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Biomedical subjects

S Awasthi

Publications and source records attributed to S Awasthi.

At least 91 records · Page 5Linked to original sources

Ambient air pollution & respiratory symptoms complex in preschool children.

To study the association between ambient air pollutants (AAP) and respiratory symptoms complex (RSC) in preschool children, a cohort of 664 children between the ages of 1 month to 4.5 yr were randomly selected from 28 slums (anganwadi centres) of Lucknow, north India. They were followed up fortnightly for six months. The outcomes assessed were presence of RSC at the time of interview and days on which symptoms had occurred in the past week. Exposure to ambient air sulphur dioxide (SO2), oxides of nitrogen (NOx) and suspended particulate matter (SPM) on the day of the interview or in the week prior, was assessed by ambient air monitoring at 9 centres within the city. The cumulative incidence of RSC was 1.06 and the incidence density per 100 days of follow up was 1.63. All three pollutants were positively correlated with each other and negatively correlated with temperature. Ambient air SPM and SO2 and cooking and heating fuels like dung cakes, wood, coal and kerosene and remaining indoors while the food was cooked were associated with increased incidence of RSC, increased duration of symptoms, or both. We conclude that to improve the respiratory health of preschool children, ambient air SPM and SO2 levels should be kept as low as possible and mothers should be advised to keep children in another room while cooking.

Air Pollution, Indoor↗

Iron-induced lipid peroxidation in rat liver is accompanied by preferential induction of glutathione S-transferase 8-8 isozyme.

Since previous studies from this laboratory have suggested that glutathione S-transferase (GST) 8-8 of rat belongs to a distinct subgroup of GST isozymes which may be involved in the detoxification of the products of lipid peroxidation (Zimniak et al., J. Biol. Chem. 269, 992-1000, 1994), during the present studies we examined the effect of iron-induced lipid peroxidation on the expression of GST 8-8 in rat liver. Rats treated with 100 mg/kg body wt iron showed a significant increase in lipid peroxidation in liver. This was accompanied by a concomitant increase in the expression of GST 8-8 in liver as observed in isoelectrophoretic analysis of rat liver GSTs, and an increase in GST activity toward 4-HNE, a toxic product of lipid peroxidation toward which GST 8-8 displays high specific activity. Western blot studies using polyclonal antibodies specifically recognizing GST 8-8 also indicated that, among the GST isozymes of rat liver, GST 8-8 was preferentially induced upon iron treatment. These findings were further confirmed by purifying and quantitating GST 8-8 protein from the controls and iron-treated rats. Significant differences in the specific activities of GST 8-8 purified from the controls and iron-treated rats were observed, indicating that more than one GST isozyme related to GST 8-8 may be present in rat liver. This observation is consistent with the observed heterogeneity in mouse mGSTA4-4 which is an ortholog of rat GST 8-8. Iron treatment also caused significant increase in GSH levels probably because of de novo synthesis as indicated by an increase in gamma-glutamyl cysteine synthetase activity. The results of these studies suggest that GST 8-8, and possibly other related GST isozymes, may play an important role in defense mechanisms against lipid peroxidation.

Aldehydes↗

Glutathione S-transferase 8-8 is localized in smooth muscle cells of rat aorta and is induced in an experimental model of atherosclerosis.

Allylamine (AA) is an electrophilic amine with a long history of experimental usage because of its extremely potent and relatively specific cardiovascular toxicity; it has been utilized in a variety of experimental models attempting to mimic human atherosclerotic lesions, myocardial infarction, and vascular injury. Even though the exact mechanisms by which AA causes vascular lesions remain unresolved, recent studies on the acute effects of AA exposure in rats strongly suggest that deamination to the aldehyde acrolein, oxidative stress, and the resultant increase in lipid peroxidation, generation of .OH radicals, and acute depletion of glutathione (GSH) may be some of the causative factors in AA-induced vascular lesions. Since glutathione S-transferase 8-8 (GST8-8) of rat belongs to a distinct subgroup of GST isozymes involved in the detoxification of products of lipid peroxidation, we designed studies to examine the effects of AA exposure on this GST isoform in rat aorta using Western blotting and immunohistochemical techniques. The results of these studies demonstrate that GST8-8 is expressed in rat aorta and is dramatically induced upon AA exposure. By immunohistochemistry, GST8-8 was localized in the smooth muscle cells of the vascular media which is believed to be the site of metabolism of AA. A significant increase in gamma-glutamylcysteine synthetase activity and GST activity toward 4-hydroxynonenal and acrolein, which are preferred substrates of GST8-8, was seen as early as 3 days following AA treatment. Alterations in GSH and other GSH-related enzymes at 3 and 10 days support the concept that--upon AA exposure--aortic defense mechanisms respond early and induction of GSH biosynthesis and rat GST8-8 occur to alleviate the toxic effects of acrolein, a major, genotoxic product of AA metabolism. The presence of GST8-8 in the vasculature, which is constantly exposed to products of lipid peroxidation, and its induction by AA, suggest that GST8-8 plays a key role in protecting blood vessels against oxidative stress and hence, may be involved in the atherogenic process.

Allylamine↗

Activity of melphalan in combination with the glutathione transferase inhibitor sulfasalazine.

Glutathione (GSH) transferases (GST), a family of detoxification enzyme proteins, are suggested to play an important role in tumor cell resistance to melphalan. The GST-activity inhibitor ethacrynic acid has been shown to increase the antitumor activity of melphalan in vitro as well as in vivo. In this study we determined the activity and toxicity of melphalan in combination with another GST-activity inhibitor, sulfasalazine, an agent used to treat ulcerative colitis. We entered 37 previously treated patients with advanced cancer of different histologies on sulfasalazine given at the individually calculated maximum tolerated dose (MTD) and melphalan given at doses beginning at 20 mg/m2. The main toxicity arising from this combination was nausea and vomiting, whereas increased myelosuppression was not observed. A partial response was seen in 2/4 of the ovarian cancer patients only. Plasma sulfasalazine levels varied between 2.5 and 47.1 micrograms/ml. Although reductions in GSH/GST levels were observed in peripheral mononuclear cells of certain patients following sulfasalazine treatment, there was no correlation between the extent of reduction and the plasma sulfasalazine level. A larger patient population must be studied to determine the usefulness of this combination.

Drug Administration Schedule↗

Novel human ocular glutathione S-transferases with high activity toward 4-hydroxynonenal.

PURPOSE: To study the distribution and expression of glutathione S-transferase isozymes involved in detoxification of endogenously generated toxic products of lipid peroxidation, namely, 4-hydroxynonenal (4-HNE) in human lens, retina, cornea, iris, ciliary body and to study their kinetic and structural properties. METHODS: The authors have previously cloned and sequenced cDNA of mouse mGSTA4-4, which shows high activity towards 4-HNE. They have expressed it in Escherichia coli and have raised antibodies against the recombinant mGSTA4-4. In the present study, these antibodies were used in Western blot analysis and immunoaffinity chromatography to study the expression and to purify the human ortholog(s) of mGSTA4-4 from ocular tissues. RESULTS: Western blot analyses of human ocular tissues indicated that a glutathione S-transferases (GST) isozyme immunologically similar to mGSTA4-4 was expressed in cornea, retina, and iris and ciliary body, but not in lens. This isozyme designated as hGST 5.8 was purified to homogeneity from human retina, cornea, and iris and ciliary body by immunoabsorption on immobilized antibodies against mGSTA4-4. The human ortholog of mGSTA4-4, designated as hGST 5.8 purified from all these tissues and pI value of 5.8, subunit Mr value of 25 k and blocked N-terminal. Amino acid sequences of CNBr fragments of hGST 5.8 isozymes of human ocular tissues showed a high degree of primary structure homologies with the corresponding regions of mGSTA4-4. There were noticeable differences in the amino acid sequences of hGST 5.8 of cornea, retina, and iris and ciliary body, suggesting the presence of several closely related hGST 5.8 subunits in the ocular tissues. This heterogeneity was due to tissue-specific expression rather than simple allelic polymorphism. The hGST 5.8 had about sixfold to eightfold higher activity toward 4-hydroxynonenal than 1-chloro-2,4-dinitrobenzene, or CDNB. The catalytic efficiency (Kcat/Km) of ocular hGST 5.8 for 4-HNE was about 100-fold higher than those for the alpha, mu, or pi classes of GST. In addition, hGST 5.8 expressed glutathione peroxidase activity toward phospholipid hydroperoxides and GSH-conjugating activity toward 9,10-epoxy stearic acid. CONCLUSIONS: The results indicate that hGST 5.8 isozyme(s) distinct from the alpha, mu, and pi classes of GSTs, are differentially expressed in human ocular tissues and may play an important role in protective mechanisms against endogenous toxicants generated during lipid peroxidation.

Aldehydes↗

Organic anion-transporting ATPase of rat liver. I. Purification, photoaffinity labeling, and regulation by phosphorylation.

An ATP-dependent transport system specific for non-bile acid organic anions such as S-(2,4-dinitrophenyl)-glutathione is present in the canalicular plasma membrane of hepatocytes. It has been shown recently that transport of these anions by isolated hepatocytes is modulated by the activity of cellular protein kinase C (Roelofsen, H., Ottenhoff, R., Oude Elferink, R. P., and Jansen, P.L. (1991) Biochem. J. 278, 637-641, 1991). Using a series of affinity chromatography steps, we have purified to apparent homogeneity a 90-kDa glycoprotein which has S-(2,4-dinitrophenyl)glutathione-dependent ATPase activity. As shown by binding to immobilized S-(2,4-dinitrophenyl)glutathione and by photoaffinity labeling with 8-azido-ATP, the binding sites for organic anions and for ATP of the 90-kDa protein are interdependent, a behavior that is consistent with an ATP-dependent transport function. The ATP binding site has been further characterized using a fluorescent ATP analog. The 90-kDa protein was phosphorylated by protein kinase C, and the Vmax (but not the Km) of the S-(2,4-dinitrophenyl)glutathione-dependent ATPase activity increased at least 2-fold upon phosphorylation. On the basis of its enzymatic properties, we propose that the 90-kDa protein is identical with the multispecific organic anion transporter (MOAT) of the hepatic canalicular plasma membrane. The size and oligosaccharide content of the 90-kDa protein indicate that it does not belong to the family of mammalian plasma membrane P-glycoproteins.

Adenosine Triphosphatases↗

Organic anion-transporting ATPase of rat liver. II. Functional reconstitution of active transport and regulation by phosphorylation.

We have previously purified to homogeneity from rat liver plasma membranes a 90-kDa glycoprotein with S-(2,4-dinitrophenyl)glutathione-stimulated ATPase activity and other properties which identify it as the multispecific organic anion transporter (MOAT) specific for the transport into bile of non-bile acid organic anions (Pikula, S., Hayden, J. B., Awasthi, S., Awasthi, Y. C., and Zimniak, P. (1994) J. Biol. Chem. 269, 27566-27573). In the present communication, we report the functional reconstitution of this protein into artificial proteoliposomes. The reconstituted protein catalyzed time- and concentration-dependent uptake of S-(2,4-dinitrophenyl)glutathione into the vesicles. The transport required the presence of ATP. Phosphorylation of the 90-kDa protein by protein kinase C prior to reconstitution more than tripled the Vmax of transport but did not change the Km for S-(2,4-dinitrophenyl)glutathione. The protein created and, at steady state, maintained a more than 200-fold and 500-fold S-(2,4-dinitrophenyl)glutathione gradient across the membrane for the unphosphorylated and phosphorylated form, respectively. The transport activity of the 90-kDa protein is sufficient to account for the hepatic secretory maximum of non-bile acid organic anions in the rat.

Adenosine Triphosphatases↗

Naturally occurring human glutathione S-transferase GSTP1-1 isoforms with isoleucine and valine in position 104 differ in enzymic properties.

Glutathione S-transferase P1-1 isoforms, differing in a single amino acid residue (Ile104 or Val104), have been previously identified in human placenta [Ahmad, H., Wilson, D. E., Fritz, R. R., Singh, S. V., Medh, R. D., Nagle, G. T., Awasthi, Y. C. & Kurosky, A. (1990) Arch. Biochem. Biophys. 278, 398-408]. In the present report, the enzymic properties of these two proteins are compared. [I104]glutathione S-transferase P1-1 has been expressed from its cDNA in Escherichia coli and purified to homogeneity by affinity chromatography; the cDNA has been mutated to replace Ile104 by Val104, and [V104]glutathione S-transferase P1-1 was expressed and isolated as described for [I104]glutathione S-transferase P1-1. The two enzymes differed in their specific activity and affinity for electrophilic substrates (KM values for 1-chloro-2,4-dinitrobenzene were 0.8 mM and 3.0 mM for [I-104]glutathione S-transferase P1-1 and [V-104]glutathione S-transferase P1-1, respectively), but were identical in their affinity for glutathione. In addition, the two enzymes were distinguishable by their heat stability, with half-lives at 45 degrees C of 19 min and 51 min, respectively. The resistance to heat denaturation was differentially modulated by the presence of substrates. These data, in conjunction with molecular modeling, indicate that the residue in position 104 helps to define the geometry of the hydrophobic substrate-binding site, and may also influence activity by interacting with residues directly involved in substrate binding.

Base Sequence↗

A novel glutathione S-transferase isozyme similar to GST 8-8 of rat and mGSTA4-4 (GST 5.7) of mouse is selectively expressed in human tissues.

A mouse glutathione S-transferase (GST) isozyme designated as GST 5.7 or mGSTA4-4 belongs to a distinct subclass of the alpha-class isozymes of GST. It is characterized by kinetic properties intermediate between the alpha- and pi-classes of GSTs. We have recently cloned and expressed this isozyme (rec-mGSTA4-4) in E. coli and have reported its complete primary sequence (Zimniak, P., et al. (1992) FEBS Lett., 313, 173-176). Using antibodies raised against the homogenous rec-mGSTA4-4 expressed in E. coli, we now demonstrate that an ortholog of this isozyme was selectively expressed in various human tissues. The human ortholog of mGST A4-4 purified from liver had a pI value of 5.8 and constituted approx. 1.7% of total GST protein of human liver. Similar to other alpha-class GSTs, the N-terminus of this isozyme (GST 5.8) was also blocked. CNBr digestion of the enzyme yielded two major fragments with M(r) values of 12 kDa and 6 kDa. The sequences of these two fragments showed identities in 16 out of 20 residues and 17 out of 20 residues with the corresponding sequences of its mouse ortholog (mGSTA4-4), and showed significant homologies with the rat and chicken orthologs, GST 8-8 and GST CL3. Human liver GST 5.8 showed more than an order of magnitude higher activity towards t-4-hydroxy-2-nonenal as compared to 1-chloro-2,4-dinitrobenzene. This isozyme also expressed glutathione-peroxidase activity towards fatty acid, as well as phospholipid hydroperoxides suggesting its role in protection mechanisms against the toxicants generated during lipid peroxidation. Western blot analysis of human tissues revealed that this GST isozyme was selectively expressed in human liver, pancreas, heart, brain and bladder tissues, but absent in lung, skeletal muscle, spleen and colon.

Amino Acid Sequence↗

Estimation of genomic complexity, heterologous expression, and enzymatic characterization of mouse glutathione S-transferase mGSTA4-4 (GST 5.7).

We have previously isolated a cDNA clone for a unique mouse lung glutathione S-transferase, mGSTA4-4 (GST 5.7) (Zimniak, P., Eckles, M. A., Saxena, M., and Awasthi, Y. C. (1992) FEBS Lett. 313, 173-176). By genomic Southern blotting and polymerase chain reaction single strand conformation polymorphism analysis we have now demonstrated the presence of at least two mGSTA4-related genes in the mouse. The heterogeneity of mGSTA4-4 was further examined by comparing the structural and kinetic properties of mGSTA4-4 isolated from mouse lung with those of recombinant rec-mGSTA4-4 expressed in Escherichia coli. Except for the isoelectric point, the physical properties of the two proteins were indistinguishable. Western blots using antibodies against rec-mGSTA4-4 have shown selective expression of the enzyme in mouse tissues. Even though the substrate specificity profiles of the tissue-isolated and recombinant enzymes, which point to a role of mGSTA4-4 in the detoxification of lipid peroxidation products, were generally similar, significant differences were observed with selected substrates. The existence of functionally distinct forms of mGSTA4-4 and the presence of more than one gene strongly suggest that the previously observed differences in properties of mGSTA4-4 isolated from various mouse tissues (Awasthi, S., Singhal, S. S., Srivastava, S. K., and Awasthi, Y. C. (1993) Arch. Biochem. Biophys. 301, 143-150) may be due to tissue-specific expression of mGSTA4-related genes.

Animals↗

Several closely related glutathione S-transferase isozymes catalyzing conjugation of 4-hydroxynonenal are differentially expressed in human tissues.

A human acidic glutathione S-transferase, hGST 5.8, was isolated from heart, pancreas, and brain by a procedure involving immunoadsorption chromatography on immobilized antibodies raised against mouse mGSTA4-4. The human hGST 5.8 enzymes isolated from these tissues had similar pI (5.8) and subunit M(r) (24.5 kDa) values, showed about 17- to 20-fold higher specific activities for 4-hydroxynon-2-enal than that for 1-chloro-2,4-dinitrobenzene, and expressed glutathione peroxidase activity toward phospholipid hydroperoxides. In this respect, the enzymes belong together with rat GST 8-8 and mouse mGSTA4-4 to a subgroup of GSTs involved in the detoxification of lipid peroxidation products. Partial sequencing of CNBr-peptide fragments of hGST 5.8 proteins isolated from various human tissues revealed significant similarity to mGSTA4-4 and the existence of several distinct isoforms differing in their primary structures. These isoforms had similar but nevertheless clearly distinguishable catalytic properties. These results indicate the existence of multiple hGST 5.8-related genes in the humans, which is consistent with our previous studies showing the presence of several closely related genes for the mouse ortholog mGSTA4-4 (Zimniak et al., J. Biol. Chem., 1994, 269, 992-1000).

Aldehydes↗

Modulation of cisplatin cytotoxicity by sulphasalazine.

The efficacy of cisplatin [cis-diamminedichloroplatinum (II); DDP] is hampered by acquired or de novo resistance of malignant cells to its cytotoxic effects. We have previously reported that cisplatin resistance parallels glutathione S-transferase (GST) activity in several human small-cell lung cancer cell lines. In the presently described studies, we used sulphasalazine, an inhibitor of GSTs, to evaluate the relative role of GSTs in mediating cisplatin resistance in two human small-cell lung cancer cell lines, NCI H-69 and H-2496. The H-69 cell line, which contained relatively higher GST activity than the H-2496 cell line (317 +/- 7 vs 9 +/- 1 mU mg-1 protein respectively), also displayed a greater degree of cisplatin resistance (IC50 values of 25.0 +/- 3.9 vs 4.5 +/- 1.0 microM respectively). Western blot and Northern blot analyses of purified GSTs revealed the expression of only the pi-class GST in both cell lines. Sulphasalazine inhibited the purified GSTs (IC50 of 10 microM for H-69 and 12 microM for H-2496) from both lines in a competitive manner with similar Ki values (6.5 and 7.9 microM for the H-69 and H-2496 cell lines respectively). Cytotoxicity studies revealed that sulphasalazine increased the cytotoxicity of cisplatin towards both cell lines. Isobologram analysis showed that sulphasalazine synergistically enhanced the cytotoxicity of cisplatin towards both cell lines, the magnitude of synergy being remarkably higher in H-69 cells than in H-2496 cells. Our studies indicate that clinically achievable concentrations of sulphasalazine may be useful in modulating cisplatin resistance in malignancies with increased GST-pi content.

Carcinoma, Small Cell↗

Adenosine triphosphate-dependent transport of doxorubicin, daunomycin, and vinblastine in human tissues by a mechanism distinct from the P-glycoprotein.

Previous studies have demonstrated that a human glutathione conjugate transporter, designated as dinitrophenyl-S-glutathione ATPase (DNP-SG ATPase), catalyzed ATP hydrolysis in the presence of several amphiphilic compounds other than glutathione conjugates (Singhal, S. S., R. Sharma, S. Gupta, H. Ahmad, P. Zimniak, A. Radominska, R. Lester, and Y. C. Awasthi. 1991. FEBS [Fed. Eur. Biochem. Soc.] Lett. 281:255-257). We now demonstrate that DNP-SG ATPase purified from human lung and erythrocyte membranes catalyzed the hydrolysis of ATP in the presence of doxorubicin and its metabolites. Doxorubicin-stimulated ATP hydrolysis by DNP-SG ATPase was saturable with respect to doxorubicin (Km 1.2 and 2.8 microM for the lung and erythrocyte enzymes, respectively). Antibodies against DNP-SG ATPase immunoprecipitated the ATP hydrolyzing activity stimulated by doxorubicin, its metabolites, and glutathione conjugates. Inside our vesicles prepared from erythrocyte membranes took up doxorubicin, daunomycin, and vinblastine in an ATP-dependent manner. The uptake was linear with respect to time and vesicle protein, was dependent on ATP and magnesium, was inhibited by heavy metal salts or by heating the vesicles, and was sensitive to both osmolarity and orientation of the vesicles. The transport had an activation energy of 13 kcal/mol, was saturable with respect to both doxorubicin and ATP (Km values of 1.8 microM and 1.9 mM, respectively), and was competitively inhibited by glutathione conjugates as well as by a number of amphiphiles such as daunomycin or vinblastine. Transport was diminished upon coating the vesicles with antibodies against DNP-SG ATPase. Incorporation of increasing amounts of purified DNP-SG ATPase into the vesicles resulted in a linear increase in transport of doxorubicin. These studies demonstrated for the first time that a membrane protein that catalyzed the transport of anionic amphiphilic molecules such as glutathione conjugates could also mediate the transport of weakly cationic antitumor antibiotic, doxorubicin. Notably, the Km of transport was in the range of doxorubicin concentration achievable in human serum after intravenous dosing of doxorubicin.

ATP Binding Cassette Transporter, Subfamily B, Mem↗

Gender-related differences in expression of murine glutathione S-transferases and their induction by butylated hydroxyanisole.

The basal levels of mu and pi class glutathione S-transferases RNA were 18-fold higher in the male mouse liver as compared with the female. When 0.75% (w/w) BHA was included in the diet it altered the RNA levels of alpha, mu, pi GST classes and mGSTA4-4 in a tissue and sex specific manner. The most marked induction of RNA was seen for the mu class GSTs of female liver, lung and kidney (52, 10 and 8-fold, respectively), and of male liver and kidney (25 and 3.5-fold, respectively), the pi class GSTs of female liver, lung, and kidney (11, 10, and 5-fold, respectively), and mGSTA4-4 of female liver (4-fold). The effect of BHA on the induction of the mu and pi class GST RNA was 2-9 fold greater in female as compared with male tissues. The degree of induction of GST RNA did not correlate directly with changes in GST protein indicating that post-transcriptional events regulating GST expression may be affected by BHA particularly for GST mu and mGSTA4-4.

Animals↗

Glutathione and glutathione linked enzymes in human small cell lung cancer cell lines.

Glutathione levels and several glutathione-linked enzyme activities have been variably correlated with cisplatin chemosensitivity in cultured neoplastic cells. In order to determine the relative contribution of the glutathione-linked enzymes towards mediating inherent cisplatin resistance in cancer cells, we have measured the chemosensitivity to cisplatin, glutathione levels and activities of glutathione S-transferase, glutathione peroxidase, glutathione reductase and glucose-6-phosphate dehydrogenase in 8 cultured human small cell lung cancer (SCLC) cell lines with widely differing cisplatin sensitivities. Of these parameters, only glutathione S-transferase activity correlated with degree of cisplatin resistance in a linear fashion.

Carcinoma, Small Cell↗

Interactions of glutathione S-transferase-pi with ethacrynic acid and its glutathione conjugate.

Ethacrynic acid, a diuretic drug known to be an inhibitor of glutathione S-transferases (GSTs), has been shown to enhance the cytotoxicity of the alkylating agent class of chemotherapeutic drugs in cultured cancer cells resistant to alkylating agents. This action of ethacrynic acid is presumably mediated by inhibition of GSTs which are implicated in detoxification of alkylating agents. In addition to being an inhibitor of GSTs, ethacrynic acid also interacts with GSTs as a substrate for conjugation with GSH to yield an ethacrynic acid-GSH conjugate. This conjugate is formed both enzymatically and non-enzymatically and itself is a GST inhibitor. Since ethacrynic acid-GSH conjugate is itself likely to be able to mediate reversal of alkylating agents through GST inhibition, we have synthesized and purified the ethacrynic acid-GSH conjugate, studied the kinetics of inhibition of human lung pi-class GST by ethacrynic acid and the conjugate, and compared the kinetics of the enzymatic and non-enzymatic formation of the conjugate using an HPLC method. Results of our studies showed that the ethacrynic acid-GSH conjugate was a more potent inhibitor of human lung GST-pi than ethacrynic acid (Ki = 1.5 vs. 11.5 microM, respectively) and that their mechanisms for GST inhibition were distinct (competitive and non-competitive, respectively). Comparison of enzymatic and non-enzymatic rates of conjugate formation in vitro indicated that GST-pi catalyzed a rapid conjugation of ethacrynic acid with GSH at a concentration of ethacrynic acid an order of magnitude above that required to nearly completely inhibit GST catalyzed conjugation of 1-chloro-2,4-dinitrobenzene. However, because of the rapid non-enzymatic reaction, and the inhibition of GST-pi with the accumulation of the conjugate in the reaction mixture, the overall quantity of the conjugate formed after 150 min was nearly identical in the presence or absence of GST-pi. Results of these studies suggest that inhibition of GSTs by ethacrynic acid-GSH conjugate may be the main mechanism through which ethacrynic acid reverses alkylating agent resistance.

Alkylating Agents↗

Glutathione S-transferases of human skin: qualitative and quantitative differences in men and women.

Glutathione S-transferase (GST) isozymes of male and female leg skin have been characterized. GST activities and protein have been quantified in a number of male and female skin samples and the results indicate that as compared to the male skin, female skin contains a higher amount of GST activity as well as protein. Both male and female leg skin contain three GST isozymes with pI values 9.9, 9.1 and 4.8. In accordance with previous findings the major isozyme, pI 4.8 belongs to the pi-class, whereas the two minor forms pI 9.1 and 9.9 belong to the alpha-class. Each of the three isozymes is more abundant in female skin. Surprisingly, the specific activities and Kcat values of the female skin GSTs, particularly of the pi-class isozyme were found to be significantly higher as compared to those of male skin isozyme. Studies into the kinetics of inhibition by hematin also indicated differences in male and female skin GSTs. Whereas we confirm the presence of an alpha-class GST, pI 9.9, in human skin with an apparently higher subunit M(r) value as compared to other human alpha-class GSTs, contrary to the previous report (Del Boccio et al. (1987) Biochem. J. 244, 21-25), the results of the present studies show that the N-terminus of this alpha-class GST is blocked.

Amputation, Surgical↗