mechanism underlying AAC(2') activity, we overexpressed, purified, and crystallized AAC(2') from Mycolicibacterium smegmatis [AAC(2')-Id] and determined the crystal structures of its apo-form and ternary complexes with CoA and four different aminoglycosides (gentamicin, sisomicin, neomycin, and paromomycin). These AAC(2')-Id structures unraveled the binding modes of different aminoglycosides, explaining the broad substrate specificity of the enzyme. Comparative structural analysis showed that the α4-helix and β8-β9 loop region undergo major conformational changes upon CoA and substrate binding. Additionally, structural comparison between the present paromomycin-bound AAC(2')-Id structure and the previously reported paromomycin-bound AAC(6')-Ib and 30S ribosome structures revealed the structural features of paromomycin that are responsible for its antibiotic activity and AAC binding. Taken together, these results provide useful information for designing AAC(2') inhibitors and for the chemical modification of aminoglycosides.

摘要

氨基糖苷修饰酶的表达代表了抗生素耐药细菌的一种生存策略。氨基糖苷 2′-N-乙酰转移酶(AAC(2'))通过在乙酰辅酶 A (CoA)的依赖方式乙酰化其 2'氨基基团来中和氨基糖苷类药物。为了了解 AAC(2')活性的结构特征和分子机制,我们从耻垢分枝杆菌中过表达、纯化和结晶了 AAC(2')(AAC(2')-Id),并确定了其apo 形式和与 CoA 以及四种不同氨基糖苷类(庆大霉素、西索米星、新霉素和巴龙霉素)的三元复合物的晶体结构。这些 AAC(2')-Id 结构揭示了不同氨基糖苷类的结合模式,解释了该酶广泛的底物特异性。比较结构分析表明,α4-螺旋和β8-β9 环区在 CoA 和底物结合时发生主要构象变化。此外,将当前结合有巴龙霉素的 AAC(2')-Id 结构与先前报道的结合有巴龙霉素的 AAC(6')-Ib 和 30S 核糖体结构进行结构比较,揭示了巴龙霉素负责其抗生素活性和 AAC 结合的结构特征。总之,这些结果为设计 AAC(2')抑制剂和氨基糖苷类的化学修饰提供了有用的信息。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f0bd/7725843/616e23ced6a7/41598_2020_78699_Fig1_HTML.jpg

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