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March 19, 2026Journal of Agricultural and Food Chemistry2 citations

Promiscuous Reactions Catalyzed by Glutamate Dehydrogenase Induced with Amino Acid Deep Eutectic Solvents and Electric Field Analysis

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YCYuxin ChenSMShuo MiaoQZQian Zhang

Key Points

  • To investigate the catalytic promiscuity of glutamate dehydrogenase in amino acid deep eutectic solvents and how electric fields affect enzyme activity.
  • Studied glutamate dehydrogenase with various amino acid deep eutectic solvents as substrates and solvents.
  • Measured enzyme activity with different concentrations of AA-DESs and heme.
  • Used molecular dynamic simulations to explore electric field regulations in the active site.
  • Activity of glutamate dehydrogenase varied significantly with specific deep eutectic solvents, showing up to 1206.3% activity with l-Asp-DES.
  • Addition of heme increased enzyme activity by 197.7% in l-Asp-DES.
  • Molecular dynamics simulations suggested deep eutectic solvents manipulate electric fields to enable substrate switching.

Abstract

The catalytic promiscuity of glutamate dehydrogenase (GDH) with a heme-binding domain was studied. Eight amino acid deep eutectic solvents (AA-DESs) acted as both substrates and solvents in the activity and structural stability of the enzyme. The activities of 3AOG-6NZX with 10% (v/v) AA-DESs, namely, l-Asp-DES, l-Lys-DES, l-Cys-DES, and l-Phe-DES were 1206.3%, 110.3%, 928.3%, and 146.7% of the activity observed with amino acids as substrates, respectively. The electric field of the active site binding with Glu and Asp was compared, which reveals that distinct electric field topologies influence enzyme activity. Upon further addition of 15 μM heme, the activity of 3AOG-6NZX in 10% (v/v) l-Asp-DES showed a 197.7% enhancement, indicating that the binding of heme changed the electric potential and improved the activity. Furthermore, molecular dynamic simulations (MDS) revealed the regulation of electric fields by DES through its manipulation to enable a substrate switch. Understanding enzyme behaviors in DESs enabled the design of promising enzyme-compatible and tunable solvents.

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Cite This Study

Chen et al. (2026) studied this question.

synapsesocial.com/papers/69bb9279496e729e6297fd53https://doi.org/10.1021/acs.jafc.5c11522
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