Improving specific activity and thermostability of Escherichia coli phytase by structure-based rational design

J Biotechnol. 2014 Apr 10:175:1-6. doi: 10.1016/j.jbiotec.2014.01.034. Epub 2014 Feb 8.

Abstract

Escherichia coli phytase (EcAppA) which hydrolyzes phytate has been widely applied in the feed industry, but the need to improve the enzyme activity and thermostability remains. Here, we conduct rational design with two strategies to enhance the EcAppA performance. First, residues near the substrate binding pocket of EcAppA were modified according to the consensus sequence of two highly active Citrobacter phytases. One out of the eleven mutants, V89T, exhibited 17.5% increase in catalytic activity, which might be a result of stabilized protein folding. Second, the EcAppA glycosylation pattern was modified in accordance with the Citrobacter phytases. An N-glycosylation motif near the substrate binding site was disrupted to remove spatial hindrance for phytate entry and product departure. The de-glycosylated mutants showed 9.6% increase in specific activity. On the other hand, the EcAppA mutants that adopt N-glycosylation motifs from CbAppA showed improved thermostability that three mutants carrying single N-glycosylation motif exhibited 5.6-9.5% residual activity after treatment at 80°C (1.8% for wild type). Furthermore, the mutant carrying all three glycosylation motifs exhibited 27% residual activity. In conclusion, a successful rational design was performed to obtain several useful EcAppA mutants with better properties for further applications.

Keywords: Animal feed; Phytate; Protein engineering; Site-specific mutagenesis.

MeSH terms

  • 6-Phytase / chemistry*
  • 6-Phytase / genetics*
  • 6-Phytase / metabolism
  • Acid Phosphatase / chemistry*
  • Acid Phosphatase / genetics*
  • Acid Phosphatase / metabolism
  • Amino Acid Sequence
  • Catalytic Domain*
  • Consensus Sequence
  • Enzyme Stability
  • Escherichia coli / chemistry
  • Escherichia coli / enzymology*
  • Escherichia coli Proteins / chemistry*
  • Escherichia coli Proteins / genetics*
  • Escherichia coli Proteins / metabolism
  • Glycosylation
  • Kinetics
  • Models, Molecular
  • Protein Engineering / methods
  • Protein Structure, Secondary
  • Temperature

Substances

  • Escherichia coli Proteins
  • Acid Phosphatase
  • 6-Phytase
  • appA protein, E coli