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O W Griffith

Publications and source records attributed to O W Griffith.

At least 73 records · Page 4Linked to original sources

Macrophage and endothelial cell nitric oxide synthesis: cell-type selective inhibition by NG-aminoarginine, NG-nitroarginine and NG-methylarginine.

Many cell types are known to synthesize nitric oxide (NO.) from L-arginine. There appear to be at least two forms of NO. synthase: an inducible, tetrahydrobiopterin- and flavin-dependent activity exemplified by the macrophage enzyme and a constitutive, Ca+(+)-dependent activity exemplified by the endothelial cell enzyme. L-NG-methylarginine inhibits NO. synthesis by both cell types. We now report that L-NG-aminoarginine and L-NG-nitroarginine are about 100-fold more potent than NG-methylarginine in blocking endothelial cell NO. synthesis. In contrast, NG-aminoarginine and NG-methylarginine are about equipotent with macrophages whereas NG-nitroarginine is much less potent. Since macrophage and endothelial cell NO. synthesis are differentially sensitive to the inhibitors, the panel of inhibitors can be used in complex biological systems to determine if macrophage-like or endothelial-like cells are the predominant source of NO.. Indeed, all three inhibitors elicit a strong pressor response in the anesthetized guinea pig, a result consistent with the view that endothelial cells continually produce vasodilatory NO(.).

Animals↗

Rate of buthionine sulfoximine entry into brain and xenotransplanted human gliomas.

Buthionine sulfoximine (BSO) is an inhibitor of glutathione synthesis and can be used to potentiate the effects of chemotherapeutic alkylating agents and radiotherapy. We examined the rates of influx and efflux of [35S]BSO administered to athymic mice with and without xenografted D-54MG human gliomas. Three analytic approaches were applied to the experimental data to obtain values of the blood-to-tissue influx constant, K1, of BSO. Multiple time point experiments in tumor-bearing mice were analyzed with a two-compartment model and nonlinear fitting routines, and by graphical analysis which assumed no backflux of BSO from tissue to blood. A third approach used single time point data in nontumor-bearing mice and assumed no backflux. Calculated values of the K1 of BSO ranged from 0.23 to 1.35 microliters/g/min in tumor-free cortex, and from 5.3 to 6.3 microliters/g/min in the D-54MG gliomas. The tissue-to-blood efflux constant, k2, was zero in both cortex and tumor, suggesting that BSO entered cells and was trapped once it crossed the blood-brain barrier. Estimates of plasma vascular space (Vp) ranged from 2 to 20 microliters/g in cortex, and from 103 to 169 microliters/g in tumor. Another set of experiments, done in normal mice with different doses of BSO, suggested that BSO competes for neutral amino acid transport sites at the blood-brain barrier, but that the capacity of the carrier-mediated transport system is low and saturates at administered doses of about 0.5 mmol/kg (corresponding to plasma concentrations of about 12 mumol/ml). The rate of entry into brain was proportional to the octanol/water partition coefficient and molecular weight of BSO, which also supports passive diffusion as the means of entry. Consequently, although the rate of BSO entry into D-54MG gliomas was between 4 and 30 times higher than the rate of entry into tumor-free cortex, the results of these experiments suggest that most of the BSO that enters brain tumors in the doses commonly used in experimental situations will cross capillaries by passive diffusion.

Animals↗

NG-methyl-L-arginine inhibits tumor necrosis factor-induced hypotension: implications for the involvement of nitric oxide.

Clinical assessment of the activity of tumor necrosis factor (TNF) against human cancer has been limited by a dose-dependent cardiovascular toxicity, most frequently hypotension. TNF is also thought to mediate the vascular collapse resulting from bacterial endotoxin. The present studies address the mechanism by which TNF causes hypotension and provide evidence for elevated production of nitric oxide, a potent vasodilator initially characterized as endothelium-derived relaxing factor. Nitric oxide is synthesized by several cell types, including endothelial cells and macrophages, from the guanidino nitrogen of L-arginine; the enzymatic pathway is competitively inhibited by NG-methyl-L-arginine. We found that hypotension induced in pentobarbital-anesthetized dogs by TNF (10 micrograms/kg, i.v., resulting in a fall in mean systemic arterial pressure from 124.7 +/- 7 to 62.0 +/- 22.9 mmHg; 1 mmHg = 133 Pa) was completely reversed within 2 min following administration of NG-methyl-L-arginine (4.4 mg/kg, i.v.). In contrast, NG-methyl-L-arginine failed to reverse the hypotensive response to an equivalent depressor dose of nitroglycerin, a compound that acts by forming nitric oxide by a nonenzymatic, arginine-independent mechanism. The effect of NG-methyl-L-arginine on TNF-induced hypotension was antagonized, and the hypotension restored, by administration of excess L-arginine (100 mg/kg, i.v.). Our findings suggest that excessive nitric oxide production mediates the hypotensive effect of TNF.

Animals↗

L-buthionine-sulfoximine-mediated radiosensitization in experimental interstitial radiotherapy of intracerebral D-54 MG glioma xenografts in athymic mice.

An intracranial (i.c.) interstitial radiotherapy model in athymic nude mice bearing i.c. D-54 MG human glioma xenografts was developed, allowing evaluation of the therapeutic benefits seen after L-buthionine-S,R-sulfoximine (L-BSO)-mediated depletion of tumor glutathione levels. Administration of L-BSO [2.5 mmol/kg intraperitoneal injections x 4 doses plus concomitant availability in acidified (pH 3.0) drinking water at a concentration of 20 mM] resulted in depletion of tumor glutathione levels to 0.15 mumol/g wet weight (7.9% of control). The therapeutic activity of i.c. interstitial radiotherapy with an 125I seed was enhanced after L-BSO-mediated glutathione depletion, with increases in median survival of 13.4 to 30.5% over that seen with 125I seeds alone. These studies demonstrate a potential role for BSO in enhancing the therapeutic activity of interstitial radiotherapy.

Animals↗

Lack of effect of glutathione depletion by L-buthionine-S,R-sulfoximine on gentamicin nephrotoxicity in rats.

The mechanism of gentamicin-induced renal proximal tubular cell injury is not known, but generation of reactive oxygen species with subsequent lipid peroxidation has been proposed. In this study, male adult rats were given gentamicin and L-buthionine-S,R-sulfoximine (BSO), a selective glutathione (GSH)-depleting agent, to determine the effects of GSH depletion on acute gentamicin-induced nephrotoxicity. Urinary N-acetyl-beta-glucosaminidase (NAG) excretion increased equally in the groups given gentamicin alone compared to the groups given gentamicin and BSO. BSO treatment alone did not increase NAG excretion. GSH depletion by BSO did not enhance either gentamicin-induced azotemia or the degree of cell necrosis seen by light microscopy. In conclusion, BSO-induced GSH deficiency does not enhance acute gentamicin nephrotoxicity, suggesting that reactive oxygen species are not the major initiating cause of gentamicin-induced acute kidney injury.

Acetylglucosaminidase↗

L-arginine, but not N alpha-benzoyl-L-arginine ethyl ester, is a precursor of endothelium-derived relaxing factor.

N alpha-benzoyl-L-arginine ethyl ester (BAEE) is a vasorelaxant which resembles an arginine-containing peptide; its action may be partially endothelium-dependent. Because L-arginine (ARG) has little potency as a vasorelaxant, it has been proposed that an arginine-containing peptide, rather than free ARG, is the immediate precursor of endothelium-derived relaxing factor/nitric oxide (EDRF/NO). In the present study we have characterized pharmacologically the vasorelaxant effect of BAEE and assessed the ability of BAEE to serve as a substrate for EDRF/NO synthesis. BAEE elicited a concentration-dependent vasorelaxation of guinea pig pulmonary artery (EC50 of 0.36 +/- 0.05 mM). This vasorelaxation was neither antagonized by -NG-methyl-L-arginine (100 microM), a competitive inhibitor of EDRF/NO synthesis from ARG, nor potentiated by superoxide dismutase (60 U/ml), a superoxide anion scavenger that prolongs EDRF lifetime. Additionally, compound LY 83583 (1 microM) and methylene blue (10 microM), inhibitors of soluble guanylyl cyclase, failed to block BAEE-induced vasorelaxation. Moreover, endothelium removal potentiated the vasorelaxant effect of BAEE 3-fold. Thus, BAEE-induced vasorelaxation is mediated by a direct action on vascular smooth muscle that is unrelated to EDRF/NO synthesis. Furthermore, ARG, but not BAEE, overcame the inhibition by NG-methyl-L-arginine of the acetylcholine-induced endothelium-dependent cyclic GMP accumulation in guinea pig aortic rings and of A23187-induced nitrite formation by cultured bovine aortic endothelial cells (nitrite is a convenient indicator of NO biosynthesis). Thus, BAEE cannot substitute for ARG as a substrate for EDRF/NO biosynthesis. Collectively, our findings support the notion that free ARG, rather than an arginine-containing peptide related to BAEE, is the immediate biosynthetic precursor of EDRF/NO.

Acetylcholine↗

Establishment of a melphalan-resistant rhabdomyosarcoma xenograft with cross-resistance to vincristine and enhanced sensitivity following buthionine sulfoximine-mediated glutathione depletion.

A melphalan-resistant human rhabdomyosarcoma xenograft, TE-671 MR, was established in athymic mice by serial melphalan treatment of the parent xenograft, TE-671, at the 10% lethal dosage (LD10); significant resistance was evident after ten passages of the tumor. TE-671 MR demonstrated a doubling time of 3.5 days and a latency period to 1000-mm3 tumors of 27.5 days. The glutathione level of TE-671 MR was 2.36 mumol/g tumor, wet weight, 2-fold higher than the parent line. The glutathione S-transferase activity of TE-671 MR was 117.8 mumol/min/mg protein, essentially unchanged from the parent line. Although TE-671 MR demonstrated cross-resistance to vincristine, dot blot analysis did not reveal an elevated expression of mdr1 mRNA in the resistant line. TE-671 MR demonstrated a 9.7-day growth delay following treatment with melphalan at the LD10 (compared to 20.9 days for the parent line). Treatment with L-buthionine-SR-sulfoximine (BSO) resulted in increased sensitivity to melphalan subsequently administered at 50% of the LD10 (melphalan alone, growth delays of 3.7 and 4.6 days in duplicate trials; melphalan plus BSO, growth delays of 7.2 and 9.8 days). Sensitivity to melphalan equal to that of the parent line TE-671 was not achieved, however. Treatment with BSO did not result in significantly enhanced sensitivity to subsequently administered vincristine (50% of the LD10) (vincristine alone, growth delays of 6.8 and 6.9 days in duplicate trials; vincristine plus BSO, growth delays of 10.9 and 7.5 days). These results suggest that generation of melphalan resistance may be associated with development of cross-resistance to vincristine; this resistance may be associated with (although not necessarily mediated by) glutathione elevation; this resistance may be partially overcome by BSO-mediated depletion of glutathione.

Animals↗

Glutathione monoethyl ester: high-performance liquid chromatographic analysis and direct preparation of the free base form.

Glutathione monoethyl ester (L-gamma-glutamyl-L-cysteinylglycine ethyl ester) was shown by R. N. Puri and A. Meister (1983, Proc. Natl. Acad. Sci. USA 80, 5258-5260) to be taken up by several tissues and intracellularly hydrolyzed to GSH. Since GSH itself is not significantly taken up by tissues, glutathione monoesters provide the most direct and convenient means available for increasing the intracellular GSH concentration of many tissues and cell types. In previous studies glutathione esters were prepared by HCl- or H2SO4-catalyzed esterification, and the product esters were precipitated as acidic salts by addition of ether to the reaction mixtures. In the present studies, glutathione monoethyl ester was synthesized by H2SO4-catalyzed esterification in the presence of sodium sulfate as the dehydrating agent. When no GSH remained, alcohol-washed Dowex-1 resin (hydroxide form) was added to remove sulfate and neutralize the reaction mixture. After the resin was removed by filtration, glutathione monoethyl ester crystallized in the chilled filtrate. The product was free of sulfate, GSH, and glutathione diester; its solutions in water or saline were neutral. Preparations obtained to date are nontoxic when administered to mice in doses up to at least 10 mmol/kg. Progress of the esterification reaction and purity of the product were determined quantitatively by HPLC after derivatization of the thiols with monobromobimane. Elution times of GSH, glutathione diester, and glutathione monoesters involving either the glutamyl or the glycyl carboxylate groups are reported.

Animals↗

L-arginine availability determines the duration of acetylcholine-induced systemic vasodilation in vivo.

In vitro studies have shown that acetylcholine-induced vasorelaxation is mediated by endothelium-derived relaxing factor/nitric oxide (EDRF/NO). EDRF/NO is synthesized from L-arginine by an enzymatic pathway that is inhibited by L-NG-methylarginine. To assess whether EDRF/NO also mediates the vasodilating action of acetylcholine in vivo, we have investigated the effect of L-arginine and L-NG-methylarginine on the hypotensive response to acetylcholine in the anesthetized guinea pig. L-arginine prolonged the duration of the depressor response to acetylcholine and L-NG-methylarginine decreased it. However, neither L-arginine nor L-NG-methylarginine modified the magnitude of acetylcholine's hypotensive effect unless the blood pressure was previously elevated by infusion with norepinephrine. Thus, de novo synthesis of nitric oxide from L-arginine contributes importantly, but not exclusively, to acetylcholine's hypotensive effect in the guinea pig. Furthermore, the concentration of circulating L-arginine may influence the duration and magnitude of acetylcholine-induced depressor responses under normotensive and hypertensive conditions.

Acetylcholine↗

NG-methylarginine, an inhibitor of endothelium-derived nitric oxide synthesis, is a potent pressor agent in the guinea pig: does nitric oxide regulate blood pressure in vivo?

Nitric oxide is a major endothelium-derived vascular smooth muscle relaxing factor; its synthesis from L-arginine is selectively inhibited by L-NG-methylarginine. To assess whether basal nitric oxide release contributes to blood pressure regulation in vivo, we have investigated the cardiovascular effects of L-NG-methylarginine in the anesthetized guinea pig. L-NG-methylarginine (0.1-10 mg/kg, i.v. bolus) elicited a sustained, dose-dependent, increase in arterial pressure and a moderate bradycardia. L-arginine (30 mg/kg i.v.) prevented or reversed the pressor effect of L-NG-methylarginine, while atropine (2 mg/kg) abolished the associated bradycardia. In contrast, L-arginine did not attenuate the pressor effect of norepinephrine or angiotensin. Our findings suggest that basal nitric oxide production is sufficient to modulate peripheral vascular resistance; hence nitric oxide may play a role in arterial pressure homeostasis.

Angiotensin II↗

Increased melphalan activity in intracranial human medulloblastoma and glioma xenografts following buthionine sulfoximine-mediated glutathione depletion.

In previous studies we demonstrated that administration of buthionine sulfoximine (BSO) to athymic BALB/c mice bearing intracranial human glioma xenografts resulted in highly selective depletion of glutathione in neoplastic tissue with minimal effects on contralateral normal brain tissue. In the present study we treated athymic BALB/c mice bearing intracranial human glioma (D-54 MG) or medulloblastoma (TE-671) xenografts with melphalan alone or BSO followed by melphalan. Administration of BSO depleted intracellular glutathione to 7.5% of the control level. BSO plus melphalan resulted in a significant increase in median survival over that produced by melphalan alone: 45.3% versus 26.4% in TE-671 and 69% versus 27.6% in D-54 MG. These studies justify further efforts to modulate chemotherapeutic and radiotherapeutic interventions of primary malignant brain tumors by depletion of glutathione.

Animals↗

Effect of orally administered L-carnitine on blood ammonia and L-carnitine concentrations in portacaval-shunted rats.

L-Carnitine (16 mmoles per kg, injected intraperitoneally) is reported to protect mice against subsequent injection of ammonium acetate given at the unprotected LD100. The present studies in rats show a variable protective effect of L-carnitine (16 mmoles per kg) administered 1 hr prior to an LD100 dose of ammonium acetate. Survival ranged from 100% to 35%. In two experiments, protection was highly significant; in a third experiment, L-carnitine did not protect against death but did significantly prolong time to death. Although the cause of this variability is not known, the data establish the protective effect in rats of L-carnitine given 1 hr before ammonium acetate. D-Carnitine and deoxycarnitine, chemically related analogs unable to substitute for L-carnitine metabolically, are without protective effect. The protective effect of L-carnitine is short-lived and is, for example, completely lost if ammonium acetate is given 24 hr after L-carnitine administration. In contrast, the free carnitine content of brain rises slowly but continuously for at least 24 hr following a single dose of L-carnitine. The observation that protection from ammonia toxicity is not correlated with brain carnitine levels strongly suggests a major peripheral component to the protective effect. Chronically hyperammonemic (portacaval-shunted) rats were found to have significantly depressed total and free carnitine levels in blood compared to normal and sham-operated controls. The hypocarnitinemia, but not the hyperammonemia, was completely reversed in portacaval-shunted rats given drinking water containing 10 mM L-carnitine.(ABSTRACT TRUNCATED AT 250 WORDS)

Acetates↗

Buthionine sulfoximine-mediated depletion of glutathione in intracranial human glioma-derived xenografts.

D-54 MG, a human glioma-derived continuous cell line growing as subcutaneous or intracranial xenografts in athymic mice, was found to be sensitive to the effects of D,L-buthionine-(SR)-sulfoximine, a selective inhibitor of gamma-glutamylcysteine synthetase. Intraperitoneal administration of one dose of buthionine sulfoximine (BSO, 5 mmol/kg) resulted in depletion of total intracellular glutathione to 57 and 47% of control 12 hr, and 73 and 23% of control 24 hr, after BSO in subcutaneous and intracranial xenografts respectively. Concurrent measurement of total glutathione in the contralateral (non-tumor-containing) cerebral hemisphere in mice bearing intracranial D-54 xenografts demonstrated insignificant depletion of glutathione. Multiple doses of BSO, at 12-hr intervals, resulted in further depletion to 27% (s.c.) and 16.5% (i.c.) of control 12 hr following the final dose of BSO. Quantitative analysis of BSO delivery to xenograft and contralateral brain tissue revealed transfer constants, K1, of 15.8-24.1 x 10(-3) and 2.4 x 10(-3) ml.g-1.min-1 for xenograft and "normal" brain respectively. This highly selective depletion of glutathione in neoplastic tissue versus surrounding non-neoplastic host tissue may have therapeutic implications for the rational use of chemotherapeutic and radiotherapeutic intervention.

Animals↗

In vivo studies of cysteine metabolism. Use of D-cysteinesulfinate, a novel cysteinesulfinate decarboxylase inhibitor, to probe taurine and pyruvate synthesis.

Although several pathways contribute to the catabolism of L-cysteine, the products formed are few--taurine + CO2 and pyruvate + ammonia + sulfate. L-Cysteinesulfinate is a key intermediate that is either decarboxylated to ultimately yield taurine or transaminated to yield pyruvate. There is strong evidence that pyruvate is also formed by several cysteinesulfinate-independent pathways collectively referred to as "cysteine desulfhydrase." The quantitative importance of cysteinesulfinate-independent pathways of taurine synthesis is less clear, but it has been suggested that taurine synthesis from the cysteamine released during phosphopantetheine and CoASH turnover accounts for the high taurine content of tissues with very low levels of cysteinesulfinate decarboxylase activity (e.g. skeletal muscle and heart). In the present studies, the metabolic flux through each of these pathways was quantitated in vivo by monitoring the formation of respiratory 14CO2 in mice administered L-[1-14C]- or L-[3-14C]cyst(e)ine. Mice given 0.05 mmol/kg of L-cystine or 0.5 or 2.5 mmol/kg of L-cysteine catabolize 35, 51, and 72% of the dose, respectively, in 6 h; the relative contribution of taurine synthesis to total catabolism decreases from 63 to 51 to 42% as the L-cyst(e)ine dose is increased. To evaluate the role of L-cysteinesulfinate in taurine synthesis, D-cysteinesulfinate was characterized and used as a metabolism-resistant, potent, and specific inhibitor of cysteinesulfinate decarboxylase. Studies with L-[1-14C]- and L-[3-14C]cysteine in the presence of inhibitor indicate that 85-93% of taurine synthesis occurs from L-cysteinesulfinate: the calculated contribution of the phosphopantetheine pathway is small and may approximate zero. L-Cysteinesulfinate transmamination accounts for 25% of pyruvate synthesis from L-[14C]cystine (0.05 mmol/kg) but only 11% of pyruvate synthesis from L-[14C]cysteine (2.5 mmol/kg). Cysteine desulfhydrase reactions account for most of the pyruvate synthesis.

Animals↗

Enhanced melphalan cytotoxicity following buthionine sulfoximine-mediated glutathione depletion in a human medulloblastoma xenograft in athymic mice.

The effect and therapeutic consequences of buthionine-(SR)-sulfoximine (BSO)-mediated depletion of glutathione in the human medulloblastoma-derived cell line, TE-671, growing as s.c. xenografts in athymic nude mice were examined. The glutathione content of the s.c. xenografts was 1.11 +/- 0.15 mumol/g (7.79 +/- 1.61 nmol/mg of protein). Administration i.p. to tumor-bearing mice of D,L-BSO (two doses at 12-h intervals; 5 mmol/kg) depleted the glutathione content of the xenografts to 25.7% of control. Administration of a 30 mM solution of L-BSO in drinking water for 96 h depleted the glutathione content to 17.4% of control. Depletion of glutathione with these regimens resulted in a significant increase in the s.c. tumor growth delay over that produced by melphalan alone: 17.2 days versus 12.6 days for D,L-BSO (i.p.) plus melphalan versus melphalan and 22.9 days versus 16.6 days for L-BSO (p.o.) plus melphalan versus melphalan. These studies demonstrate the increased cytotoxicity of melphalan resulting from BSO-mediated depletion of glutathione in human medulloblastoma and support further efforts to modulate the chemosensitivity and radiosensitivity of this tumor by modulation of glutathione.

Animals↗

Cysteinesulfonate and beta-sulfopyruvate metabolism. Partitioning between decarboxylation, transamination, and reduction pathways.

L-Cysteinesulfonate (L-cysteate) is present in plasma, urine, and tissues in concentrations comparable to that of L-cysteinesulfinate, the primary oxidative metabolite of L-cysteine. Although cysteinesulfonate is known to be decarboxylated to taurine by cysteinesulfinate decarboxylase, the occurrence and importance of other metabolisms has not been examined. The present studies indicate that cysteinesulfonate partitions in vivo between decarboxylation and transamination; the latter reaction is catalyzed by aspartate aminotransferase and yields beta-sulfopyruvate. Whereas beta-sulfinylpyruvate, the product of cysteinesulfinate transamination, decomposes spontaneously, beta-sulfopyruvate is stable and is reduced by malate dehydrogenase to beta-sulfolactate. When L-[1-14C]cysteinesulfonate is given to mice, 60-75% is decarboxylated to taurine and about 25% is excreted in the urine as beta-sulfolactate. beta-Sulfo[1-14C] pyruvate is found to partition about equally between beta-sulfolactate and cysteinesulfonate formation; greater than 90% of the latter is decarboxylated. Parenterally administered beta-sulfo[1-14C]lactate is mostly excreted in the urine, but 12% is metabolized via beta-sulfopyruvate and cysteinesulfonate to 14CO2 and taurine. beta-Sulfopyruvate is not excreted, and only traces of sulfoacetate, perhaps formed by oxidative decarboxylation, are detected. These studies establish that cysteinesulfonate, beta-sulfopyruvate, and beta-sulfolactate are reversibly interconverted in vivo. Since only cysteinesulfonate is directly metabolized to CO2, the rate of 14CO2 formation from L-[1-14C]cysteinesulfonate is a valid measure of total cysteinesulfinate decarboxylase activity in vivo; use of this assay permits inhibitor effects to be accurately determined in intact mice. Thus, whereas in vitro assays indicate that beta-methyleneaspartate inhibits brain, liver, and kidney cysteinesulfinate decarboxylase by 0, greater than 60, and 90%, respectively, in vivo studies with L-[1-14C]cysteinesulfonate show net metabolic inhibition is about 40%.

Animals↗