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一种对苯丙酮和苄基丙酮具有高活性和立体选择性的嗜热栖热菌乙醇脱氢酶突变衍生物。

A Thermoanaerobacter ethanolicus secondary alcohol dehydrogenase mutant derivative highly active and stereoselective on phenylacetone and benzylacetone.

作者信息

Ziegelmann-Fjeld Karla I, Musa Musa M, Phillips Robert S, Zeikus J Gregory, Vieille Claire

机构信息

Department of Biochemistry and Molecular Biology, Michigan State University, 410 Biochemistry Building, East Lansing, MI 48824-1319, USA.

出版信息

Protein Eng Des Sel. 2007 Feb;20(2):47-55. doi: 10.1093/protein/gzl052. Epub 2007 Feb 5.

Abstract

The secondary alcohol dehydrogenase from Thermoanaerobacter ethanolicus 39E (TeSADH) is highly thermostable and solvent-stable, and it is active on a broad range of substrates. These properties make TeSADH an excellent template to engineer an industrial catalyst for chiral chemical synthesis. (S)-1-Phenyl-2-propanol was our target product because it is a precursor to major pharmaceuticals containing secondary alcohol groups. TeSADH has no detectable activity on this alcohol, but it is highly active on 2-butanol. The structural model we used to plan our mutagenesis strategy was based on the substrate's orientation in a horse liver alcohol dehydrogenasep-bromobenzyl alcoholNAD(+) ternary complex (PDB entry 1HLD). The W110A TeSADH mutant now uses (S)-1-phenyl-2-propanol, (S)-4-phenyl-2-butanol and the corresponding ketones as substrates. W110A TeSADH's kinetic parameters on these substrates are in the same range as those of TeSADH on 2-butanol, making W110A TeSADH an excellent catalyst. In particular, W110A TeSADH is twice as efficient on benzylacetone as TeSADH is on 2-butanol, and it produces (S)-4-phenyl-2-butanol from benzylacetone with an enantiomeric excess above 99%. W110A TeSADH is optimally active at 87.5 degrees C and remains highly thermostable. W110A TeSADH is active on aryl derivatives of phenylacetone and benzylacetone, making this enzyme a potentially useful catalyst for the chiral synthesis of aryl derivatives of alcohols. As a control in our engineering approach, we used the TbSADH*(S)-2-butanol binary complex (PDB entry 1BXZ) as the template to model a mutation that would make TeSADH active on (S)-1-phenyl-2-propanol. Mutant Y267G TeSADH did not have the substrate specificity predicted in this modeling study. Our results suggest that (S)-2-butanol's orientation in the TbSADH*(S)-2-butanol binary complex does not reflect its orientation in the ternary enzyme-substrate-cofactor complex.

摘要

来自嗜热栖热放线菌39E(TeSADH)的仲醇脱氢酶具有高度的热稳定性和溶剂稳定性,并且对多种底物具有活性。这些特性使TeSADH成为设计用于手性化学合成的工业催化剂的优良模板。(S)-1-苯基-2-丙醇是我们的目标产物,因为它是含有仲醇基团的主要药物的前体。TeSADH对这种醇没有可检测到的活性,但它对2-丁醇具有高活性。我们用于规划诱变策略的结构模型基于底物在马肝醇脱氢酶对溴苄醇NAD(+)三元复合物(PDB条目1HLD)中的取向。W110A TeSADH突变体现在使用(S)-1-苯基-2-丙醇、(S)-4-苯基-2-丁醇和相应的酮作为底物。W110A TeSADH在这些底物上的动力学参数与TeSADH在2-丁醇上的动力学参数处于相同范围内,使W110A TeSADH成为一种优良的催化剂。特别是,W110A TeSADH对苄基丙酮的催化效率是TeSADH对2-丁醇催化效率的两倍,并且它从苄基丙酮产生(S)-4-苯基-2-丁醇,对映体过量超过99%。W110A TeSADH在87.5℃时具有最佳活性,并且保持高度的热稳定性。W110A TeSADH对苯丙酮和苄基丙酮的芳基衍生物具有活性,使这种酶成为醇的芳基衍生物手性合成的潜在有用催化剂。作为我们工程方法的对照,我们使用TbSADH*(S)-2-丁醇二元复合物(PDB条目1BXZ)作为模板来模拟使TeSADH对(S)-1-苯基-2-丙醇具有活性的突变。突变体Y267G TeSADH没有该建模研究中预测的底物特异性。我们的结果表明,(S)-2-丁醇在TbSADH*(S)-2-丁醇二元复合物中的取向不能反映其在三元酶-底物-辅因子复合物中的取向。

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