首页> 外文期刊>Journal of Agricultural and Food Chemistry >Improvement of Alcaligenes faecalis Nitrilase by Gene Site Saturation Mutagenesis and Its Application in Stereospecifk Biosynthesis of (R)-(-)-Mandelic Acid
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Improvement of Alcaligenes faecalis Nitrilase by Gene Site Saturation Mutagenesis and Its Application in Stereospecifk Biosynthesis of (R)-(-)-Mandelic Acid

机译:基因位点饱和诱变改良产碱菌粪便硝化酶及其在(R)-(-)-扁桃酸立体定向生物合成中的应用

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Nitrilases have recently received considerable attention as the biocatalysts for stereospecifk production of carboxylic acids. To improve the activity, the nitrilase from Alcaligenes faecalis was selected for further modification by the gene site saturation mutagenesis method (GSSM), based on homology modeling and previous reports about mutations. After mutagenesis, the positive mutants were selected using a convenient two-step high-throughput screening method based on product formation and pH indicator combined with the HPLC method. After three rounds of GSSM, Mut3 (Gln196Ser/ Ala284Ile) with the highest activity and ability of tolerance to the substrate was selected. As compared to the wild-type A. faecalis nitrilase, Mut3 showed 154% higher specific activity. Mut3 could retain 91.6% of its residual activity after incubation at pH 6.5 for 6 h. In a fed-batch reaction with 800 mM mandelonitrile as the substrate, the cumulative production of (R)-(—)-mandelic acid after 7.5 h of conversion reached 693 mM with an enantiomeric excess of 99%, and the space-time productivity of Mut3 was 21.50-fold higher than that of wild-type nitrilase. The K_m, V_(max), and k_(cat) of wild-type and Mut3 for mandelonitrile were 20.64 mM, 33.74 μmol mg~(-1) min~(-1), 24.45 s~(-1), and 9.24 mM, 47.68 μmol mg~(-1) min~(-1), and 34.55 s~(-1), respectively. A homology modeling and molecular docking study showed that the diameter of the catalytic tunnel of Mut3 became longer and that the tunnel volume was smaller. These structural changes are proposed to improve the hydrolytic activity and pH stability of Mut3. Mut3 has the potential for industrial applications in the upscale production of (R)-(—)-mandelic acid.
机译:作为用于立体定向生产羧酸的生物催化剂,腈水解酶最近受到了相当大的关注。为了提高活性,基于同源性建模和先前关于突变的报道,通过基因位点饱和诱变方法(GSSM)选择了粪便产碱杆菌的腈水解酶进行进一步修饰。诱变后,使用方便的两步高通量筛选方法选择阳性突变体,该方法基于产物形成和pH指示剂并结合HPLC方法。经过三轮GSSM后,选择了具有最高活性和对底物的耐受能力的Mut3(Gln196Ser / Ala284Ile)。与野生型粪屎曲霉腈水解酶相比,Mut3的比活性高154%。在pH 6.5下孵育6小时后,Mut3可以保留其剩余活性的91.6%。在以800 mM扁桃腈为底物的分批补料反应中,转化7.5 h后(R)-(-)-扁桃酸的累积产量达到693 mM,对映体过量为99%,时空生产率Mut3的比野生型腈水解酶高21.50倍。野生型和Mut3对扁桃腈的K_m,V_(max)和k_(cat)为20.64 mM,33.74μmolmg〜(-1)min〜(-1),24.45 s〜(-1)和9.24 mM,分别为47.68μmolmg〜(-1)min〜(-1)和34.55 s〜(-1)。同源性建模和分子对接研究表明,Mut3催化通道的直径变长,通道体积变小。提出这些结构变化以改善Mut3的水解活性和pH稳定性。 Mut3具有大规模生产(R)-(-)-扁桃酸的工业应用潜力。

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