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Effect of selenium compounds on selenium content, growth and 35S-cystine metabolism of skin fibroblasts from normal and cystinotic individuals.

Kidney samples from children with the inborn metabolic disease cystinosis contain 4 times more selenium (Se) than do kidney samples from normal individuals (p = 0.1). However, when cultured skin fibroblasts from cystinotic patients and normal control individuals are incubated in Se-D,L-methionine, Se-D,L-cystine, Se-cystamine X HCl, Se-urea, selenite or in medium without added selenium, only the cystinotic fibroblasts grown in Se-urea or selenite (SeO3=) contain more selenium than do the corresponding normal cells (p less than 0.05). In both types of cultured fibroblasts, the order of descending toxicity per ppm selenium is: Se-urea greater than Se-cystamine greater than Se-cystine greater than or equal to SeO3= much greater than Se-methionine. High (apparently toxic) concentrations of Se-urea and Se-cystamine lower the elevated intracellular free (nonprotein) cystine content of cystinotic fibroblasts to less than 60% of control values; at lower concentrations, these compounds raise the cystine content of these cells to over 140% of control values. Appropriate concentrations of SeO3=, Se-cystine and Se-methionine also elevate the free cystine content of the cystinotic cells. During a 75 minute incubation in 35S-cystine, the incorporation of 35S into the acid precipitable (protein) fraction of both cell types is significantly inhibited by Se-cystamine (approximately 55% control; p less than 0.05). The incorporation of 35S-cystine into glutathione is inhibited by Se-cystine (approximately 40% control) in both fibroblast types (p less than 0.05). In cystinotic cells, Se-cystamine significantly reduces incorporation of 35S-cystine into the cystine pool (40% control) as does SeO3= (67% control; p less than 0.05). Protein and glutathione synthesis in cystinotic fibroblasts are more strongly inhibited by Se-cystine and SeO3=, respectively, than in normal fibroblasts (p less than 0.05). These studies demonstrate that selenium compounds exhibit a different sequence of toxicity in fibroblasts than in the intact animal and that some previously unreported metabolic effects (i.e. inhibition of glutathione synthesis) may contribute to their toxicity.

Amino Acids

Interactions between selenium compounds and those of mercury or cadmium.

Two types of mechanisms are considered in this discussion of the interactions between compounds of selenium and those of cadmium or mercury: one based on a direct chemical reaction between compounds of these elements and the other based on metabolic changes induced by selenium administration and modifying the dose-effect relationship indirectly, without a reaction between selenium and the metallic compound. The second type of metabolic changes induced by selenium may explain why an increased selenium intake provides protection not only against methylmercury but also against the toxicity of methylated selenium compounds. A better understanding of the underlying mechanisms would help in assessing the importance of these interactions for man.

Animals

Distribution of selenium in egg white and yolk after feeding natural and synthetic selenium compounds.

Practical diets containing various selenium levels, with and without selenite supplementation, were fed to hens. Eggs were then collected over a 14-day period to determine how quickly changes in dietary selenium affected egg white and yolk selenium. Changes in egg white selenium content were rapid and essentially completed seven days after changing the selenium content of a practical diet. Changes in egg yolk were not yet completed by 14 days. When selenium from practical feedstuffs was fed, the selenium content of dried egg white was about equal to or greater than the selenium content of dried egg yolk. When selenite was fed, the selenium content of dried yolk was higher. Feeding selenomethionine resulted in more selenium in egg white than in egg yolk. Feeding selenocystine resulted in more selenium in egg yolk than egg white, a pattern similar to that from feeding selenite. The data suggest that selenocystine is not incorporated into protein but is metabolized to an inorganic selenium compound.

Animal Feed

Retrograde tracing of zinc-containing neurons by selenide ions: a survey of seven selenium compounds.

The autometallographic retrograde tracing of zinc-containing neurons by intracerebral injection of sodium selenite (Na2SeO3), introduced by Danscher in 1982, has recently been described in more detail. Intracerebral injections of both sodium selenide (Na2Se) and sodium selenite (Na2SeO3) have been successfully used; however, sodium selenite had a rather toxic effect on the injected tissue. In the present study, we tested seven different selenium compounds to find the most suitable compound for retrograde tracing of zinc-positive pathways. Among the tested compounds, sodium selenide (Na2Se) caused insignificant necrosis within the injection site and was easily transported retrogradely when handled anaerobically. Sodium selenide is therefore recommended as the compound of choice.

Animals

Metabolic differences and similarities of selenium in blood and brain of the rat following the administration of different selenium compounds.

A common intermediate, i.e., selenite, was found in the serum of the rat; the maximum levels occurred 3 h after administration independent of chemical forms. This indicates that both the reduction of selenate to selenite, and oxidation of seleno-dl-methionine to selenite existed in the metabolic pathways of the rat. We found that water-soluble selenium compounds led to a similar maximum content in blood and serum, but seleno-dl-methionine had a higher affinity for the brain and, by gel filtration chromatography, for the higher mol-wt (25-100 K Da) fractions of serum protein, when compared with inorganic forms.

Animals

Biological potency of organic selenium compounds: VI. Aliphatic seleninic acids and carboxyselenic acids.

Straight-chain aliphatic seleninic acids, CH3-(CH2)n-SeOOH, with chain lengths from C4 to C17, a few dibasic acids of moderate chain length having seleninic acid groups on both ends of the molecule, HOOSe-(CH2)n-SeOOH, and a series of carbosyseleninic acids, HOOC-R-SeOOH, comprising chain lengths from C3 to C13 and several branched chains with 5 to 7 carbon atoms were tested for potency in the prevention of dietary liver necrosis in the rat. Alkylseleninic acids showed uniformly low activities, ranging from 18% to 56% of that of selenite selenium which served as a standard. There were no discernible trends or regularities with increasing chain lengths, in c-ntrast to other series of alkylselenium compounds. It is therefore unlikely that alkylseleninic acids are normal oxidation products of dialkyl mono- or diselenides in the organism. Compounds with seleninic acid groups at both ends of the chain were practically inactive. Carboxyseleninic acids carrying a carboxyl group distal to the seleninic acid group, on the other hand, were highly effective. A maximum of potency occurred at chain lengths C3 and C4, followed by a sharp decline between C4 and C6. A second maximum of activity occurred at C8. There was no alternating effect. This structure/activity pattern is analogous to that of the diselenodicarboxylic acids. However, the lower carboxyseleninic acids were, per atom of selenium, twice as active as the corresponding diseleno-dicarboxylic acids, of which the higher members were less potent. It is inferred that carboxyseleninic acids may be metabolically related to diseleno-dicarboxylic acids and that C3 and C4 carboxyseleninic acids may play a physiological role.

Animals

[Protective effect of selenium compounds in the freeze preservation of erythrocytes].

The influence of sodium selenite, selenomethionine and sodium selenite with tocopherols in combination on the survival of cryopreserved erythrocytes was investigated. Percent hemolysis is marked decreased after a three-hour incubation of the whole blood with addition of selenomethionine as well as sodium selenite with tocopherole in combination before cryopreservation. The protective effect is attributed to the antioxydative and membrane stabilizing effectiveness of selenium and tocopherol.

Blood Preservation

Mutagenic activity of selenium compounds.

The mutagenicities of selenate (SeO2/4-) and selenite (SeO2/3-) were determined by two bacterial assay systems: Kada's rec-assay and Ames's Salmonella test. In both assays, these compounds were found to be weak mutagens. In the Salmonella test, selenate (0.05 revertants/nmole) and selenite (0.2 revertants/nmole) gave rise to base-pair substitution.

Bacillus subtilis

Inhibition of the biosynthesis of N-acetylneuraminic acid by metal ions and selenium in vitro.

In liver homogenate the biosynthesis of N-acetylneuraminic acid using N-acetylglucosamine as precursor can be followed stepwise by applying different chromatographic procedures. In this cell-free system 16 metal ions (Zn2+, Mn2+, La3+, Co2+, Cu2+, Hg2+, VO3-, Pb2+, Ce3+, Cd2+, Fe2+, Fe3+, Al3+, Sn2+, Cs+ and Li+) and the selenium compounds, selenium(IV) oxide and sodium selenite, have been checked with respect to their ability to influence a single or possibly several steps of the biosynthesis of N-acetylneuraminic acid. It could be shown that the following enzymes are sensitive to these metal ions (usually applied at a concentration of 1 mmol l-1): N-acetylglucosamine kinase (inhibited by Zn2+ and vandate), UDP-N-acetylglucosamine-2'-epimerase (inhibited by Zn2+, Co2+, Cu2+, Hg2+, VO3-, Pb2+, Cd2+, Fe3+, Cs+, Li+, selenium(IV) oxide and selenite), and N-acetylmannosamine kinase (inhibited by Zn2+, Cu2+, Cd2+ and Co2+). Dose dependent measurements have shown that Zn2+, Cu2+ and selenite are more efficient inhibitors of UDP-N-acetylglucosamine-2'-epimerase than vanadate. As for the N-acetylmannosamine kinase inhibition, a decreasing inhibitory effect exists in the following order Zn2+, Cd2+, Co2+ and Cu2+. In contrast, La3+, Al3+ and Mn2+ (1 mmol l-1) did not interfere with the biosynthesis of N-acetylneuraminic acid. Thus, the conclusion that the inhibitory effect of the metal ions investigated cannot be regarded as simply unspecific is justified.

Acetylglucosamine

Studies on selenium-related compounds. V. Cytogenetic effect and reactivity with DNA.

Five selenium compounds, Na2Se04, H2Se04, Na2Se03, H2Se03 and Se02, were tested for their capacity to induce chromosome aberrations in cultured human leukocytes and for their reactivity with DNA by a rec-assay system and inactivation of transforming activity in Bacillus subtilis. Chromosome-breaking activity was significantly higher for the compounds with four-valent than with six-valent selenium, the efficiency being in the decreasing order H2S03 greater than Na2Se03 greater than Se02 greater than H2Se04 greater than Na2Se04. Rec assay using B. subtilis with different recombination capacities suggested that damage to DNA was produced by selenites but not by selenates. The reactivity of selenites with DNA was also indicated by a significant loss of transformation of the tryptophan marker of B. subtilis DNA treated with H2Se03 and Se02.

Adult

A comparison of the effects of sodium selenite and seleno-L-methionine on disposition of orally administered mercuric chloride.

Previous studies demonstrated extensive effects of the administration of selenite on the biokinetics of simultaneously injected inorganic mercury. As the results of simultaneous administration might well be of questionable value for the assessment of the interaction between mercury and selenium during the long-term exposures relevant for human beings, the present study was performed. The purpose of the present study was to compare the effects of prolonged oral exposure to sodium selenite and seleno-L-methionine (7.5, 37.5, or 75 mumol/L drinking water) on the biokinetics of a single oral dose of 203Hg-labelled mercuric chloride (5 or 25 mumol/kg b.w.) in mice. Both selenium compounds caused a dose-dependent decrease in the excretion of absorbed mercury, as indicated by a 2-7 fold increase in whole-body retention of mercury. Selenite caused a significantly higher whole-body retention of mercury at day 14 than did seleno-L-methionine. Both selenium compounds affected the relative deposition of mercury in most organs, but the effect depended on the type of selenium compound, on the dose of mercury as well as on the molar ratio between mercury and the selenium compound. The amounts of mercury deposited in the liver, kidneys and spleen increased, whereas the amounts deposited in the uteri and the brain were unaffected by the selenium supplementation. Significant differences in relative organ deposition of mercury between mice given selenite and mice given seleno-L-methionine were observed in the stomach, intestinal tract and the kidneys.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

The effect of selenium on the biliary excretion and organ distribution of mercury in the rat after exposure to methyl mercuric chloride.

The influence of selenium compounds on the biliary excretion and the organ distribution of mercury after injection of methyl mercuric chloride (4 mumol/kg) have been tested. Selenite, seleno-di-N-acetylglycine and seleno-methionine strongly inhibited the biliary excretion of mercury. Selenite even in a molar dose of 1/40 of the methyl mercury dose inhibited the biliary excretion of mercury. The less toxic seleno-di-N-acetylglycine was needed in larger molar doses and did not act as rapidly as selenite. Biliary excreted methyl mercury is known to be partly reabsorbed in the gut. Subsequently a part of it is deposited in the kidneys since drainage of the bile lowered the kidney content of mercury. Rats given selenium compounds in combination with bile drainage showed further reduction of the kidney mercury content than bile duct drainage alone. Thus the demonstrated lowering effect of selenium compounds on the kidney mercury content cannot be completely explained by an inhibition of biliary excretion of mercury. The mercury concentration in the brain was increased by the selenium compounds; the effect being dependent of the selenium dose reaching a maximum at an equimolar selenite--to methyl mercury dose ratio. The mechanisms by which selenium influences the methyl mercury kinetics are discussed.

Animals

[Convulsive properties of various organoselenium compounds].

Three organo-selenium compounds have been synthetized : methyl seleno-2 benzoic acid, acetylseleno-2 benzoic acid and diselenosalicylic acid. These compounds induce convulsive seizures in the rat, the most active of them being methyl seleno 2 benzoic acid. Convulsions are stopped after anaesthesia with pentobarbitone.

Animals

Further investigation on the radiation induced inactivation of ribonuclease and the radioprotective effect of some selenium-containing compounds.

Steady state inactivation data on dilute aqueous solutions of RNase show that all water radicals, e-aq, OH, and H are responsible for the inactivation, but the most efficient radical is H atom, only about 4 of them being required for one inactivating event. The data are, therefore, more in agreement with the conclusions of Mee et al. (1972). In the transient absorption spectra of pulse irradiated ribonuclease different components derived by the individual radicals are observed. Organic and inorganic selenium-containing compounds offer a great protection of the enzyme activity, in agreement with the data obtained in other chemical and biological systems. In particular the effects of two new secondary radicals (CNSe)-2 and SeO-3 are in good accord with the known structure of ribonuclease.

Kinetics

Is the selenium drinking water standard justified?

Four cases are presented which suggest that the present U.S.E.P.A. drinking water standard for selenium of 10 micrograms/L in inappropriate. The rationale upon which this standard is based is that selenium is carcinogenic, induces dental caries formation, and is highly toxic to animals. However, a critical assessment of this literature can not support these claims. Case no. 1 demonstrates that there is insufficient evidence to classify selenium as a carcinogen. Data derived from the three respective groups of researchers claiming a carcinogenic effect induced by selenium are obscure due to 1) the inability to accurately identify malignancies, 2) the apparent opposite effects of different selenium compounds, and 3) the lack of proper controls. Case no. 2 reviews recent evidence that selenium reduces the incidence of cancer in laboratory animals and in man, an effect which can probably be attributed to the antioxidant properties of selenium compounds. Case no. 3 provides evidence which does not permit the classification of selenium as a cariogenic element. Epidemiological studies supporting such a claim are inadequate since they lack properly matched control groups. Animal data do not support this link as well. Case no. 4 is a review of studies which clearly demonstrate the essentiality of selenium, an aspect of selenium metabolism that was not considered when the 10 micrograms/L standard was promulgated. In light of the four cases presented and an assessment of selenium toxicity in man, it is concluded that the 10 micrograms/L standard can not be justified. Instead, it is suggested that 50 micrograms/L selenium should provide sufficient protection from the toxic effects of this element. This is consistent with the current state of knowledge with respect to the potential adverse health effects associated with selenium.

9,10-Dimethyl-1,2-benzanthracene

The influence of selinium on methyl mercury toxicity in rat hepatoma cells, human embryonic fibroblasts and human lymphocytes in culture.

The effect of methyl mercury and two selenium compounds have been studied in cell cultures. Methyl mercury in concentrations above 1 microM had a pronounced inhibiting effect on the growth of rat Morris hepatoma cells. Glucose and lactate uptake in relation to cell protein was appreciably stimulated by the organic mercury compound. Selenite in low concentration (0.5 microM) and seleno-di-N-acetyl glycine in thousandfold higher concentrations offered considerable protection against these effects of methyl mercury. The same selenite concentration (0.5 microM), which did not affect cell growth, caused an appreciable protection against methyl mercury (6 microM), even if it was added 3 days after methyl mercury. The methyl mercury inhibited the growth of human embryonic fibroblasts and the DNA-synthesis in the human lymphocytes. However, no protective effect of selenite were observed in these cell types. These results suggest that selenium compounds exert their protective effect through cell specific processes rather than by a direct chemical reaction between selenite and methyl mercury.

Animals