Exploring the Role of Phenylalanine Residues in Modulating the Flexibility and Topography of the Active Site in the Peroxygenase Variant PaDa-I

Int J Mol Sci. 2020 Aug 10;21(16):5734. doi: 10.3390/ijms21165734.

Abstract

Unspecific peroxygenases (UPOs) are fungal heme-thiolate enzymes able to catalyze a wide range of oxidation reactions, such as peroxidase-like, catalase-like, haloperoxidase-like, and, most interestingly, cytochrome P450-like. One of the most outstanding properties of these enzymes is the ability to catalyze the oxidation a wide range of organic substrates (both aromatic and aliphatic) through cytochrome P450-like reactions (the so-called peroxygenase activity), which involves the insertion of an oxygen atom from hydrogen peroxide. To catalyze this reaction, the substrate must access a channel connecting the bulk solution to the heme group. The composition, shape, and flexibility of this channel surely modulate the catalytic ability of the enzymes in this family. In order to gain an understanding of the role of the residues comprising the channel, mutants derived from PaDa-I, a laboratory-evolved UPO variant from Agrocybe aegerita, were obtained. The two phenylalanine residues at the surface of the channel, which regulate the traffic towards the heme active site, were mutated by less bulky residues (alanine and leucine). The mutants were experimentally characterized, and computational studies (i.e., molecular dynamics (MD)) were performed. The results suggest that these residues are necessary to reduce the flexibility of the region and maintain the topography of the channel.

Keywords: biocatalysis; molecular dynamics; oxizyme engineering; peroxygenases; structure–function relationship.

MeSH terms

  • Agrocybe / enzymology*
  • Biocatalysis
  • Catalytic Domain*
  • Heme / chemistry
  • Hydrogen Peroxide / chemistry
  • Mixed Function Oxygenases / chemistry*
  • Mixed Function Oxygenases / genetics
  • Molecular Dynamics Simulation
  • Mutagenesis, Site-Directed / methods
  • Mutation
  • Phenylalanine / chemistry*
  • Saccharomyces cerevisiae / genetics
  • Saccharomyces cerevisiae / metabolism*

Substances

  • Heme
  • Phenylalanine
  • Hydrogen Peroxide
  • Mixed Function Oxygenases
  • peroxygenase

Supplementary concepts

  • Agrocybe aegerita