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J M Petrash

Publications and source records attributed to J M Petrash.

48 records · Page 3Linked to original sources

Mechanism of inhibition of aldose reductase by menadione (vitamin K3).

Incubation of human placental aldose reductase (EC 1.1.1.21) with menadione (0.5-3.0 mM) resulted in time-dependent loss of the catalytic activity of the enzyme. Kinetic analysis of the data suggests that the inactivation process follows a single apparent rate constant that displays hyperbolic dependence on menadione concentration, indicating that menadione forms a kinetically significant, dissociable complex with the enzyme before the formation of an inactive enzyme-menadione complex. The inactivation of the enzyme with menadione was reversed upon dialysis of the inactivated enzyme against buffer containing 10 mM dithiothreitol suggesting that menadione reacts with enzyme sulfhydryl residue(s). Inactivation of the enzyme was significantly prevented by dithiothreitol (5 mM), NADPH (0.1 mM), and DL-glyceraldehyde (10 mM). Correlation of the fractional remaining activity with the extent of modification indicates that loss of catalytic activity corresponds to the modification of a single amino acid residue of the enzyme protein. Recombinant human aldose reductase, obtained by overexpression in Escherichia coli, and aldose reductase in which Cys-80 or Cys-303 was replaced by serine were also inactivated by menadione. However, enzyme in which Cys-298 was replaced by serine was insensitive to menadione. On the basis of these observations, it is suggested that menadione forms a thiodione-like adduct with Cys-298, leading to inactivation of the enzyme.

Aldehyde Reductase↗

Purification, crystallization and preliminary crystallographic analysis of porcine aldose reductase.

Large crystals of porcine aldose reductase have been grown from polyethylene glycol solutions. The crystals are triclinic, space-group P1, with a = 81.3 A, b = 85.9 A, c = 56.6 A, alpha = 102.3 degrees, beta = 103.3 degrees and gamma = 79.0 degrees. The crystals grow within ten days to dimensions of 0.6 mm x 0.4 mm x 0.2 mm and diffract to at least 2.5 A. There are four molecules in the unit cell related by a set of three mutually perpendicular non-crystallographic 2-fold axes.

Aldehyde Reductase↗

Resolving isoforms of aldose reductase by preparative isoelectric focusing in the Rotofor.

We have resolved and characterized isoforms of aldose reductase from bovine and porcine lenses by preparative isoelectric focusing with narrow pH gradients using the Rotofor. Both bovine and porcine lens aldose reductases were resolved as two enzyme isoforms. The bovine isoforms were Mr40400 +/- 445 polypeptides of pI4.71 and 5.19. Porcine isoforms were Mr41500 +/- 450 polypeptides of pI 4.90 and 5.30. Staphylococcus aureus V-8 protease digestion patterns for each set of isoforms were essentially identical and all isoforms probably contain blocked amino terminal amino acids. Antiserum to bovine lens aldose reductase cross-reacted with porcine lens aldose reductase. Each isoform displayed substrate preferences characteristic of mammalian aldose reductases. With purification, both bovine and porcine lens aldose reductases became less sensitive to inhibition by 6-fluoro-spiro-(chroman-4.4'-imidazolidine)-2',5'-dione (sorbinil).

Aldehyde Reductase↗

Regional assignment of the mouse alpha A2-crystallin gene (Crya-1) to chromosome 17A3----B by in situ hybridization.

Previously, we assigned the alpha A2-crystallin (Crya-1) structural gene to mouse chromosome 17 via Southern blot hybridization analysis of mouse x Chinese hamster somatic cell hybrids. Using in situ hybridization, we have now localized this gene to 17A3----B, a subchromosomal region containing several genes whose linkage relationships have been shown to be conserved on human chromosome 6. In man, however, the homologous gene (CRYA1) is located on human chromosome 21, indicating that internal rearrangements can occur within highly conserved chromosomal regions during the divergence of man and mouse.

Animals↗

Isolation and characterization of cDNA clones encoding aldose reductase.

The action of aldose reductase has been implicated in the etiology of a variety of diabetic complications affecting the visual system. However, very little is known regarding the structure and functional organization of the genes encoding this key enzyme. In the present study, we have isolated and characterized complementary DNA clones encoding bovine lens aldose reductase. Nucleotide sequencing of four independently isolated clones was used to establish a 1154 nucleotide composite cDNA sequence. The cDNA sequence encodes 296 amino acids of the aldose reductase primary structure, and contains an additional 261 nucleotides of apparently untranslated sequence downstream from the coding region. No nucleotide sequence differences were found among the four independently isolated aldose reductase cDNA clones. The aldose reductase amino acid sequence deduced from the cDNA shows high homology to that reported for aldose reductase of the rat lens. Significant similarities are also evident between bovine lens aldose reductase and both human liver aldehyde reductase and frog lens rho-crystallin.

Aldehyde Reductase↗

Nucleotide sequence of a bovine lens alpha A-crystallin cDNA.

We have determined the nucleotide sequence of a bovine lens alpha A2-crystallin cDNA clone, designated pBL alpha A2-1. The 793 bp cDNA insert contains coding information for the entire 173 amino acid alpha A2-crystallin polypeptide, as well as non-translated sequences located both upstream and downstream from the coding region. The coding sequences contained in pBL alpha A2-1 are at least 89% homologous with the corresponding sequences from other mammalian alpha A-crystallin genes, and are 78% homologous to the frog alpha A-crystallin coding region. In contrast, the downstream nontranslated sequences of the mammalian alpha A-crystallin transcripts show much greater sequence divergence, with the bovine sequences averaging 47% homology with the corresponding sequences from other mammalian species.

Amino Acid Sequence↗

cDNA clones encoding bovine gamma-crystallins.

We have determined the nucleotide sequence of two bovine lens gamma-crystallin cDNA clones, pBL gamma II-1 and pBL gamma III-1. The 644 bp cDNA insert of pBL gamma II-1 contains coding information for the entire amino acid sequence of bovine gamma II-crystallin. The 497 bp cDNA insert of pBL gamma III-1 encodes a homologous but different gamma-crystallin polypeptide, and appears to lack the coding information for the C-terminal 17 amino acid residues. While the nucleotide and predicted amino acid sequences of the coding regions of the clones show a high degree of homology, the untranslated leader sequences are relatively dissimilar. The leader sequence of pBL gamma III-1 is strikingly homologous to a portion of a rabbit immunoglobulin alpha-heavy chain mRNA.

Amino Acid Sequence↗

Interrelationships among human aldo-keto reductases: immunochemical, kinetic and structural properties.

We have proposed earlier a three gene loci model to explain the expression of the aldo-keto reductases in human tissues. According to this model, aldose reductase is a monomer of alpha subunits, aldehyde reductase I is a dimer of alpha, beta subunits, and aldehyde reductase II is a monomer of delta subunits. Using immunoaffinity methods, we have isolated the subunits of aldehyde reductase I (alpha and beta) and characterized them by immunocompetition studies. It is observed that the two subunits of aldehyde reductase I are weakly held together in the holoenzyme and can be dissociated under high ionic conditions. Aldose reductase (alpha subunits) was generated from human placenta and liver aldehyde reductase I by ammonium sulfate (80% saturation). The kinetic, structural and immunological properties of the generated aldose reductase are similar to the aldose reductase obtained from the human erythrocytes and bovine lens. The main characteristic of the generated enzyme is the requirement of Li2SO4 (0.4 M) for the expression of maximum enzyme activity, and its Km for glucose is less than 50 mM, whereas the parent enzyme, aldehyde reductase I, is completely inhibited by 0.4 M Li2SO4 and its Km for glucose is more than 200 mM. The beta subunits of aldehyde reductase I did not have enzyme activity but cross-reacted with anti-aldehyde reductase I antiserum. The beta subunits hybridized with the alpha subunits of placenta aldehyde reductase I, and aldose reductase purified from human brain and bovine lens. The hybridized enzyme had the characteristic properties of placenta aldehyde reductase I.

Alcohol Oxidoreductases↗

Assignment of the mouse alpha A-crystallin structural gene to chromosome 17.

alpha A2-crystallin is one of the major water-soluble proteins of the mammalian lens. Using a cloned cDNA probe coding for mouse alpha A2-crystallin and Southern blot hybridization, DNA isolated from a panel of somatic cell hybrids prepared from mouse fibroblasts or mouse spleen cells fused with Chinese hamster fibroblasts was probed to determine the chromosomal localization of the alpha A2-crystallin structural gene. We have located this gene on mouse chromosome 17.

Animals↗

Purification and properties of human liver aldehyde reductases.

Two NADPH-linked aldehyde reductases (alcohol:NADP+ oxidoreductase, EC 1.1.1.2), referred to here as aldehyde reductases I and II, have been purified to homogeneity from human liver by using ammonium sulfate precipitation, ion-exchange chromatography, affinity chromatography and gel filtration. Structural studies show that aldehyde reductase II is a monomer of about 32 000 daltons, whereas aldehyde reductase I is a dimer of two nonidentical subunits of molecular weights about 42 000 and 35 000. The isoelectric pH was determined to be 5.40 for aldehyde reductase II and 8.25 for aldehyde reductase I. Substrate specificity studies show that neither aldehyde reductase I nor II uses glucose as substrate but that both are capable of reducing various other aldehydes such as pyridine 3-aldehyde, butyraldehyde and DL-glyceraldehyde. The pH optimums for aldehyde reductases I and II are pH 6.0 and 7.0 respectively. Aldehyde reductase I uses both NADH and NADPH as cofactor, whereas aldehyde reductase II activity is dependent on NADPH. Aldehyde reductase I activity is more susceptible than aldehyde reductase II activity to inhibition by p-hydroxymercuribenzoate, as reflected by IC50 values of 7.5 microM and 40 microM for aldehyde reductases I and II, respectively. The susceptibility of human liver aldehyde reductases I and II to inhibition by the aldose reductase (EC 1.1.1.21) inhibitors 3,3'-tetramethylene glutaric acid, alrestatin, chromone and sorbinil was determined and compared with that of aldose reductase partially purified from bovine lenses. The aldose reductase inhibitors, besides inhibiting aldose reductase, also inhibit human liver aldehyde reductases I and II to varying degrees.

Alcohol Oxidoreductases↗

Formation of sorbitol 6-phosphate by bovine and human lens aldose reductase, sorbitol dehydrogenase and sorbitol kinase.

Formation of sorbitol 6-phosphate by bovine and human lens aldose reductase and sorbitol dehydrogenase by the reduction of glucose 6-phosphate and fructose 6-phosphate, respectively, has been demonstrated. The reaction product has been identified by Dowex-formate column chromatography, gas chromatography and mass spectrometry. Sorbitol 6-phosphate can also be formed by the phosphorylation of sorbitol by lens sorbitol kinase in the presence of ATP.

Aldehyde Reductase↗

Susceptibility of aldehyde and aldose reductases of human tissues to aldose reductase inhibitors.

The effect of aldose reductase inhibitors such as sorbinil, alrestatin, and quercitrin has been studied on the aldose reductase purified from human brain and lens, and aldehyde reductase I purified from human liver, and aldehyde reductase II purified from human brain, liver, and red cells. None of the aldose reductase inhibitors have been found to be specific for aldose reductase. Fifty micromolar sorbinil besides inhibiting aldose reductase, completely inhibits aldehyde reductase II from the brain, liver and red cells. Similarly, alrestatin and quercitrin also are potent inhibitors of aldehyde reductase I and aldehyde reductase II.

Alcohol Oxidoreductases↗