4.7 Article

Reshaping the Binding Pocket of Cellobiose 2-Epimerase for Improved Substrate Affinity and Isomerization Activity for Enabling Green Synthesis of Lactulose

期刊

JOURNAL OF AGRICULTURAL AND FOOD CHEMISTRY
卷 70, 期 50, 页码 15879-15893

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acs.jafc.2c06980

关键词

cellobiose 2-epimerase; substrate affinity; isomerization activity; binding region; molecular dynamics simulation

资金

  1. National Key R&D Program of China [2022YFF1100300]
  2. National Natural Science Foundation of China [22108097, 32072150]
  3. Natural Science Foundation of Jiangsu Province [BK20200616]
  4. Innovative and Entrepreneurial Doctor of Jiangsu Province [1026010241203190]
  5. Natural Science Foundation of Huzhou [2019GZ04]
  6. Fundamental Research Funds for the Central Universities [JUSRP622024]

向作者/读者索取更多资源

By reshaping the binding domain, the mutant CsCE/Q371E showed enhanced isomerization activity and substrate affinity, making it a potential candidate for industrial lactulose production.
Enzymatic isomerization of lactose into lactulose via cellobiose 2-epimerase (CE) could provide an eco-friendly route for the industrial production of lactulose, a valuable food prebiotic. However, poor substrate affinity for lactose and preference for epimerization over isomerization hinder this application. Previous studies on CE improvement have focused on random mutagenesis or active site rational design; little is known about the relationship between substrate binding and enzyme efficacy, which was hence the subject of this study. First, residues 372W and 308W were identified as key for disaccharide recognition in CEs based on crystal structure alignment of the N-acetyl-glucosamine 2-epimerase superfamily and site-directed mutation. This binding domain was then reshaped through site saturation mutagenesis, resulting in seven mutants with enhanced isomerization activity. The optimal mutant CsCE/Q371E had significantly enhanced substrate affinity (Km, 269.65 mM vs Km, 417.5 mM), reduced epimerization activity, and 3.3-fold increased isomerization activity over the original CsCE. Molecular dynamics simulation further revealed that substituting Gln-371 with Glu strengthened the hydrogen-bonding network and altered the active site-substrate interactions, increasing the substrate stability and shifting the catalytic direction. This study uncovered new information about the substrate binding region and its mechanisms and impact on CE catalytic performance, paving the way for potential commercial applications.

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