State Key Laboratory of Bioreactor Engineering, New World Institute of Biotechnology, East China University of Science and Technology, Shanghai, 200237, People's Republic of China.
Biotechnol Lett. 2022 Oct;44(10):1163-1173. doi: 10.1007/s10529-022-03291-6. Epub 2022 Sep 1.
We screened nitrilases with significant nitrile hydratase activity to exploit their potential in benzylic amide biosynthesis. We also investigated the factors affecting their hydration activity to support further research on benzylic amide production by nitrilase.
A sequence-based screening method using previously reported crucial positions identified to be essential for amide-forming capacity of nitrilase (referred to as "amide-formation hotspots") as molecular probes to identify putative amide-forming nitrilases.
Based on the previously reported "amide-formation hotspots," we identified a nitrilase NitPG from Paraburkholderia graminis DSM 17151 that could produce a significant amount of mandelamide toward mandelonitrile and exhibited general hydration activity toward various benzylic nitriles. The time-course experiment with NitPG demonstrated that amide was also a true reaction product of nitrilase, suggesting that the nitrile catalysis by amide-forming nitrilase could be a post-transition state bifurcation-mediated enzymatic reaction. Further research demonstrated that low temperature, metal ion addition, and specific substrate structure could profoundly improve the amide formation capability of nitrilase.
NitPG with broad hydration activity is a potential candidate for the enzymatic synthesis of benzylic amides for biotechnological applications. Studying the effect of nitrilase hydration activity could promote our understanding of the factors that influence amide and acid distribution.
我们筛选出具有显著腈水合酶活性的腈酶,以挖掘其在苄基酰胺生物合成中的潜力。我们还研究了影响其水合活性的因素,以支持进一步研究腈酶在苄基酰胺生产中的应用。
采用基于序列的筛选方法,使用先前报道的鉴定为腈酶酰胺形成能力必不可少的关键位置(称为“酰胺形成热点”)作为分子探针,以鉴定可能的酰胺形成腈酶。
基于先前报道的“酰胺形成热点”,我们从 Paraburkholderia graminis DSM 17151 中鉴定出一种腈酶 NitPG,该酶能够大量生成扁桃腈向扁桃酰胺,并对各种苄基腈表现出普遍的水合活性。NitPG 的时程实验表明,酰胺也是腈酶的真正反应产物,这表明酰胺形成腈酶的腈催化可能是一种过渡态后分叉介导的酶反应。进一步的研究表明,低温、金属离子添加和特定的底物结构可以显著提高腈酶的酰胺形成能力。
具有广泛水合活性的 NitPG 是用于生物技术应用的苄基酰胺酶法合成的潜在候选酶。研究腈酶水合活性的影响可以促进我们对影响酰胺和酸分布的因素的理解。