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Simultaneous engineering of an enzymes entrance tunnel and active site: the case of monoamine oxidase MAO-N

机译:酶的入口通道和活性位点的同时工程:单胺氧化酶MAO-N的情况

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摘要

A new directed evolution approach is presented to enhance the activity of an enzyme and to manipulate stereoselectivity by focusing iterative saturation mutagenesis (ISM) simultaneously on residues lining the entrance tunnel and the binding pocket. This combined mutagenesis strategy was applied successfully to the monoamine oxidase from Aspergillus niger (MAO-N) in the reaction of sterically demanding substrates which are of interest in the synthesis of chiral pharmaceuticals based on the benzo-piperidine scaffold. Reversal of enantioselectivity of Turner-type deracemization was achieved in the synthesis of (S)-1,2,3,4-tetrahydro-1-methyl-isoquinoline, (S)-1,2,3,4-tetrahydro-1-ethylisoquinoline and (S)-1,2,3,4-tetrahydro-1-isopropylisoquinoline. Extensive molecular dynamics simulations indicate that the altered catalytic profile is due to increased hydrophobicity of the entrance tunnel acting in concert with the altered shape of the binding pocket.
机译:提出了一种新的定向进化方法,以通过同时将迭代饱和诱变(ISM)集中在进入通道和结合袋内衬的残基上来增强酶的活性并操纵立体选择性。这种组合的诱变策略已成功应用于黑曲霉(MAO-N)的单胺氧化酶,用于空间需求型底物的反应,这在基于苯并哌啶骨架的手性药物的合成中是有意义的。在合成(S)-1,2,3,4-四氢-1-甲基-异喹啉,(S)-1,2,3,4-四氢-1中实现了特纳型脱硝对映体选择性的逆转。乙基异喹啉和(S)-1,2,3,4-四氢-1-异丙基异喹啉。广泛的分子动力学模拟表明,改变的催化分布是由于入口通道疏水性的增加与结合口袋形状的改变共同作用。

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