Literature DB >> 9218716

Cloning of a rat cDNA encoding retinal dehydrogenase isozyme type I and its expression in E. coli.

P Penzes1, X Wang, Z Sperkova, J L Napoli.   

Abstract

Peptides sequenced from the purified rat liver cytosolic retinal dehydrogenase P1 [Posch, K.C., Burns, R.D. and Napoli, J.L., 1992. Biosynthesis of all-trans-retinoic acid from retinal: recognition of retinal bound to cellular retinol-binding protein (type I) as substrate by a purified cytosolic dehydrogenase. J. Biol. Chem. 267, 19676-19682] were used to design oligonucleotides for cloning its cDNA. The deduced amino acid sequence of P1, now designated retinal dehydrogenase type I or RalDH(I), has close similarity with mouse AHD-2 and rat kidney aldehyde dehydrogenase, but is distinct from rat phenobarbital-inducible aldehyde dehydrogenase (PIADH), the presumed rat liver homolog of mouse AHD-2. Rat kidney (100%) and lung (88%) show relatively high mRNA levels of RalDH(I), liver (34%) and brain (22%) have moderate levels, and testis (8%) has low levels. Retinoid status affects RalDH(I) mRNA levels differently in different tissues. E. coli-expressed RalDH(I) exhibits allosteric kinetics for retinal with a Hill coefficient of 1.7, a K0.5 value of 1.4 microM and a Vmax of 52 nmol min(-1) mg(-1) protein. These data establish the cospecificity of P1 and RalDH(I), show that retinoid status affects expression of its mRNA in a tissue-dependent manner, and illustrate that aldehyde dehydrogenase isozymes with extensive homology can participate in different metabolic paths, e.g., RalDH vs. PIADH.

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Year:  1997        PMID: 9218716     DOI: 10.1016/s0378-1119(97)00054-1

Source DB:  PubMed          Journal:  Gene        ISSN: 0378-1119            Impact factor:   3.688


  14 in total

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Journal:  Biochem J       Date:  2000-06-15       Impact factor: 3.857

2.  Specificity of zebrafish retinol saturase: formation of all-trans-13,14-dihydroretinol and all-trans-7,8- dihydroretinol.

Authors:  Alexander R Moise; Andrea Isken; Marta Domínguez; Angel R de Lera; Johannes von Lintig; Krzysztof Palczewski
Journal:  Biochemistry       Date:  2007-01-25       Impact factor: 3.162

3.  Molecular analysis of two closely related mouse aldehyde dehydrogenase genes: identification of a role for Aldh1, but not Aldh-pb, in the biosynthesis of retinoic acid.

Authors:  L C Hsu; W C Chang; I Hoffmann; G Duester
Journal:  Biochem J       Date:  1999-04-15       Impact factor: 3.857

Review 4.  Physiological insights into all-trans-retinoic acid biosynthesis.

Authors:  Joseph L Napoli
Journal:  Biochim Biophys Acta       Date:  2011-05-19

5.  Transcriptional co-operativity between distant retinoic acid response elements in regulation of Cyp26A1 inducibility.

Authors:  Olivier Loudig; Glenn A Maclean; Naomi L Dore; Luong Luu; Martin Petkovich
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Review 6.  Functions of Intracellular Retinoid Binding-Proteins.

Authors:  Joseph L Napoli
Journal:  Subcell Biochem       Date:  2016

Review 7.  Retinoic Acid Synthesis and Degradation.

Authors:  Natalia Y Kedishvili
Journal:  Subcell Biochem       Date:  2016

8.  Molecular cloning and oxidative modification of human lens ALDH1A1: implication in impaired detoxification of lipid aldehydes.

Authors:  Tianlin Xiao; Mohammad Shoeb; M Saeed Siddiqui; Min Zhang; Kota V Ramana; Satish K Srivastava; Vasilis Vasiliou; Naseem H Ansari
Journal:  J Toxicol Environ Health A       Date:  2009

9.  Localization of retinaldehyde dehydrogenases and retinoid binding proteins to sustentacular cells, glia, Bowman's gland cells, and stroma: potential sites of retinoic acid synthesis in the postnatal rat olfactory organ.

Authors:  Mary Ann Asson-Batres; W Bradford Smith
Journal:  J Comp Neurol       Date:  2006-05-10       Impact factor: 3.215

10.  Identification of all-trans-retinol:all-trans-13,14-dihydroretinol saturase.

Authors:  Alexander R Moise; Vladimir Kuksa; Yoshikazu Imanishi; Krzysztof Palczewski
Journal:  J Biol Chem       Date:  2004-09-09       Impact factor: 5.157

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