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Reassignment of the Human Aldehyde Dehydrogenase ALDH8A1 (ALDH12) to the Kynurenine Pathway in Tryptophan Catabolism

Overview
Journal J Biol Chem
Specialty Biochemistry
Date 2018 Apr 29
PMID 29703752
Citations 13
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Abstract

The kynurenine pathway is the primary route for l-tryptophan degradation in mammals. Intermediates and side products of this pathway are involved in immune response and neurodegenerative diseases. This makes the study of enzymes, especially those from mammalian sources, of the kynurenine pathway worthwhile. Recent studies on a bacterial version of an enzyme of this pathway, 2-aminomuconate semialdehyde (2-AMS) dehydrogenase (AMSDH), have provided a detailed understanding of the catalytic mechanism and identified residues conserved for muconate semialdehyde recognition and activation. Findings from the bacterial enzyme have prompted the reconsideration of the function of a previously identified human aldehyde dehydrogenase, ALDH8A1 (or ALDH12), which was annotated as a retinal dehydrogenase based on its ability to preferentially oxidize 9--retinal over -retinal. Here, we provide compelling bioinformatics and experimental evidence that human ALDH8A1 should be reassigned to the missing 2-AMS dehydrogenase of the kynurenine metabolic pathway. For the first time, the product of the semialdehyde oxidation by AMSDH is also revealed by NMR and high-resolution MS. We found that ALDH8A1 catalyzes the NAD-dependent oxidation of 2-AMS with a catalytic efficiency equivalent to that of AMSDH from the bacterium Substitution of active-site residues required for substrate recognition, binding, and isomerization in the bacterial enzyme resulted in human ALDH8A1 variants with 160-fold increased or no detectable activity. In conclusion, this molecular study establishes an additional enzymatic step in an important human pathway for tryptophan catabolism.

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References
1.
Park J, Rhee S . Structural basis for a cofactor-dependent oxidation protection and catalysis of cyanobacterial succinic semialdehyde dehydrogenase. J Biol Chem. 2013; 288(22):15760-70. PMC: 3668734. DOI: 10.1074/jbc.M113.460428. View

2.
Colabroy K, Begley T . Tryptophan catabolism: identification and characterization of a new degradative pathway. J Bacteriol. 2005; 187(22):7866-9. PMC: 1280306. DOI: 10.1128/JB.187.22.7866-7869.2005. View

3.
Lin M, Napoli J . cDNA cloning and expression of a human aldehyde dehydrogenase (ALDH) active with 9-cis-retinal and identification of a rat ortholog, ALDH12. J Biol Chem. 2000; 275(51):40106-12. DOI: 10.1074/jbc.M008027200. View

4.
Phillips R, Anderson A, Gentry H, Guner O, Phillip Bowen J . Substrate and inhibitor specificity of kynurenine monooxygenase from Cytophaga hutchinsonii. Bioorg Med Chem Lett. 2017; 27(8):1705-1708. DOI: 10.1016/j.bmcl.2017.02.080. View

5.
NISHIZUKA Y, ICHIYAMA A, Gholson R, HAYAISHI O . STUDIES ON THE METABOLISM OF THE BENZENE RING OF TRYPTOPHAN IN MAMMALIAN TISSUES. I. ENZYMIC FORMATION OF GLUTARIC ACID FROM 3-HYDROXYANTHRANILIC ACID. J Biol Chem. 1965; 240:733-9. View