Structural Insights of a cis -Epoxysuccinate Hydrolase Facilitate the Development of Robust Biocatalysts for the Production of l-(+)-Tartrate.
Yu HanYuelin LuoBao-Di MaJie LiJian-He XuXu-Dong KongPublished in: Biochemistry (2024)
l-(+)-Tartaric acid plays important roles in various industries, including pharmaceuticals, foods, and chemicals. cis -Epoxysuccinate hydrolases (CESHs) are crucial for converting cis -epoxysuccinate to l-(+)-tartrate in the industrial production process. There is, however, a lack of detailed structural and mechanistic information on CESHs, limiting the discovery and engineering of these industrially relevant enzymes. In this study, we report the crystal structures of Ro CESH and Ko CESH-l-(+)-tartrate complex. These structures reveal the key amino acids of the active pocket and the catalytic triad residues and elucidate a dynamic catalytic process involving conformational changes of the active site. Leveraging the structural insights, we identified a robust Bm CESH (550 ± 20 U·mg -1 ) with sustained catalytic activity even at a 3 M substrate concentration. After six batches of transformation, immobilized cells with overexpressed Bm CESH maintained 69% of their initial activity, affording an overall productivity of 200 g/L/h. These results provide valuable insights into the development of high-efficiency CESHs and the optimization of biotransformation processes for industrial uses.
Keyphrases
- high efficiency
- amino acid
- heavy metals
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- induced apoptosis
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- molecular dynamics
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- molecular dynamics simulations
- high resolution
- healthcare
- oxidative stress
- cell death
- signaling pathway
- ionic liquid
- mass spectrometry
- crystal structure
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