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Characterization of the FAD-containing N-methyltryptophan oxidase from Escherichia coli
1Department of Biochemistry, MCP Hahnemann School of Medicine, Philadelphia, Pennsylvania 19129, USA.
Abstract:
N-Methyltryptophan oxidase (MTOX) is a flavoenzyme that catalyzes the oxidative demethylation of N-methyl-L-tryptophan and other N-methyl amino acids, including sarcosine, which is a poor substrate. The Escherichia coli gene encoding MTOX (solA) was isolated on the basis of its sequence homology with monomeric sarcosine oxidase, a sarcosine-inducible enzyme found in many bacteria. These studies show that MTOX is expressed as a constitutive enzyme in a wild-type E. coli K-12 strain, providing the first evidence that solA is a functional gene. MTOX expression is enhanced 3-fold by growth on minimal media but not induced by N-methyl-L-tryptophan, L-tryptophan, or 3-indoleacrylate. MTOX forms an anionic flavin semiquinone and a reversible, covalent flavin-sulfite complex (K(d) = 1.7 mM), properties characteristic of flavoprotein oxidases. Rates of formation (k(on) = 5.4 x 10(-3) M(-1) s(-1)) and dissociation (k(off) = 1.3 x 10(-5) s(-1)) of the MTOX-sulfite complex are orders of magnitude slower than observed with most other flavoprotein oxidases. The pK(a) for ionization of oxidized FAD at N(3)H in MTOX (8.36) is two pH units lower than that observed for free FAD. The MTOX active site was probed by characterization of various substrate analogues that act as competitive inhibitors with respect to N-methyl-L-tryptophan. Qualitatively similar perturbations of the MTOX visible absorption spectrum are observed for complexes formed with various aromatic carboxylates, including benzoate, 3-indole-(CH(2))(n)-CO(2)(-) and 2-indole-CO(2)(-). The most stable complex with 3-indole-(CH(2))(n)-CO(2)(-) is formed with 3-indolepropionate (K(d) = 0.79 mM), a derivative with the same side chain length as N-methyl-L-tryptophan. Benzoate binding is enhanced upon protonation of a group in the enzyme-benzoate complex (pK(EL) = 6.87) but blocked by ionization of a group in the free enzyme (pK(E) = 8.41), which is attributed to N(3)H of FAD. Difference spectra observed for the aromatic carboxylate complexes are virtually mirror images of those observed with sarcosine analogues (N,N'-dimethylglycine, N-benzylglycine). Charge-transfer complexes are formed with 3-indoleacrylate, pyrrole-2-carboxylate, and CH(3)XCH(2)CO(2)(-) (X = S, Se, Te).
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.