Molecular cloning, expression and catalytic activity of a human AKR7 member of the aldo–keto reductase superfamily: evidence that the major 2-carboxybenzaldehyde reductase from human liver is a homologue of rat aflatoxin B1-aldehyde reductase
Open Access
- 15 May 1998
- journal article
- research article
- Published by Portland Press Ltd. in Biochemical Journal
- Vol. 332 (1) , 21-34
- https://doi.org/10.1042/bj3320021
Abstract
The masking of charged amino or carboxy groups by N-phthalidylation and O-phthalidylation has been used to improve the absorption of many drugs, including ampicillin and 5-fluorouracil. Following absorption of such prodrugs, the phthalidyl group is hydrolysed to release 2-carboxybenzaldehyde (2-CBA) and the pharmaceutically active compound; in humans, 2-CBA is further metabolized to 2-hydroxymethylbenzoic acid by reduction of the aldehyde group. In the present work, the enzyme responsible for the reduction of 2-CBA in humans is identified as a homologue of rat aflatoxin B1-aldehyde reductase (rAFAR). This novel human aldo–keto reductase (AKR) has been cloned from a liver cDNA library, and together with the rat protein, establishes the AKR7 family of the AKR superfamily. Unlike its rat homologue, human AFAR (hAFAR) appears to be constitutively expressed in human liver, and is widely expressed in extrahepatic tissues. The deduced human and rat protein sequences share 78% identity and 87% similarity. Although the two AKR7 proteins are predicted to possess distinct secondary structural features which distinguish them from the prototypic AKR1 family of AKRs, the catalytic- and NADPH-binding residues appear to be conserved in both families. Certain of the predicted structural features of the AKR7 family members are shared with the AKR6 β-subunits of voltage-gated K+-channels. In addition to reducing the dialdehydic form of aflatoxin B1-8,9-dihydrodiol, hAFAR shows high affinity for the γ-aminobutyric acid metabolite succinic semialdehyde (SSA) which is structurally related to 2-CBA, suggesting that hAFAR could function as both a SSA reductase and a 2-CBA reductase in vivo. This hypothesis is supported in part by the finding that the major peak of 2-CBA reductase activity in human liver co-purifies with hAFAR protein. The cDNA sequence for human AFAR has been assigned by GenBank the accession number AF026947.Keywords
This publication has 61 references indexed in Scilit:
- Structural and Functional Characterization of Human Potassium Channel Subunit β1 (KCNA1B)Neuropharmacology, 1996
- The Glut athione S-Transferase Supergene Family: Regulation of GST and the Contribution of the lsoenzymes to Cancer Chemoprotection and Drug Resistance Part ICritical Reviews in Biochemistry and Molecular Biology, 1995
- Inactivation properties of voltage-gated K+ channels altered by presence of β-subunitNature, 1994
- Dihydrodiol dehydrogenase and its role in polycyclic aromatic hydrocarbon metabolismChemico-Biological Interactions, 1993
- Prediction of Protein Secondary Structure at Better than 70% AccuracyJournal of Molecular Biology, 1993
- Sequence identification of 2,375 human brain genesNature, 1992
- Purification and molecular properties of 2-carboxybenzaldehyde (CBA) reductase from phenobarbital-treated rat liverXenobiotica, 1992
- Basic local alignment search toolJournal of Molecular Biology, 1990
- The effect of a carboxyl substituent on the metabolismin vitroof certain aromatic aldehydesXenobiotica, 1979
- Cleavage of Structural Proteins during the Assembly of the Head of Bacteriophage T4Nature, 1970