
doi: 10.1038/nchembio.265
pmid: 19935661
The availability of whole genome sequences boosts the identification of biochemical pathways conserved across species using tools of comparative genomics. A cross-organism protein association analysis allowed us to identify two enzymes, ureidoglycine aminohydrolase and ureidoglycolate amidohydrolase, that catalyze the final reactions of purine degradation in the model plant Arabidopsis thaliana. A similar pathway was found in Escherichia coli, while an alternative metabolic route via ureidoglycine transaminase can be predicted for other organisms.
Proteomics, Magnetic Resonance Spectroscopy, Arabidopsis Proteins, Nitrogen, Arabidopsis, Lyases, Genomics, Models, Biological, Catalysis, Species Specificity, Aminohydrolases, Amidine-Lyases, Escherichia coli, Allantoin, Databases, Protein, Software
Proteomics, Magnetic Resonance Spectroscopy, Arabidopsis Proteins, Nitrogen, Arabidopsis, Lyases, Genomics, Models, Biological, Catalysis, Species Specificity, Aminohydrolases, Amidine-Lyases, Escherichia coli, Allantoin, Databases, Protein, Software
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