Asymmetric reduction of conjugated CC bonds by immobilized fusion of old yellow enzyme and glucose dehydrogenase

Yongxing Li , Pengqian Luan , Lele Dong , Jianqiao Liu , Luying Jiang , Jing Bai , Fufeng Liu , Yanjun Jiang
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Abstract

Asymmetric reduction of the conjugated CC bonds by the old yellow enzymes (OYEs) presents a promising field in the synthesis of chiral chemicals. Nevertheless, few natural OYEs have been applied in large-scale applications due to the requirement of costly NADPH and low operational stability. Herein, a stable and efficient fusion of YqjM from Bacillus subtilis and glucose dehydrogenase (GDH) from Bacillus megaterium was constructed to stereoselectively reduce the conjugated CC bonds in a self-sufficient continuous process. The effects of the enzyme order and different linkers on the fusions were investigated by structural analysis and all-atom molecular dynamics simulation. The best fusion YqjM_G_GDH gave 98% conversion of 100 ​mmol/L 2-methylcyclopentenone with an excellent ee value (>99%) in 3 ​h, while the mixture of individual enzymes only obtained 68% conversion after more than 8 ​h. The improved substrate conversion of YqjM_G_GDH fusion was probably attributed to the increased flexibility of each fused enzyme and the shortening of the diffusion distance of NADPH regenerated. A one-pot process was designed to purify and immobilize the fusion on the Ni2+-nitrilotriacetic acid functionalized magnetic mesoporous silica nanoflowers. The resulting immobilized biocatalyst not only catalyzed the asymmetric reduction of various α,β-unsaturated ketones (20 ​mmol/L) continuously with only 50 ​μmol/L NADP+ to initiate the whole process, but also retained more than 82% of the initial activity after seven cycles, serving as a good candidate for the industrial applications.

Abstract Image

通过固定融合老黄酶和葡萄糖脱氢酶不对称还原共轭 CC 键
老黄酶(OYEs)对共轭 CC 键的不对称还原为手性化学品的合成提供了一个前景广阔的领域。然而,由于需要昂贵的 NADPH 和较低的操作稳定性,很少有天然 OYEs 被大规模应用。本文构建了一种稳定高效的枯草芽孢杆菌 YqjM 与巨型芽孢杆菌葡萄糖脱氢酶(GDH)的融合体,可在自给自足的连续过程中立体选择性还原共轭 CC 键。通过结构分析和全原子分子动力学模拟研究了酶的顺序和不同连接体对融合的影响。最佳融合酶 YqjM_G_GDH 在 3 小时内对 100 mmol/L 2-甲基环戊烯酮的转化率为 98%,ee 值极佳(99%),而单个酶的混合物在超过 8 小时后的转化率仅为 68%。YqjM_G_GDH 融合酶底物转化率的提高可能是由于每种融合酶的灵活性增加以及再生的 NADPH 的扩散距离缩短。研究人员设计了一种一锅法,将融合酶纯化并固定在Ni2+-nitrilotriacetic acid功能化的磁性介孔二氧化硅纳米流体上。所得到的固定化生物催化剂不仅只需 50 μmol/L NADP+ 就能连续催化各种 α、β-不饱和酮(20 mmol/L)的不对称还原,而且在七个循环后仍能保持 82% 以上的初始活性,是工业应用的良好候选材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
14.40
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