Key Laboratory of Bioorganic Synthesis of Zhejiang Province, College of Biotechnology and Bioengineering, Zhejiang University of Technology, Hangzhou 310014, P. R. China.
The National and Local Joint Engineering Research Center for Biomanufacturing of Chiral Chemicals, Zhejiang University of Technology, Hangzhou 310014, P. R. China.
J Agric Food Chem. 2023 Jun 14;71(23):9009-9019. doi: 10.1021/acs.jafc.3c01561. Epub 2023 Jun 2.
Efficient formate dehydrogenase (FDH)-based cofactor regeneration systems are widely used for biocatalytic processes due to their ready availability, low reduction potential, and production of only benign byproducts. However, FDHs are usually specific to NAD, and NADPH regeneration with formate is challenging. Herein, an FDH with a preference for NAD from (FDH) was selected owing to its high activity. By static and dynamic structural analyses, a beneficial substitution, D222Q, was identified for cofactor-preference switching. However, its total activity was substantially decreased by 90% owing to the activity-specificity trade-off. Subsequently, a semirational library was designed and screened, which yielded a variant FDH with satisfactory activity and NADP specificity. Our analysis of dynamical cross-correlations revealed a substitution combination that brought balance to the dynamical correlation network. This combination successfully overcame the activity-specificity-stability trade-off and resulted in a beneficial outcome. The substitution combination (D222Q-A199G/H380S-C256A/C146S) enabled the simultaneous improvement of activity, specificity, and stability and was successfully applied to other 17 FDHs. Finally, by employing engineered FDH, an NADPH regeneration system was developed, optimized, and utilized for the asymmetric biosynthesis of l-phosphinothricin.
高效的甲酸盐脱氢酶(FDH)为辅酶再生系统由于其易得性、低还原电势以及仅产生良性副产物而被广泛应用于生物催化过程中。然而,FDH 通常对 NAD 具有特异性,而使用甲酸盐进行 NADPH 再生具有挑战性。在此,由于其高活性,选择了一种对 NAD 具有偏好的 FDH(FDH)。通过静态和动态结构分析,确定了一个有益的取代基 D222Q,用于改变辅因子偏好的开关。然而,由于活性特异性的权衡,其总活性降低了 90%。随后,设计并筛选了一个半理性文库,得到了一种具有满意活性和 NADP 特异性的 FDH 变体。我们对动态互相关的分析揭示了一个取代组合,它使动力学相关网络达到平衡。这种组合成功地克服了活性特异性稳定性的权衡,取得了有益的结果。取代组合(D222Q-A199G/H380S-C256A/C146S)能够同时提高活性、特异性和稳定性,并成功应用于其他 17 种 FDH。最后,通过使用工程化的 FDH,开发、优化并利用 NADPH 再生系统用于 l-草丁膦的不对称生物合成。