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Formation and characterization of aurothioneins: Au,Zn,Cd-thionein, Au,Cd-thionein, and (thiomalato-Au)chi-thionein.

Three gold-containing thioneins (Au,Zn,Cd-Th, Au,Cd-Th, and (TmSAu)chi Th, where Th = thionein and TmS = thiomalate) have been prepared by the reactions of horse kidney Zn,Cd-thionein with gold thiomalate (AuSTm). When thionein was present in excess, the thiomalate ligand was displaced and the protein chelated the gold in a bidentate fashion. Primarily zinc but also some cadmium was displaced to form Au,Zn,Cd-Th or Au,Cd-Th. Excess AuSTm reacted to form (TmSAu)chi-thionein with monodentate coordination of the protein to each bound gold, retention of the thiomalate, loss of zinc and cadmium, and an increase in the Stokes radius of the product. EXAFS/XANES studies of Au,Zn,Cd-Th and (TmSAu)chi Th established that the oxidation states and coordination environments of gold were Au(I)S2 and that the gold-sulfur bond distances were 229 and 230 pm, respectively. Radioimmunoassay established that the aurothioneins retained their antigenicity to native metallothionein antibodies. Metal exchange reactions with gold were complete within 5-10 min when Zincon or 4-(2-pyridylazo) resorcinol was used to monitor Cd2+ and Zn2+ displacement.

Animals↗

Thionein gene expression in Cd++-variants of the CHO cell: correlation of thionein synthesis rates with translatable mRNA levels during induction, deinduction, and superinduction.

The relationship of thionein synthesis rates to translatable cytoplasmic thionein mRNA levels was investigated for the first time in a cultured cell system. Thionein synthesis was induced in Cdr, a cadmium-resistant variant of CHO, by exposure to 2 microM CdCl2. Following a short (1.5 hr) lag, thionein synthesis increases to a rate that is at least 30 times the uninduced rate 7-8 hr after addition of Cd++. This increase is blocked by the coincident addition of a actinomycin D. Cytoplasmic thionein mRNA levels, measured by translation in a modified wheat germ system, increase rapidly following induction to values approximately 25 times uninduced levels within 6-8 hr. The increase in thionein mRNA precede proportionate increases in thionein synthesis by 0.5-1.0 hr. Continued exposure to Cd++ results in a decreased thionein synthesis rate after 8 hr. By 30 hr, the rate is one-half that seen 6-8 hr after induction. Removal of Cd++ after 8 hr results in a rapid decrease in thionein synthesis (t 1/2 approximately 4 hr). Both decreases are inhibited by the addition of actinomycin. In all instances--induction, deinduction, and actinomycin-mediated "super-induction"--translatable thionein mRNA levels and thionein synthesis rates increase, decrease, or are maintained coordinately. The results suggest that thionein synthesis in Cdr is controlled primarily by the level of translatable cytoplasmic thionein mRNA.

Animals↗

Postinductive actinomycin D effects on the concentrations of cadmium thionein, zinc thionein, and copper chelatin in rat liver.

The time courses of induction in rat liver of copper chelatin by copper, cadmium thionein by cadmium, and zinc thionein by copper, cadmium, and zinc were monitorg metal were used in order to avoid toxic effects, being 5 mg zinc, 0.5 mg copper, and 0.25 mg cadmium per kg body weight. Peak times of induction and half times of decay observed were: copper chelatin (9 h, 8.6 h), cadmium thionein (18 h, 6.80 days), and zinc thionein (zinc rats, 18 h, 10.1 h; copper rats, 9 h, 18.2 h; cadmium rats, 24 h, 4.53 days). Administration of actinomycin D (1 mg per kg body weight) at the peak times of induction of the various proteins had no effect on the concentrations of chelatin or cadmium thionein observed up to 24 hours later, but in the case of zinc thionein, induced by zinc, copper, or cadmium, elevated concentrations were observed up to 23 h after administration of the drug. Such behavior is reminiscent of superinduction previously seen with other proteins and enzymes. We postulate that the intracellular concentration of free zinc in liver is of fundamental importance in the induction of zinc thionein, and this can be distributed by exogenous copper or cadmium resulting in the induction of synthesis of zinc thionein.

Animals↗

Studies of cadmium-thionein induced nephropathy: time course of cadmium-thionein uptake and degradation.

The renal uptake and degradation of cadmium-thionein (Cd-Mt) were examined in relation to nephrotoxic effects. Studies with Cd-Mt labelled with [3H]cystine showed that both Cd2+ and tritium uptake in the kidneys were complete 4 h after injection. During this period, renal copper content doubles due to the replacement of thionein-bound Cd2+ with Cu2+. This process probably occurs in the blood, prior to metallothionein uptake. Once reabsorbed, the protein is rapidly degraded in the lysosomes at a rate in step with uptake. Consequently, at 4 h virtually all of the Cd-Mt was degraded, resulting in a high concentration of non-thionein bound Cd2+. This Cd2+ (approx. 11-12 micrograms Cd2+/g, i.e. 70% of the total renal Cd2+ burden) produces the toxic effects. Between 2-4 h, new thionein synthesis is initiated and Cd2+ gradually becomes bound as the metallothionein. By 4 days, 80% of the renal Cd2+ is bound to endogenous thionein. These studies demonstrate that even small amounts of non-thionein bound Cd2+ are toxic to the kidney.

Animals↗

Formation, circular dichroism and x-ray photoelectron spectroscopy of hepatic Zn-thionein.

The formation of the powerful Zn binding protein called Zn-thionein was examined using male albino rats and [14C]cysteine, as cystein is known to be the most abundant constituent of this metal protein. 65% of the hepatic [14C]cysteine was incorporated into the protein portion of freshly prepared Zn-thionein. The protein was isolated by a combination of ethanol/chloroform treatment and various chromatographic steps, including ion exchange and gel filtration. 4.7 mol of Zn, 0.02 mol of Cd and less than 0.001 mol of either Cu or Hg were found per 12 000 g of portein. It was presumed that considerable amounts of Zn were lost during these isolation procedures, with the consequence of disulphide gridge formation. Indeed, the presence of R-S-S-R was deduced from circular dichroism and X-ray photoelectron spectroscopy. Due to the clearly detectable disulphide chromophore in the circular dichroism spectrum, it was possible to assign the shoulder at S 2p1/2,3/2 = 162.7 eV of the X-ray photoelectron spectrum of native Zn-thionein to R-S-S-R and not to strongly polarized sulphur. Upon reducing R-S-S-R-containing native Zn-thionein with dithiothreitol, all oxidised thiolate moieties of the thionein molecule could be restored. The addition of ZnCl2 with the subsequent desalting of extraneously bound Zn2 yielded a homogeneous Zn-thionein with 9.6 mol Zn2 per mol protein. A stoichiometry of ZnRS 1:3 was seen, which confirmed earlier reports of the existence of the mixed Cd,Zn-thionein. The conversion of mixed Cd,Zn-thionein into homogeneous Zn-, Cd-, Hg- and Cu-thionein by the gel filtration technique proved successful. From chiroptical measurements, the extraordinary contribution of the metal chromophores to the circular dichroism was seen. Due to the differences in the geometry of complexes formed by the respective metal ions, dramatic changes in the protein portion were expected. Polyacrylamide disc electrophoresis of purified native untreated Zn-thionein resulted in the appearance of two or more bands. This phenomenon was attributed to the different migration rates of cystine-thionein and thiolate-rich Zn-thionein, and was consistent with the spectral properties of the above Zn-protein species. By contrast, only one single band was monitored when a homogeneous metal-thionein was electrophoresed.

Amino Acids↗

Reactivation in vitro of zinc-requiring apo-enzymes by rat liver zinc-thionein.

The ability of rat liver zinc-thionein to donate its metal to the apo-enzymes of the zinc enzymes horse liver alcohol dehydrogenase, yeast aldolase, thermolysin, Escherichia coli alkaline phosphatase and bovine erythrocyte carbonic anhydrase was investigated. Zinc-thionein was as good as, or better than, ZnSO(4), Zn(CH(3)CO(2))(2) or Zn(NO(3))(2) in donating its zinc to these apo-enzymes. Apo-(alcohol dehydrogenase) could not be reactivated by zinc salts or by zinc-thionein. Incubation of the other apo-enzymes with near-saturating amounts of zinc as ZnSO(4), Zn(CH(3)CO(2))(2), Zn(NO(3))(2), or zinc-thionein resulted in reactivation of the apo-enzymes. With apo-aldolase zinc-thionein gave 100% reactivation within 30min. Reactivation by ZnSO(4) and Zn(CH(3)CO(2))(2) was complete and instantaneous. Zinc-thionein was somewhat better than Zn(NO(3))(2) in completely reactivating apo-thermolysin. With apo-(alkaline phosphatase) 43% reactivation was obtained with Zn(CH(3)CO(2))(2) and 18% with zinc-thionein. With apo-(carbonic anhydrase) zinc-thionein was better than ZnSO(4), Zn(CH(3)CO(2))(2) or Zn(NO(3))(2), with a maximal reactivation of 54%. That zinc was really being transferred from zinc-thionein to apo-(carbonic anhydrase) was shown by the fact that 2,6-pyridine dicarboxylic acid and 1,10-phenanthroline had minimal effects on the reactivation of apo-(carbonic anhydrase) when added after the incubation {[apo-(carbonic anhydrase)+zinc thionein]+chelator}, but inhibited reactivation when added before the incubation {apo-(carbonic anhydrase)+[zinc-thionein+chelator]}. These observations support the idea that zinc-thionein can function in zinc homeostasis as a reservoir of zinc, releasing the metal to zinc-requiring metalloenzymes according to need.

Alcohol Oxidoreductases↗

Kidney zinc-thionein regulation of delta-aminolevulinic acid dehydratase inhibition by lead.

This study was undertaken to evaluate the ability of kidney Zn-thionein to regulate Zn availability to the Zn-dependent enzyme, delta-aminolevulinic acid dehydratase (ALAD), and mediate the effect of Pb on this enzyme. Male CD rats were pretreated with 200 mumol Zn/kg, sc, 48 and 24 h prior to assay of renal ALAD, which resulted in activation of renal ALAD and increased the resistance of this enzyme to inhibition by Pb in vitro. To determine the mechanism for this resistance, binding patterns of Zn and Pb in kidney cytosol were assessed. Rats were pretreated with Zn 48 and 24 h prior to injection of 203Pb (170 microCi/kg, ip). Kidneys were removed 4 h later and cytosol was fractionated on a Sephadex G-75 gel filtration column. Both 203Pb and Zn coeluted with the Zn-thionein fraction. Zn-thionein-I and -II, purified previously by DEAE anion-exchange chromatography, bound 203Pb in vitro. In another experiment, addition of purified Zn-thionein to reaction mixtures increased activity of purified bovine liver ALAD twofold and reversed inhibition of ALAD by Pb. Addition of apo-thionein to reaction mixtures partially prevented the inhibition of purified ALAD by Pb, indicating the biological significance of 203Pb chelation. Gel filtration of ALAD assay incubates containing 65Zn-thionein demonstrated that Zn is transferred from Zn-thionein to ALAD. Gel filtration of incubates containing 203Pb demonstrated that the presence of Zn-thionein alters the cytosolic binding pattern of Pb, with less bound to ALAD and more bound to Zn-thionein. The results demonstrate a dual function for Zn-thionein in mediating Pb inhibition of ALAD by a mechanism involving both donation of Zn to this Zn-requiring enzyme and chelation of Pb. These results also suggest that Zn-thionein may serve to regulate ALAD activity in vivo and mediate the inhibition of this enzyme by Pb.

Animals↗

Induction and degradation of Zn-, Cu- and Cd-thionein in Chang liver cells.

Human liver cells (Chang liver) were exposed to 5 micrograms Zn, 2.5 micrograms Cu or 1 microgram Cd/ml in cultured medium. These exogeneous heavy metals were accumulated by the cells and induced de novo synthesis of metallothionein after a 3-h incubation period. The production of Zn-, Cu- or Cd-thionein started in the cells with accumulation of 1 nmol Zn, 0.3 nmol Cu and 0.1 nmol Cd/mg cytosol protein and subsequently the amounts of metal-binding thioneins increased in agreement with the relative amount of metal accumulated in the cytosol over a 24-h period. When cells containing Zn- or Cu-thionein were placed in metal free medium, 70% or 25% of the zinc or copper bound to each original metallothionein was released after 3 h; bound metals decreased to 85% and 65% respectively after 24 h. The disappearance of metal from metallothionein correlated with increases of metal in the medium. On the other hand, 35S-counts incorporated into Zn- and Cu-thionein decreased only to 40% and 15% of the levels in the original metallothionein after 3 h; 35S-counts decreased to 65% and 45%, respectively, after 24 h, indicating that metals bound to metallothionein decreased more quickly than 35S-counts. These results suggest that metals were released from metallothionein and were excreted into the medium. However, 35S- and 109Cd-counts in Cd-thionein changed very little, if at all, in the cells even after a 24-h incubation period. Our data strongly suggest that Zn- and Cu-thionein are degraded in the cells, but that Cd-thionein remains longer than either Zn- or Cu-thionein. When cells containing Zn-thionein were incubated in metal-free medium, Zn-thionein was digested in the cells and peptide fragments ranging about 200-400 daltons were excreted from the cells.

Animals↗

Molecular biology of copper. A circular dichroism study on copper complexes of thionein and penicillamine.

Chicken liver Cd, Zn-thionein (metallothionein) was isolated from Cd-pretreated chickens weighing 1 500 g. The native Cd, Zn-thionein contained 9 g-atoms of metals per 12 000 g of protein. Upon the addition of Cu(CH3CN)4ClO4, all Cd2 and Zn2 were successfully replaced. 15 g-atoms of Cu from the acetonitrile perchlorate complex were bound to the protein. Due to the absence of aromatic amino acid residues, thionein has unique ultraviolet and circular dichroism properties. The shoulder of the ultraviolet spectrum at 250 nm (A250 X A280(-1) = 23.9) was shifted to 275 nm (A250 X A280(-1) = 1.6). No significant absorption was detected in the visible region. Th conformational changes of the protein moiety were much more visible in the circular dichroism spectra. The titration with Cu(CH3CH)2 caused the appearence of three new Cotton effects: 257.5 nm (+), 350 nm (+) and 301 nm (-). The negative Cotton effect at 239 nm of the original metallothionein was completely levelled off. The binding strength of copper with thionein is extraordinarily high: it survives proton treatment up to pH 1.9. Displacement of the Cd2 by Cu employing Cd-thionein which was formed at pH 2.2 resulted in the same circular dichroism properties as observed for Cu-thionein. D-Penicillamine proved a suitable model for the metal-free thionein, since redox reactions and polymerization of the sterically hindered thiol residue are known to be slow. The correlation of the circular dichroism properties of either copper complex using thionein or D-penicillamine was surprisingly high. Circular dichroism measurements of Cu(I)-D-penicillamine revealed Cotton effects at 255 nm (+), 280 nm (+) and 355 nm (-). Upon examining the red-violet mixed Cu(-i)-cu(II)-D-penicillamine complex, Cotton bands in the visible region at 425 nm (-) and 495 nm (+) were seen. In many blue copper enzymes, the copper is assumed to be in the neighborhood of both cysteine and aromatic amino acid residues, which are known to play an important role in the electron transfer. This is not the case in the Cu-thionein, which would explain many different properties of this copper protein. It is very attractive to conclude that the sterically hindered SH-group of D-penicillamine reacts with excess copper in a specific way, similar to the Cu-thionein. This phenomenon could explain the considerable success of D-penicillamine in the treatment of Wilson's disease.

Animals↗

Copper-thionein from fetal bovine liver.

It was of interest to examine whether or not a low molecular weight copper-rich metal-thionein was present in biological species which received no metal pretreatment at all. From bovine fetal liver an 8 Cu 2 Zn-thionein having a molecular weight of 11 500 was successfully isolated. 16% of the total copper present in the whole liver were recovered in this protein. During the isolation process anaerobic conditions had to be maintained to avoid uncontrolled oxidation leading to polymeric species and the loss of most of the copper. The similarity of both the present copper-thionein and the polymeric neonatal type mitochondrocuprein was shown. A comparison of different copper-thioneins containing variable amounts of copper was possible when xiCu from 280 nm to longer wavelength was determined. With respect to the ultraviolet properties there were no detectable differences between copper-thioneins prepared either in vivo or in vitro and the fetal copper-thionein. Furthermore, the positions of the Cotton effects as deduced from circular dichroism measurements were rather similar although the magnitude of the observed Cotton extrema was less pronounced and sometimes the signs were reversed. X-ray photoelectron spectrometric studies revealed a Cu(2p3/2) binding energy value of 932.9 eV. Unlike the S(2p1/2,3/2) value near 162 eV using Cu-thioneins from chicken liver or yeast the higher S(20p1/2,3/2) binding energy of 163.0 eV employing fetal Cu-thionein was attributed to partial oxidation of the protein moiety and/or a particular chemical environment. The second S(2p1/2,3/2) peak was assigned to the copper catalyzed oxidation of sulphur via OH to yield RSO-3. In the X-ray photoelectron spectrum of the apoprotein one homogeneous S(2p1/2,3/2) band at 163.7 eV was seen attributable to RSSR.

Amino Acids↗

Control of zinc-thionein synthesis in rat liver.

The rate of [35S]cystine incorporation into hepatic zinc-thionein (a metallothionein) was stimulated, with a maximum of 5-6h, after parenteral administration of 2mg of Zn2+ containing 65Zn. The binding of 65Zn to zinc-thionein was measurable by 2-1/2h and reached a plateau by 18h after the injection. A net increase in the hepatic 65Zn content was observed subsequent to the decrease in the rate of zinc-thionein synthesis. The incorporation of both 65Zn and [35S]cystine into zinc-thionein was inhibited by prior administration of either actinomycin D or cordycepin. A second injection of Zn2+, 20h after the initial injection, yielded a 4.9-fold greater increase in zinc-thionein synthesis compared with that after only one injection; however, this synthesis was also inhibitable by actinomycin D. These data support the concept that hepatic zinc-thionein synthesis responds quickly to changes in Zn2+ status and that Zn2+ is bound subsequent to synthesis of nascent thionein chains. The mechanism of control of zinc-thionein synthesis by Zn2+ appears to involve changes in the amounts of a short-lived, poly(A)-containing RNA whose translation can be derepressed by additional exposure to Zn2+.

Animals↗

Antiinflammatory reactivity of copper(I)-thionein.

In unseparated human blood the reactivity of yeast copper (I)-thionein on TPA-activated polymorphonuclear leukocytes was evaluated and compared with low Mr copper chelates exerting Cu2Zn2 superoxide dismutase mimetic activity. Cu, 18 microM, in the form of Cu-thionein was sufficient to inhibit the superoxide production of activated human blood phagocytes by 50%. Furthermore, the scavenging of hydroxyl radicals and singlet oxygen by Cu(I)-thionein was determined, using the 2-deoxyribose fragmentation assay induced by decaying K3CrO8 and the NADPH oxidation caused by UVA illuminated psoralen, respectively. The inhibitory reactivity of Cu-thionein in both assays was compared with that of serum proteins including albumin, ceruloplasmin, transferrin, and ferritin. The galactosamine/endotoxin-induced hepatitis in male NMRI mice was used to evaluate the antiinflammatory reactivity of Cu-thionein in vivo. The serum copper, superoxide dismutase, and sorbitol dehydrogenase concentrations, as well as the activity of polymorphonuclear leukocytes in unseparated blood seemed most appropriate to quantify the protective capacity of Cu-thionein in the course of an oxidative stress-dependent liver injury. The intraperitoneal application of 32.5 mumols/kg thionein-Cu limited this damage to 45%.

Animals↗

The role of Cu(I)-thiolate clusters during the proteolysis of Cu-thionein.

Rat liver Cu,Zn-[35S]thionein and yeast Cu-thionein were subjected to proteolysis in vitro using equilibrium dialysis. The partially copper-loaded vertebrate thionein (2-7 Cu/mol) was affected by different proteases including thermolysin, proteinase K, protease from Streptomyces griseus and lysosomal enzymes. Unlike the 2Cu-thionein the respective 7Cu-thiolate-centred metallothionein was hardly proteolytically digested. In contrast to fully copper-loaded native yeast Cu-thionein both the H2O2-oxidized and the metal-free protein were effectively cleaved in the presence of proteinase K. It is important to realize that the native Cu(I)-thiolate chromophore survives the proteolytic attack. When the copper-sulphur bonding is broken and the same amount of copper is unspecifically bound to the thionein portion, proteolysis proceeds identically with respect to the rate observed in the presence of the apoprotein. The unsuccessful proteolysis of native Cu-thionein is not attributable to a simple copper-dependent inhibition of the proteinases. It is suggested that prior to proteolysis the copper-sulphur clusters must be destroyed.

Animals↗

Induction of cadmium-thionein in isolated rat liver cells.

The uptake of cadmium by isolated liver cells was linearly related to the cadmium concentration to which the cells were exposed in the medium. Cadmium-treated cells synthesized proteins de novo with the characteristics of cadmium-thionein induced in the liver of cadmium-treated animals. Thionein from liver cells incorporated cadmium and [35S]cysteine, had a Ve/Vo (Sephadex G-50) of 1.8-1.9, and was separated into two subfractions by DEAE-cellulose ion-exchange chromatography. Cycloheximide and actinomycin D when added after a cadmium exposure prevented the synthesis of thionein. However, addition of actinomycin D after synthesis had started only decreased the total amount of thionein synthesized. The concentration of cadmium to which the cells were exposed affected the amount of cadmium-thionein synthesized in 6h. The maximum response occurred when cells were exposed to 0.5 microgram of cadmium/ml; at higher metal concentrations the total amount of cadmium-thionein synthesized declined. The system described in the present paper can be used to study the mode of metal toxicity and the mechanism of cadmium-thionein synthesis.

Animals↗

[Induction of Cd and Zn-thionein in a clonal osteogenic cell, MC3T3-E1].

Clone MC3T3-E1 cells at various differentiation stages were exposed to 0.44-13.3 microM Cd or 50-175 microM Zn in culture medium. After a 2-h culture period, the amount of Zn accumulated in the cells was shown to be larger than that for Cd, but the production of Zn-thionein was much less compared with that of Cd-thionein. After a 24-h incubation period, the synthesis of Zn-thionein increased markedly at levels of 150 microM Zn or greater, Cd induced metallothionein (MT) synthesis in a dose-dependent manner at 0.44 microM Cd or greater. Since calcified cells differentiated into osteoblastic cells also produced MT, osteoblasts were confirmed to have an ability to induce MT synthesis. Initiation of production of Cd-or Zn-thionein in the cells occurred at an accumulation of about 0.4 nmol Cd and 2.5 nmol Zn/mg cytosol protein. The ratios of thionein-binding Cd/Cd accumulated in the cytosol and thionein-binding Zn/Zn accumulated in the cytosol were 0.11 mol/mol and 0.067 mol/mol, respectively. These results show that the concentration of accumulated Zn necessary for initiating production of MT is about six times that of Cd and one molecule of Cd induces thionein about 1.6 times as effectively as one molecule of Zn does.

Cadmium↗

Studies on plantacyanin. IV. Reconstitution with Cu-thionein, oxidation by cytochrome oxidase and autooxidation in the presence of cardiolipin.

Cu-thionein isolated from cucumber roots was used for reconstitution of plantacyanin from cucumber. The rate of the copper transfer from Cu-thionein to apoplantacyanin was found to depend on pH, ionic strength and concentrations of the proteins. The rate of reconstitution with Cu-thionein was 10-times higher than with copper ions. No intermediate was observed during reconstitution with Cu-thionein. The incubation of oxidized holoplantacyanin with Cu-thionein or apothionein brings about the reduction of plantacyanin copper. This process, however, was found to be slow as compared to the rate of copper transfer from Cu-thionein to apoplantacyanin. Cytochrome oxidase from heart mitochondria was detected to possess some plantacyanin oxidase activity with the turnover number 5 min-1. The activity of the enzyme towards plantacyanin as well as with cytochrome c as a substrate was established to be lipid and ionic strength-dependent, and it was inhibited by CN- and N3-. Lineweaver-Burk plots show that the inhibitory effect of ionic strength on plantacyanin oxidase activity is connected with changes of Michaelis constant rather than of the maximal rate. Plantacyanin which is known to be very resistant towards many cationic, anionic and nonionic detergents, becomes, as well as cytochrome c, autooxidable in the presence of cardiolipin.

Animals↗

Degradation of hepatic zinc-thionein after parenteral zinc administration.

A low-molecular-weight protein, zinc-thionein, a metallothionein, was implicated as having a regulatory function in zinc metabolism. The half-life (t 1/2) of hepatic zinc-thionein was determined by pulse-labelling with either L-[35S] cystine and/or 65Zn. In two experiments with L-[35S]cystine, the t 1/2 of zinc-thionein was 18h and 19h. Most of the soluble 35S-labelled hepatic proteins had a t 1/2 of 4 days. The t 1/2 of zinc-thionein calculated by using 65Zn was 20h. The close similarity between the calculated and measured t 1/2 values for zinc-thionein suggests that release of Zn2+ from zinc-thionein probably occurs simultaneously with degradation of the protein moiety.

Animals↗