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Computational Design of Nitrile Hydratase from Pseudonocardia thermophila JCM3095 for Improved Thermostability.

Zhongyi ChengYao LanJunling GuoDong MaShijin JiangQianpeng LaiZhemin ZhouLukasz Peplowski
Published in: Molecules (Basel, Switzerland) (2020)
High thermostability and catalytic activity are key properties for nitrile hydratase (NHase, EC 4.2.1.84) as a well-industrialized catalyst. In this study, rational design was applied to tailor the thermostability of NHase from Pseudonocardia thermophila JCM3095 (PtNHase) by combining FireProt server prediction and molecular dynamics (MD) simulation. Site-directed mutagenesis of non-catalytic residues provided by the rational design was subsequentially performed. The positive multiple-point mutant, namely, M10 (αI5P/αT18Y/αQ31L/αD92H/βA20P/βP38L/βF118W/βS130Y/βC189N/βC218V), was obtained and further analyzed. The Melting temperature (Tm) of the M10 mutant showed an increase by 3.2 °C and a substantial increase in residual activity of the enzyme at elevated temperatures was also observed. Moreover, the M10 mutant also showed a 2.1-fold increase in catalytic activity compared with the wild-type PtNHase. Molecular docking and MD simulations demonstrated better substrate affinity and improved thermostability for the mutant.
Keyphrases
  • small molecule
  • wild type
  • molecular dynamics
  • molecular docking
  • density functional theory
  • molecular dynamics simulations
  • crispr cas
  • ionic liquid
  • mass spectrometry
  • reduced graphene oxide
  • carbon dioxide