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首页> 外文期刊>Molecular BioSystems >The unique functional role of the C-H...S hydrogen bond in the substrate specificity and enzyme catalysis of type 1 methionine aminopeptidase
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The unique functional role of the C-H...S hydrogen bond in the substrate specificity and enzyme catalysis of type 1 methionine aminopeptidase

机译:C-H ... S氢键在底物特异性和1型蛋氨酸氨基肽酶的酶催化中的独特功能

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摘要

It is intriguing how nature attains recognition specificity between molecular interfaces where there is no apparent scope for classical hydrogen bonding or polar interactions. Methionine aminopeptidase (MetAP) is one such enzyme where this fascinating conundrum is at play. In this study, we demonstrate that a unique C-H...S hydrogen bond exists between the enzyme methionine aminopeptidase (MetAP) and its N-terminal-methionine polypeptide substrate, which allows specific interaction between apparent apolar interfaces, imposing a strict substrate recognition specificity and efficient catalysis, a feature replicated in Type I MetAPs across all kingdoms of life. We evidence this evolutionary conserved C-H...S hydrogen bond through enzyme assays on wild-type and mutant MetAP proteins from Mycobacterium tuberculosis that show a drastic difference in catalytic efficiency. The X-ray crystallographic structure of the methionine bound protein revealed a conserved water bridge and short contacts involving the Met side-chain, a feature also observed in MetAPs from other organisms. Thermal shift assays showed a remarkable 3.3 ℃ increase in melting temperature for methionine bound protein compared to its norleucine homolog, where C-H...S interaction is absent. The presence of C-H...S hydrogen bonding was also corroborated by nuclear magnetic resonance spectroscopy through a change in chemical shift. Computational chemistry studies revealed the unique role of the electrostatic environment in facilitating the C-H...S interaction. The significance of this atypical hydrogen bond is underscored by the fact that the function of MetAP is essential for any living cell.
机译:令人感兴趣的是,自然界如何在分子界面之间获得识别特异性,而经典的氢键或极性相互作用没有明显的范围。蛋氨酸氨基肽酶(MetAP)就是这种令人着迷的难题所在。在这项研究中,我们证明了蛋氨酸氨基肽酶(MetAP)和其N末端甲硫氨酸多肽底物之间存在一个独特的CH ... S氢键,从而允许表观非极性界面之间发生特异性相互作用,从而施加了严格的底物识别特异性高效催化,这是在所有生命王国中的I型MetAP中都具有的功能。我们通过对结核分枝杆菌的野生型和突变型MetAP蛋白进行酶法测定来证明这种进化保守的C-H ... S氢键,其催化效率存在显着差异。蛋氨酸结合蛋白的X射线晶体学结构揭示了保守的水桥和涉及Met侧链的短接触,这也是在其他生物的MetAP中观察到的特征。热位移分析表明,与不存在C-H ... S相互作用的正亮氨酸同系物相比,蛋氨酸结合蛋白的熔化温度显着提高了3.3℃。通过化学位移的变化,核磁共振波谱也证实了C-H ... S氢键的存在。计算化学研究揭示了静电环境在促进C-H ... S相互作用中的独特作用。 MetAP的功能对任何活细胞都是必不可少的,这一事实突出了这种非典型氢键的重要性。

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  • 来源
    《Molecular BioSystems》 |2016年第8期|2408-2416|共9页
  • 作者单位

    Centre for Chemical Biology, CSIR-Indian Institute of Chemical Technology, Hyderabad 500 007, Telangana, India;

    Centre for NMR and Structural Chemistry, CSIR-Indian Institute of Chemical Technology, Hyderabad 500 007, Telangana, India;

    Department of Computational and Data Sciences, Indian Institute of Science, Bangalore 560 012, Kamataka, India;

    Centre for Chemical Biology, CSIR-Indian Institute of Chemical Technology, Hyderabad 500 007, Telangana, India;

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