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Pantethine and cystamine deplete cystine from cystinotic fibroblasts via efflux of cysteamine-cysteine mixed disulfide.

Children suffering from cystinosis, a genetic disease characterized by high levels of lysosomal cystine, are currently being treated with cysteamine to lower the cystine levels in their cells. In fibroblasts from these patients, cysteamine and its disulfide, cystamine, are equally effective in lowering cystine levels. We recently reported that pantethine, a dietary precursor of coenzyme A, depletes cystine from cultured, cystinotic fibroblasts as effectively as cystamine. To determine the mechanism of action of pantethine, and of cystamine, we have compared the fate of [35S]cystine-derived metabolites in the presence and absence of these agents. The results indicate that the ability of pantethine to deplete cystine resides in its being a metabolic precursor of cysteamine. Furthermore, both pantethine and cystamine act by generating the mixed disulfide of cysteamine and cysteine in the lysosomes, which is then rapidly excreted from the cells. The fall in intracellular [35S]cystine caused by these agents was not accompanied by a comparable increase in any intracellular metabolite; rather, it could be accounted for by the appearance of mixed disulfide in the medium. There was no accumulation of mixed disulfide in the cells. Radioactivity in cytoplasmic glutathione was, however, increased by cystamine or pantethine. Thus, cysteamine (formed intracellularly in these experiments) undergoes thiol-disulfide exchange with cystine in the lysosomes, producing cysteamine-cysteine mixed disulfide and free cysteine, which enter the cytoplasm. The free cysteine is available to several pathways, including oxidation to the disulfide or the mixed disulfide, and synthesis of glutathione. The mixed disulfide is excreted from the cell, which ultimately depletes the cell of its excess cystine.

Cells, Cultured↗

[The effect of cystamine on the outcome of dominant lethal mutations and reciprocal translocations in sex cells of mice subjected to gamma-irradiation in different doses].

Protective effect of cystamine (150 mg/kg) against genetic damages induced by gamma-irradiation in germ cells of male mice of CBA strain (at doses of 100, 300, 600 r) was studied. The application of cystamine decreased the frequency of dominant lethal mutations induced by radiation in sperms, spermatids and spermatocytes. The degree of the protective effect of cystamine depended on a radiation dose. The protective effect of cystamine was the highest at the radiation dose of 300 r. It was negligible at the radiation dose of 100 r and was completely absent at the dose of 600 r. Cystamine did not affect the rate of induced reciprocal translocations in the spermatogonia at all the radiation doses used.

Animals↗

The ability of cystamine to bind DNA.

The DNA-binding properties of cystamine compared with natural occurring polyamines have been studied in vitro by means of ethidium bromide displacement assays, studies of DNA thermal stability and analyses of DNA-B/DNA-A transition. While the first two methods did not put in evidence any peculiar property in the binding capability of cystamine, CD studies showed the interesting ability of cystamine to shift the equilibrium B/A-DNA towards the B-form. In the same experimental conditions spermine and spermidine induced the A form of DNA, instead putrescine and cadaverine did not show any particular activity. The ability of cystamine to bind DNA, as shown also by its DNA radioprotective capability, might be important in chromatin condensation and stabilization, and might be a cause of the antiviral activity observed by some authors.

Animals↗

Mechanism for the inhibition of transglutaminase 2 by cystamine.

Cystamine is neuroprotective in a number of models of neurodegeneration. The therapeutic benefit of cystamine has been attributed, in part, to its inhibition of transglutaminase activity. Cystamine [beta-mercaptoethanolamine (MEA) disulfide] is reduced within cells to MEA which is largely responsible for the in vivo effects of its disulfide precursor. In the current study, the amine group of MEA was shown to act as a transglutaminase (TG) substrate resulting in the formation of N(beta)-(gamma-l-glutamyl)-MEA bonds. The formation of such bonds would compete with the generation of other TG-catalyzed reactions that may contribute to neurodegeneration such as polyamination, protein cross-linking, deamination and the covalent attachment of ceramide to proteins. The demonstration that cystamine-derived MEA can form N(beta)-(gamma-l-glutamyl)-MEA bonds offers a unique tool for identifying the TG substrates that occur in diseased brains in vivo. Structure-function studies also indicated that the mercapto group of MEA significantly influences the substrate behavior of this compound. These structure-function studies also identified the following hierarchy of physico-chemical characteristics: hydrophobicity > S as the group VIII atom > distance separating the N and group VIII atom, as the major determinants contributing to the substrate behavior for low-molecular weight amine substrates of TG 2.

Animals↗

Neuroprotective effects of cystamine in aged parkinsonian mice.

Accumulating evidence suggests an important role of oxidation in pathologies such as Parkinson's disease. Here, we investigated the effects of cystamine, which has shown neuroprotection in animal models of Huntington's disease, in a parkinsonian mouse generated by the toxin MPTP. Aged mice (16 months of age) were assigned to either a 10 or 50 mg/kg/day cystamine treatment administered (1) 2 days prior, during and 14 days after MPTP lesioning or (2) beginning on the day of the MPTP lesion and for the subsequent 14 days. Pre-treatment with lower doses of cystamine (10 mg/kg) revealed increased levels of tyrosine hydroxylase (TH) positive striatal fiber (p<0.01), increased density of TH-immunoreactive cells (p<0.01), increased substantia nigra Nurr1 mRNA levels (p<0.001), and increased density of substantia nigra cells expressing the dopamine transporter (p<0.001) as compared to MPTP treated mice. These results provide strong evidence for neuroprotective properties of cystamine in this animal model of Parkinson's disease.

Aging↗

Prolonged survival and decreased abnormal movements in transgenic model of Huntington disease, with administration of the transglutaminase inhibitor cystamine.

An expanded polyglutamine domain in huntingtin underlies the pathogenic events in Huntington disease (HD), characterized by chorea, dementia and severe weight loss, culminating in death. Transglutaminase (TGase) may be critical in the pathogenesis, via cross-linking huntingtin. Administration of the TGase competitive inhibitor, cystamine, to transgenic mice expressing exon 1 of huntingtin containing an expanded polyglutamine repeat, altered the course of their HD-like disease. Cystamine given intraperitoneally entered brain where it inhibited TGase activity. When treatment began after the appearance of abnormal movements, cystamine extended survival, reduced associated tremor and abnormal movements and ameliorated weight loss. Treatment did not influence the appearance or frequency of neuronal nuclear inclusions. Unexpectedly, cystamine treatment increased transcription of one of the two genes shown to be neuroprotective for polyglutamine toxicity in Drosophila, dnaj (also known as HDJ1 and Hsp40 in humans and mice, respectively). Inhibition of TGase provides a new treatment strategy for HD and other polyglutamine diseases.

Animals↗

Enhancement of the depigmenting effect of hydroquinone by cystamine and buthionine sulfoximine.

Glutathione (GSH) performs several important biological functions, including quenching of reactive oxygen species, and protection of cells from toxic compounds such as quinones. The first step in the synthesis of GSH is catalysed by gamma-glutamylcysteine synthetase, an enzyme which is inhibited by cystamine and buthionine sulfoximine (BSO). In this study, we examined the possibility that the effect of hydroquinone (HQ) on pigmentation could be potentiated by inhibiting the production of GSH. In vitro studies using melanoma cell lines demonstrated that both cystamine and BSO could potentiate the inhibitory effects of HQ on tyrosinase activity and melanin content. A synergistic decrease in hair pigmentation was observed when a combination of HQ (2 or 4%) and BSO (5%) was applied to the dorsal skin of C57BL mice. In black hairless guinea-pigs, the application of HQ plus either BSO or cystamine resulted in a significant decrease in epidermal pigmentation when compared with any of the agents alone. The possibility exists that in the future a combination of HQ plus cystamine or BSO could be used to treat disorders such as melasma and post-inflammatory hyperpigmentation.

Animals↗

Cystamine and cysteamine increase brain levels of BDNF in Huntington disease via HSJ1b and transglutaminase.

There is no treatment for the neurodegenerative disorder Huntington disease (HD). Cystamine is a candidate drug; however, the mechanisms by which it operates remain unclear. We show here that cystamine increases levels of the heat shock DnaJ-containing protein 1b (HSJ1b) that are low in HD patients. HSJ1b inhibits polyQ-huntingtin-induced death of striatal neurons and neuronal dysfunction in Caenorhabditis elegans. This neuroprotective effect involves stimulation of the secretory pathway through formation of clathrin-coated vesicles containing brain-derived neurotrophic factor (BDNF). Cystamine increases BDNF secretion from the Golgi region that is blocked by reducing HSJ1b levels or by overexpressing transglutaminase. We demonstrate that cysteamine, the FDA-approved reduced form of cystamine, is neuroprotective in HD mice by increasing BDNF levels in brain. Finally, cysteamine increases serum levels of BDNF in mouse and primate models of HD. Therefore, cysteamine is a potential treatment for HD, and serum BDNF levels can be used as a biomarker for drug efficacy.

Aged↗

Hepatic cysteamine and non-protein sulfhydryl levels following cystamine or cysteamine treatment of galactosamine-poisoned rats.

Hepatic cysteamine and non-protein sulfhydryl (NPSH) levels were determined in galactosamine (GAL)-poisoned rats following hepatoprotective cystamine or cysteamine treatments to determine whether alterations of hepatic NPSH status could contribute to their observed protective actions. D(+)-Galactosamine HC1 (400 mg/kg, ip) was administered to male Sprague-Dawley rats at 8 pm. Cystamine diHC1 (300 mg/kg, po) or cysteamine HC1 (170 mg/kg, ip) were administered 12 hr after GAL. Hepatic NPSH levels were determined using Ellman's reagent. Hepatic cysteamine levels were determined by separating NPSH Ellman's derivatives by reversed phase HPLC. Cystamine and cysteamine caused transient elevation of NPSH levels of 1-2 nanomoles/mg liver which correlated with the presence of 1-2 nanomoles of cysteamine/mg liver. However, neither cystamine nor cysteamine prevented NPSH levels from falling to 3 nanomoles/mg tissue 24 hr after GAL. Hepatoprotective treatments did not affect long term NPSH status in GAL-poisoned rats. However, transient NPSH increases, due to the intrahepatic presence of cysteamine, may contribute to the therapeutic effects of these hepatoprotective agents.

Animals↗

The influence of cystamine on pharmacokinetics and pharmacodynamics of thioridazine.

A study on the influence of cystamine on the kinetics and dynamics of the action of thioridazine has been carried out. Higher levels of this drug in the blood and lower levels in the brain tissue than those in unpremedicated rats were determined. Half-life of thioridazine underwent shortening from 2-55 hr to 1-05 hr. Excretion of thioridazine with bile was not significantly affected by premedication with cystamine. beta-Glucuronidase activity, after an initial drop on the first day following premedication, increased to levels higher than the control values. The dynamics of the action of the thioridazine were little affected. The cataleptic action of thioridazine was enhanced on the first day after premedication with cystamine. Thioridazine depressed exploratory activity in rats more significantly only during the first three days after cystamine premedication.

Animals↗

Radioprotective effects of amifostine (WR-2721) or cystamine on radiation damage and its repair in rats whole body exposed to fission neutrons.

Sulphur containing radioprotective drugs amifostine (gammaphos, WR-2721) or cystamine (disulfide of meracaptoethylamine) of Czechoslovak production were examined in whole body fission neutrons irradiated rats in the thermal column of reactor VVR-S. Using the split-dose technic the first sublethal neutron dose in the range 1-2 Gy was followed by second lethal exposures in the two time intervals (3 or 6 days) using whole body fission neutrons irradiations (3 days interval) or whole body gamma-irradiations (6 days interval) for LD50/30 evaluation within next 30 days survival observation. In other experiments the mean survival time (MST) in days was estimated in different rats group, when animals were whole body fission neutrons irradiated twice with 3-days interval using the total lethal doses of 4 or 5 Gy. Protected rats received amifostine (160 mg.kg(-1) i.p. and 200 mg.kg(-1) i.m.) or cystamine (40 mg.kg(-1) i.p. and 50 mg.kg(-1) i.m.), control rats obtained saline 20 min before beginning of irradiation in the amount of 0.5 ml.100 g(-1) of the rat's body weight. Non-significant DRF value 1.13 for WR-2721 i.p. was calculated in survival studies in rats twice neutron irradiated with 3 days interval (DRF 1.04 for cystamine). Chemical protectors were administered before each neutron exposure. MST of twice neutron lethal iradiated rats was prolonged not regularly by radioprotectors tested. WR-2721 and cystamine i.m. were not able to increase 6 days reparation processes after sublethal 2 Gy fission neutrons whole body irradiated rats.

Amifostine↗

[The role of the hemopoietic microenvironment on the hemopoiesis-stimulating effect of cystamine].

The influence of cystamine delivered in a radioprotective dose before and after irradiation of mouse-recipients (8 Gy) on the effectiveness of exogenous bone marrow cloning has been investigated. Cystamine administered prior to irradiation exerts a protective effect on CFUs and also causes an increase in the number of splenic colonies grown from CFUs of the transplanted bone marrow. With cystamine administered after irradiation the protective effect is absent, but the CFUs number in the femur increases in recipients transplanted with intact bone marrow in comparison with those transplanted without cystamine. It is believed, that in addition to the specific protective mechanism of action of radioprotectors, there is a nonspecific mechanism of increasing the proliferation of protected stem cells that is connected with the stimulatory effect of radioprotective agents on the haemopoietic stroma elements.

Animals↗

Effect of cystamine on rat tissue GSH level and glutathione reductase activity.

Reduced glutathione (GSH) level and glutathione reductase activity were determined by means of the spectrophotometric method in various rat tissues after i.p. administration of cystamine (50 mg/kg and 20 mg/kg). GSH amount dropped in the spleen and kidney at 10 and 20 min; following this interval, an increase of GSH level was observed in the liver at 20--30 min, in the spleen and kidney at 60 min after the treatment with a radioprotective cystamine dose (50 mg/kg). The changes in GSH level induced by a non-radioprotective cystamine dose (20 mg/kg) had an opposite tendency. The activity of glutathione reductase was decreased in all tissues studied. As to the mechanism of the radioprotective action, both the inactivation of glutathione reductase activity and the changes in GSH level seem to be the factors contributing to the radioprotective effect of cystamine by strengthening the cellular radioresistance.

Animals↗

Effect of cystamine on protein, phospholipid and RNA synthesis or degradation.

Cystamine administration to rats partially inhibited (14C)-leucine incorporation to microsomal proteins, and (14C) orotic acid incorporation to RNA but markedly stimulated (32P) incorporation to liver microsomal phospholipids. Cystamine administration did not modify the decay of radioactivity of liver microsomal lipids prelabeled with (32P) or of microsomal protein prelabeled with [(14C)-guanidino]arginine. Notwithstanding cystamine increased the RNA content in total liver. Results suggest that cystamine inhibits protein synthesis, stimulates phospholipid synthesis and inhibits RNA synthesis and degradation.

Animals↗

Radioprotective and hemodynamic effects of WR-2721 and cystamine in rats: time course studies.

In experiments on rats radioprotective dose of WR-2721 (200 mg/kg) and cystamine (50 mg/kg) exhibited significant protective effects against radiation death during the first hour after their i. m. administration. Gamma rays were delivered with the dose rate of 0.35-0.31 Gy/min in gradually increased doses for the calculation of LD values and relative efficacy of the whole body irradiation. WR-2721 afforded protection with the highest dose reduction factor (DRF) of 1.51, while the best DRF value after cystamine was 1.36. No protection was found when the interval between injection of both protectors and the beginning of irradiation was longer than 60 min. WR-2721 as well as cystamine induced in pentobarbital anesthetized rats significant depression of cardiac output, hypotension and bradycardia immediately after their i. m. injections. The signs of depression of the hemodynamics persisted throughout the 4-hour observation period. Our results indicate that the hemodynamic effects of WR-2721 and of cystamine are not important for their radioprotective actions in rats.

Amifostine↗

Changes in pharmacodynamics and pharmacokinetics of psycholeptic drugs in the course of radiation disease. Effects of premedication with cystamine on dynamics and kinetics of thioridazine.

Changes in pharmacodynamics and pharmacokinetics of psycholeptic drugs in the course of radiation disease. Effect of premedication with cystamine on dynamics and kinetics of thioridazine. Acta Physiol. Pol. 1977, 28 (2): 169--179. The effect of premedication with cystamine (100 mg/kg) applied before irradiation (600 R) on exploring mobility and cataleptic action of thioridazine was investigated in rats. The levels of thioridazine in blood serum, brain tissue and in bile were determined. It was found that cystamine prevents the changes in dynamics of thioridazine action in radiation disease through abolition of disturbances in kinetics of this drug. Half-life period of thioridazine was found to be reduced and its level in the brain tissue was diminished in the irradiated, cystamine-pretreated animals in comparison with the irradiated, untreated ones.

Animals↗

Effects of cysteine and cystamine on the carbon tetrachloride induced decrease in arachidonic acid content of rat liver microsomal phospholipids.

Cystamine and cysteine inhibited the carbon tetrachloride (CCl4) prooxidant effect on rat liver microsomal preparations, at concentrations ranging from 0.001 mM to 1 mM. Cysteine exhibited a biphasic effect being an inhibitor of the prooxidant action at concentrations below 0.1 mM and acting as an enhancer at 1 mM. Cystamine but not cysteine pretreatment of the rats prevented the CCl4 induced decrease in the arachidonic acid content of liver microsomal phospholipids. However, both cystamine and cysteine led to decreases in arachidonic acid similar to that produced by CCl4 but they do not have deleterious effects on the liver. These results cast doubt on the role of lipid peroxidation in the liver cell injury by CCl4.

Animals↗

Effects of ethacrynic acid and cystamine on sodium nitroprusside-induced relaxation, cyclic GMP levels and guanylate cyclase activity in rat aorta.

1. Ethacrynic acid, an agent that alkylates sulfhydryl residues, inhibited sodium nitroprusside- and 8-bromo cyclic GMP-induced relaxations. 2. Sodium nitroprusside-induced increased levels of cyclic GMP were unaltered by ethacrynic acid. 3. Concentrations of ethacrynic acid that inhibited sodium nitroprusside-induced relaxation did not affect sodium nitroprusside-activation of crude soluble and particulate fractions of guanylate cyclase, while a higher concentration of ethacrynic acid did inhibit the activation. 4. Cystamine, an agent that oxidizes sulfhydryl residues, inhibited sodium nitroprusside-activation of crude soluble and particulate fractions of guanylate cyclase. Exposure of intact rat aorta to cystamine inhibited basal guanylate cyclase activity in the particulate fraction but, in general, not in the soluble fraction. 5. These results are consistent with the hypothesis that vascular smooth muscle relaxation requires sulfhydryl groups. The sulfhydryl groups that presumably are alkylated by ethacrynic acid are not contained within guanylate cyclase and are involved at a regulatory step after the formation of cyclic GMP. The sulfhydryl groups altered by cystamine may be located on particulate guanylate cyclase and a role for particulate guanylate cyclase in nitrovasodilator-induced relaxation needs to be examined further.

8-Bromo Cyclic Adenosine Monophosphate↗