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Characterization of the FAD-containing N-methyltryptophan oxidase from Escherichia coli

P Khanna1, M Schuman Jorns

  • 1Department of Biochemistry, MCP Hahnemann School of Medicine, Philadelphia, Pennsylvania 19129, USA.

Biochemistry
|February 15, 2001
PubMed

Insights

N-Methyltryptophan oxidase (MTOX) is a constitutive flavoenzyme in E. coli, catalyzing N-methyl amino acid oxidation. Its unique flavin-sulfite complex and active site properties were characterized, revealing insights into flavoprotein oxidase mechanisms.

Area of Science:

  • Biochemistry
  • Enzymology
  • Molecular Biology

Background:

  • N-Methyltryptophan oxidase (MTOX) is a flavoenzyme involved in N-methyl amino acid metabolism.
  • The Escherichia coli solA gene encodes MTOX, showing homology to sarcosine oxidase.
  • Understanding MTOX function and regulation is crucial for flavoprotein oxidase research.

Purpose of the Study:

  • To characterize the N-Methyltryptophan oxidase (MTOX) enzyme from Escherichia coli.
  • To investigate the expression, catalytic properties, and active site characteristics of MTOX.
  • To elucidate the mechanism of MTOX-catalyzed oxidative demethylation.

Main Methods:

  • Gene isolation and characterization of the Escherichia coli solA gene.
  • Enzyme kinetics and spectrophotometric analysis of MTOX activity.
  • Characterization of flavin-sulfite complex formation and substrate analogue binding.

Main Results:

  • MTOX is a constitutively expressed enzyme in E. coli, with enhanced expression in minimal media.
  • MTOX forms a stable, anionic flavin semiquinone and a slow-dissociating flavin-sulfite complex.
  • Kinetic and spectral analyses revealed details of the MTOX active site, including interactions with various aromatic carboxylates and charge-transfer complexes.

Conclusions:

  • The solA gene encodes a functional MTOX enzyme in E. coli.
  • MTOX exhibits unique properties, including slow flavin-sulfite complex dissociation and a lowered FAD pKa.
  • These findings provide significant insights into the structure-function relationships of flavoprotein oxidases.

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