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首页> 外文期刊>Journal of Biomolecular Structure and Dynamics >Elucidating the structural and conformational factors responsible for the activity and substrate specificity of alkanesulfonate monooxygenase
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Elucidating the structural and conformational factors responsible for the activity and substrate specificity of alkanesulfonate monooxygenase

机译:阐明负责链烷磺酸单加氧酶活性和底物特异性的结构和构象因素

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The mechanism and substrate specificity of alkanesulfonate monooxygenase (SsuD) was investigated by combining molecular dynamics simulations, docking, and a comprehensive quantitative structure activity relationships (QSAR) analysis. The FMNH 2 dependent monooxygenase undergoes a dynamic conformational change of the active site, passing from a closed to an open state. As a consequence, substrates have access to the active site and the cofactor is then regenerated by the associated oxidoreductase FMN reductase SsuE. Computational analysis of the interaction of SsuD with FMNH 2 based on molecular docking and multiple 20 ns molecular dynamics simulations pointed out that the conformational change is mainly driven by salt bridge formation between Arg297 and Glu20 or Asp111. A set of substrates accepted by SsuD were described by means of ALMOND chemical descriptors and a partial least square (PLS) mathematical model was constructed. The PLS model correlates the structure of substrates and enzyme activity, namely kinetic properties (k cat/K M). Therefore, information coming from the PLS analysis goes beyond the simple ability of the enzyme to recognize the substrate, but includes the factors that affect the capacity of the enzyme to reduce the activation energy of the rate determining step of the reaction. The two principal components of the model are able to describe both steric and electronic factors and, more importantly, their interactions. Indeed, interactions of factors appear to affect significantly the ability of SsuD of transforming efficiently a substrate.
机译:通过结合分子动力学模拟,对接和全面的定量结构活性关系(QSAR)分析,研究了链烷磺酸单加氧酶(SsuD)的机理和底物特异性。 FMNH 2依赖性单加氧酶经历了活性位点的动态构象变化,从封闭状态变为开放状态。结果,底物可接近活性位点,然后辅因子通过相关的氧化还原酶FMN还原酶SsuE再生。基于分子对接和多个20 ns分子动力学模拟的SsuD与FMNH 2相互作用的计算分析指出,构象变化主要由Arg297与Glu20或Asp111之间的盐桥形成驱动。借助于ALMOND化学描述符描述了SsuD接受的一组底物,并构建了偏最小二乘(PLS)数学模型。 PLS模型将底物的结构和酶活性,即动力学性质(k cat / K M)相关联。因此,来自PLS分析的信息超出了酶识别底物的简单能力,但包括影响酶降低反应速率确定步骤的活化能的能力的因素。该模型的两个主要组成部分能够描述空间因素和电子因素,更重要的是它们之间的相互作用。实际上,因素的相互作用似乎显着影响SsuD有效转化底物的能力。

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