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T Y Aw

Publications and source records attributed to T Y Aw.

At least 73 records · Page 4Linked to original sources

Oxygen dependence of glutathione synthesis in hepatocytes.

The O2 dependence of glutathione (GSH) synthesis was studied in freshly isolated hepatocytes of white male rats. The rate of synthesis with methionine as the sulfur-containing amino acid precursor was decreased at hypoxic O2 concentrations and was half-maximal at 5 microM O2. ATP-dependent formation of S-adenosylmethionine was the rate-limiting step in GSH synthesis under these hypoxic conditions as shown by studies of S-adenosylmethionine concentrations and effects of compounds that inhibit mitochondrial ATP production. GSH synthesis with cysteine as the sulfur-containing precursor amino acid was relatively resistant to O2 deficiency. The rate under anoxia was 48% of the aerobic rate and the O2-dependent rate was half-maximal at 0.9 microM O2. These results indicate that GSH synthesis from methionine is likely to be impaired under physiological and pathological conditions involving hypoxia, but synthesis from cysteine is not likely to be greatly affected except during anoxia. In addition, the sensitivity of the cystathionine pathway to hypoxia suggests that other products of the pathway, such as choline, creatine, epinephrine, and methylated tRNA's, may also be decreased by hypoxia.

Adenosine Triphosphate↗

Heterogeneity of pH in the aqueous cytoplasm of renal proximal tubule cells.

Heterogeneity of cytosolic pH was studied with compounds that distribute between the cytosol and mitochondrial matrix in fundamentally different ways, i.e., according to the extent of ionization or according to the function of H+-coupled transport systems. Results show that the average cytosolic pH is considerably more alkaline than the region to which mitochondria are exposed. Because mitochondria are localized predominantly in the basal region, the results are consistent with a transcellular pH gradient within the cytosol of proximal tubule cells. Experiments analyzing the effects of inhibiting efflux of HCO3- at the basal surface and Na+-H+ exchange at the apical surface support the interpretation that the function of these systems contributes to the transcellular pH gradient. The existence of a heterogeneity in pH within the cytosol has important implications concerning the function and regulation of numerous cell processes.

Animals↗

Cyanide toxicity in hepatocytes under aerobic and anaerobic conditions.

The effect of cyanide on cell viability and mitochondrial function was studied in hepatocytes exposed to air or argon. Cells were more susceptible to cyanide toxicity under air than under argon. Analysis of the disposition of cyanide showed that the difference in susceptibility to KCN was not due to O2-dependent differences in cyanide metabolism or elimination. Studies of mitochondrial function revealed that cyanide under aerobic conditions resulted in substantial swelling of the mitochondria, which corresponded to a matrix loading of phosphate. In addition, cyanide caused a loss of the mitochondrial protonmotive force. This was in contrast to the results for cells exposed to 30 min of anoxia alone in which there was no loss of mitochondrial delta pH, no detectable change in mitochondrial volume, and little matrix loading of phosphate. These results show that at least some of the protective mechanisms elicited by anoxia (B. S. Andersson, T. Y. Aw, and D. P. Jones. Am. J. Physiol. 252 (Cell Physiol. 21): C349-C355, 1987) are not elicited by cyanide alone. Thus cyanide under aerobic conditions does not provide a completely valid model for simple anoxia. Moreover, the results suggest that the molecular sensor necessary to signal suppression of metabolic and transport functions during neahypoxia is dependent on O2 and is neither stimulated nor antagonized by KCN.

Adenosine Triphosphate↗

Drug metabolism and toxicity during hypoxia.

Oxygen concentration affects the metabolism and toxicity of various drugs. A considerable amount of information is now available on the effects of hypoxia on the major pathways of drug metabolism, including oxidation (i.e., by cytochromes P-450, NAD+-dependent dehydrogenases, and monoamine oxidase), glucuronidation, sulfation, glutathione conjugation, glycine conjugation, and acetylation. Some pathways are essentially independent of O2 concentration while others are highly dependent upon O2. Certain drugs are activated to reactive and toxic metabolites by O2-dependent pathways. This aspect of drug toxicity serves as a basis for treatment of slow-growing solid tumors which have hypoxic regions that are resistant to chemo- and radiation therapies. Recent studies have also established that hypoxic cells have increased susceptibility to oxidative injury, and this can predispose cells to other pathological processes. However, in spite of the available knowledge concerning the O2 dependence of metabolism and toxicity of drugs, relatively little is known about the effects of chronic hypoxia on the expression of drug-metabolizing enzymes or upon the absorption, elimination, or toxicity of drugs. Thus, in addition to the information presently reviewed, major gaps exist in the knowledge needed to provide optimal drug therapy in the large population of patients who experience O2 deficiency. Comments and Perspectives. Specific basic research areas which need to be studied include the effects of hypoxia on drug absorption and elimination, the changes of neahypoxia that lead to enhanced susceptibility to drug toxicity, and the effects of chronic hypoxia on the metabolic systems involved in absorption, metabolism, and elimination of drugs. At an applied level, the available data on the O2 dependences of drug metabolism pathways need to be extended to examine in detail the O2 dependence to metabolism and toxicity of relevant, currently used therapeutic agents. Such efforts can be expected to continue to improve drug therapies and reduce toxicities in hypoxic patients.

Animals↗

Glutathione uptake and protection against oxidative injury in isolated kidney cells.

Analysis with radiotracer and high performance liquid chromatography techniques showed that glutathione (GSH) is transported intact into cells primarily of proximal tubule origin. Characteristics of GSH uptake were the same as previously reported for basal-lateral membrane vesicles, namely, uptake was Na+-dependent, inhibited by gamma-glutamylglutamate and/or probenecid, and not inhibited by cysteinylglycine or the constituent amino acids. Studies with inhibitors of gamma-glutamyltransferase (acivicin) and gamma-glutamylcysteine synthetase (buthionine sulfoximine) showed that GSH uptake, degradation and resynthesis are independent processes. The GSH uptake rate with 1 mM GSH was approximately three-fold greater than the GSH synthetic rate with 1 mM amino acids. To examine whether uptake of GSH can supplement synthesis to protect against injury, we incubated cells with a toxic concentration of t-butylhydroperoxide with or without GSH or its constituent amino acids. Although amino acids provided significant protection, GSH provided greater protection (cells with t-butylhydroperoxide plus GSH were not significantly different from cells alone). This protection by GSH was eliminated by gamma-glutamylglutamate or probenecid, indicating that GSH uptake was required for the protection seen. Protection was also eliminated when the GSSG reductase/GSH peroxidase system was inhibited by bischloronitrosourea (BCNU), indicating that GSH transport affords protection by maintaining GSH levels in the cell. Thus, intact GSH is transported into isolated proximal tubule cells by a Na+-dependent system, and this transported GSH can be used to supplement endogenous synthesis and GSSG reduction to protect cells against oxidative injury.

Amino Acids↗

Effect of membrane potential and cellular ATP on glutathione efflux from isolated rat hepatocytes.

total glutathione (GSH) efflux was studied in isolated rat hepatocyte suspensions at repleted GSH content (45-55 nmol/10(6) cells). The increase in concentrations of medium K+ in place of Na+ caused a parallel fall in membrane potential and total GSH efflux. Ouabain (1 mM) and replacement of Na+ with choline caused a gradual fall in membrane potential and GSH efflux. Hyperpolarization of hepatocytes with lipophilic anions, thiocyanate, and nitrate was associated with significantly increased efflux. Total GSH efflux was inhibited by increasing concentrations of fructose, antimycin A, and carbonyl cyanide p-trifluoromethoxyphenylhydrazone, and there was a direct relationship between the rate of efflux and cellular ATP. Changes in total GSH efflux were paralleled by changes in GSH determined by high-performance liquid chromatography. Vanadate markedly inhibited efflux but caused only a modest decrease in cellular ATP. Fructose, antimycin A, and vanadate did not affect membrane potential or cell volume under the conditions at which efflux was inhibited. These results suggest independent requirements for both membrane potential and ATP in the transport of GSH.

Adenosine Triphosphate↗

Trans-stimulation and driving forces for GSH transport in sinusoidal membrane vesicles from rat liver.

Sinusoidal membrane vesicles from rat liver were employed to study the characteristics of GSH transport. Saturable concentration dependent uptake was best described by the sum of a high and low Km transport. Preloading with GSH markedly stimulated the initial uptake of GSH. GSH transport was electrogenic; uptake was enhanced by an inwardly directed K+ gradient which could be blocked by the K+-channel blocker, Ba2+. The other cations such as Na+, Li+ were poor substitutes for K+. These results therefore show that net GSH transport involves movement of K+.

Animals↗

Mitochondrial transmembrane potential and pH gradient during anoxia.

The effect of anoxia on the mitochondrial transmembrane potential and pH gradient was studied in a preparation of isolated hepatocytes. Transmembrane potential (delta psi) was calculated from the distribution of triphenylmethylphosphonium between the mitochondrial, cytosolic, and extracellular compartments, which were separated by digitonin fractionation and centrifugation. Mitochondrial and cytosolic pH values were calculated from the distribution of the weak acid, dimethadione, which was determined similarly. After 30 min anoxia, the magnitude of mitochondrial delta psi was decreased from -163 to -133 mV and the delta pH (mitochondria vs. cytoplasm) was essentially unchanged (aerobic, 0.78 +/- 0.08; anaerobic, 0.76 +/- 0.11). Thus the protonmotive force (delta p = delta psi-Z delta pH), is largely retained even in the absence of electron flow and ATP synthesis. Inhibitors of the ATP synthase (oligomycin), mitochondrial adenine nucleotide carrier (atractyloside), and glycolytic pathway (2-deoxy-D-glucose) do not affect the ability of the cell to maintain delta psi during anoxia. Therefore, the results indicate that retention of the protonmotive force is not due to utilization of ATP produced by glycolysis and suggest that mechanisms exist to preserve ion distribution during anoxia.

Adenosine Triphosphate↗

Mitochondrial transmembrane ion distribution during anoxia.

The distribution of pyruvate, phosphate, malate, citrate, K+, aspartate, glutamate, ADP, and ATP between the mitochondrial and cytosolic compartments was studied in isolated rat hepatocytes exposed to 30 min anoxia. The results show that pyruvate and citrate gradients are comparable to aerobic values, indicating that the pH gradient across the membrane under anaerobic conditions is comparable to that under normal aerobic conditions. In contrast, the distribution of phosphate, malate, ATP, ADP, aspartate, and glutamate suggests that transport of these species may be inhibited during anoxia. The results are discussed in terms of potential regulation of mitochondrial function to provide a quiescent anoxic state that is capable of recovering normal function on reoxygenation.

Adenine Nucleotides↗

Suppression of mitochondrial respiratory function after short-term anoxia.

Exposure of rat hepatocytes to 30 min anoxia resulted in a substantial decrease in O2 consumption on reoxygenation. Measurement of the sequestered Ca2+ pool of mitochondria by selective release with the protonophore, carbonylcyanide-p-trifluoromethoxyphenylhydrazone (FCCP), and quantitation with the metallochromic indicator, arsenazo III, showed that anoxia caused a marked decrease in mitochondrial Ca2+. This loss could, in part, be due to decreased electrophoretic uptake resulting from a 20% decrease in the magnitude of the mitochondrial transmembranal potential. The decrease was associated with a decrease in ATP synthase activity as expected from the Ca2+ dependence of endogenous inhibitor binding to the ATP synthase. These results show that short-term anoxia suppresses mitochondrial function in hepatocytes and suggest that mitochondrial Ca2+ content may be important in this regulation. Regulation of the ATP synthase and other ion transport systems may provide a means to preserve ion distribution and protonmotive force and thereby prolong the period during which cells can tolerate anoxia.

Animals↗

Determinants of mitochondrial O2 dependence in kidney.

The O2 dependence of mitochondrial cytochromes was studied in suspensions of isolated rat kidney cells to examine the determinants of renal mitochondrial function. Direct spectroscopy of the oxidation of cytochromes c + c1, a + a3, and b561 + b566 showed that oxidation-reduction changes of the entire electron transport chain occur over the same range of O2 concentrations; this suggests that the mitochondrial cytochromes function as a single unit in response to O2 changes. Half-maximal oxidation (P50 value) of cytochrome c + c1 in intact cells was 3.6 microM but was only 0.45 microM in isolated renal cortex mitochondria under state 3 conditions. This is consistent with the existence of a substantial O2 concentration gradient from the extracellular space to the region around the mitochondria under hypoxic conditions. Comparison with results for digitonin-treated cells under state 3 conditions indicates that the distribution of mitochondria within the cellular structure is an important determinant of the cellular O2 dependence. In addition, the mitochondrial O2 dependence varies as a function of cellular respiration rate. Stimulation of the O2 consumption with either a protonophore, carbonyl cyanide p-trifluoromethoxyphenylhydrazone, or a sodium ionophore, nystatin, increased the P50 value. Conversely, inhibition of ATP consumption by Na+-K+-ATPase with ouabain, or inhibition of mitochondrial electron transport with antimycin A, decreased the P50 value. Thus the O2 concentration required for mitochondrial function in the kidney is affected by mitochondrial distribution within the cell as well as by the functional demands imposed on the cell.

Animals↗

Respiratory characteristics of neonatal rat hepatocytes.

Mitochondrial function was studied in isolated hepatocytes from newborn rats to determine the substrate requirements and oxygen dependence of perinatal respiratory activity. The results show that neonatal O2 consumption is markedly dependent on succinate availability; the respiration rate was extremely low in the absence of exogenous substrates, but was stimulated 15-fold by succinate, with half-maximal stimulation of O2 consumption at 0.5 mM succinate. Significant inhibition of respiration by low concentrations of antimycin A suggests that the succinate-induced increase in cellular O2 consumption was primarily due to mitochondrial activity. In contrast, other potential metabolic fuels at comparable concentrations (2.5 to 10 mM) gave less than 2-fold stimulation. Half-maximal oxidation (P50 value) of the mitochondrial cytochromes occurred at very low O2 concentrations and was sensitive to factors that alter cellular O2 consumption. The P50 for cytochrome c oxidation (0.52 microM with 1.5 mM succinate) was, respectively, increased or decreased by additions of succinate or antimycin A. These distinctly lower P50 values for mitochondrial function in neonatal cells compared to adult cells could be a major factor in the ability of fetal and neonatal cells to tolerate relatively low O2 concentrations.

Animals↗

Kinetics of glutathione efflux from isolated rat hepatocytes.

The characteristics and kinetics of glutathione (GSH) efflux were examined in homogeneous suspensions of freshly isolated rat hepatocytes. GSH efflux was measured as its linear accumulation in the suspension medium. Appearance of GSH extracellularly was reflected in a quantitative loss in cellular GSH. However, the total GSH remained essentially unchanged, indicating minimal net synthesis of GSH under these experimental conditions. GSH efflux was sensitive to temperature, with a calculated Q10 value of 2.3. A wide range of cellular GSH concentration ranging from near complete and moderate depletion to severalfold the control values was achieved by treatment of animals or cells with various GSH depletors or inducers. At physiological (fed) and elevated (3-methylcholanthrene- and CoCl2-induced) cellular GSH, the rate of GSH efflux was near maximum. The rate fell dramatically to 50% maximum at a GSH concentration equaling 35 nmol/10(6) cells. A 48-h fast resulted in a 40% loss of cellular GSH, with a corresponding decrease in efflux rates. Addition of GSH to the incubation medium had no effect on efflux rates. The relationship of GSH efflux to cellular GSH concentration was characterized by apparent sigmoidal saturation kinetics. The data were fitted well by the Hill model with the following kinetic parameters: Vmax = 0.25 nmol X 10(6) cells-1 X min-1, Km = 3.5 mM, and n = 3. These results correspond very closely to our previous findings in the perfused liver.

Animals↗

Mechanism of inhibition of glutathione efflux by methionine from isolated rat hepatocytes.

We studied mechanism of inhibition of glutathione (GSH) efflux by methionine with freshly isolated rat hepatocytes. Inhibition was specific for L-methionine and was not due to changes in membrane potential or cell volume. Methionine (100 microM) inhibited GSH efflux from cells having 20-60 nmol GSH/10(6) cells. Inhibition was overcome in cells with greater than 75 nmol GSH/10(6) cells. Kinetics of control and inhibited efflux were sigmoidal saturable and were fitted well with the Hill model having three cooperative binding per transport sites. Vmax was the same for both cases (0.24 +/- 0.013 nmol X min-1 X 10(6) cells-1), implying that the inhibition was competitive. Apparent Km of efflux was 3.3 +/- 0.20 mM for controls but was shifted to 5.6 +/- 0.14 mM (P less than 0.01) in the presence of 100 microM methionine. Kinetic analysis of the inhibition by varying concentrations of methionine estimated Ki = 61.3 +/- 6.0 microM and n = 1.2 +/- 0.07, suggesting involvement of a single inhibition site. Methionine uptake was independent of GSH concentration, and blocking its uptake with 2-amino-2-norbornanecarboxylic acid did not affect inhibition. When methionine-preloaded cells were resuspended in methionine-free buffer, GSH efflux rapidly returned to control levels, whereas digitonin-releasable cellular methionine remained nearly constant. Thus, inhibition appeared to be exerted from outside the cell, possibly through an allosteric mechanism. A consequence of inhibition of GSH efflux by methionine was decreased uptake of cysteine equivalents from extracellular cystine.

Animals↗

Drug-induced hepatotoxicity.

Drug-induced injury to the liver can mimic any form of acute or chronic liver disease. Acute injury to the liver frequently is due to the action of cytochrome P450, which breaks down drugs into electrophiles or free radicals; these reactive metabolites can covalently bind to protein and unsaturated fatty acids or induce lipid peroxidation, respectively. These events may impair vital functions of the cell, such as maintenance of calcium homeostasis, leading to death; or hypothetically they may elicit a hypersensitivity reaction directed mainly at the liver. Glutathione and tocopherol play critical roles in cellular defense. Cholestatic disease caused by drugs results from a selective disturbance in bile secretion. Agents such as estrogens, chlorpromazine, and monohydroxy bile acids alter the chemical and physical properties of membranes, leading to impaired activity of carriers and pumps for bile acids and electrolytes. Certain drugs produce chronic liver disease that is pathologically identical to chronic active hepatitis, biliary cirrhosis, or alcoholic liver disease.

Acetaminophen↗

Gamma-glutamylcysteine: a substrate for glutathione S-transferases.

A new high performance liquid chromatography (HPLC) method for the separation of gamma-glutamylcysteine (GC) from glutathione (GSH) following derivatization with 1-chloro-2,4-dinitrobenzene (CDNB) was developed using a Vydac C18 column and an acetonitrile-trifluoroacetic acid gradient. When the derivatization of GC, GSH, cysteine, and cysteinylglycine was performed with GSH S-transferase, peak heights for the GC and GSH derivatives were accentuated markedly, suggesting that GC, like GSH, is an enzyme substrate. Subsequently, GC was found to be a substrate for five purified forms of rat hepatic GSH S-transferase. However, the Km for GC was about 6-20 times higher than that for GSH. GSH was a competitive inhibitor of GC-CDNB conjugation, indicating that GC and GSH share the same binding site on the transferase. However, endogenous hepatic GC content in fed rats was only 5.8 +/- 0.1 nmoles/g, three orders of magnitude lower than GSH. Thus, under normal circumstances, GC would not be expected to contribute to detoxification reactions catalyzed by the GSH S-transferases. Its weak interaction with the GSH site of the GSH S-transferases supports the role of the glycine moiety of GSH in enhancing this interaction.

Animals↗

Oxygen dependence of oestrogen production by human placental microsomes and cultured choriocarcinoma cells.

The oxygen dependence of oestrogen (oestrone and 17 beta-oestradiol) formation from androstenedione and testosterone was studied in term human placental microsomes and in cultured human choriocarcinoma cells (BeWo line). Incubations were performed under various steady-state oxygen concentrations and the production of oestrone and 17 beta-oestradiol quantitated by specific radioimmunoassays. The aromatization of C19-steroids by both placental microsomes and choriocarcinoma cells was shown to be oxygen dependent over a wide range of O2 concentrations. The results indicate that placental oxygenation may be a critical factor in determining oestrogen production in vivo. Therefore, impaired oestrogen biosynthesis due to hypoxia could be an important factor in a variety of physiological and pathological conditions.

Androstenedione↗