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Distribution of selenium-binding proteins in different tissues of the mouse and rat.

The distribution of selenium-binding proteins in specific tissues of mice and rats was examined by electrophoretic and immunologic techniques. Major selenium-binding proteins of 58K and 26K daltons were present in whole blood, erythrocytes, liver, duodenum, mammary tumors, kidney, testis, ovary and pancreas by electrophoretic analysis. By Western immunoblot it was evident that the 58K protein in plasma did not cross-react with the cellular 58 K protein. Furthermore, muscle did not exhibit any immunologically recognizable 58K protein. The antibody raised against mouse liver 58K recognized a similar protein in rat liver, kidney and testis. The 58K selenium-binding protein appeared to be concentrated in tissues enriched in G1 and the effect of hydroxyurea on selenium-binding protein levels suggested the 58K selenium-binding protein appeared to be made predominantly during the G1 phase of the cell cycle. Evidence is also presented that whole blood contains selenium bound to hemoglobin which supports prior evidence by other investigators. These results further support the evidence for tissue selenium-binding proteins other than glutathione peroxidase and document the immunological specificity and reactivity of a new antibody against a selenium-binding protein.

Animals↗

A 14-kilodalton selenium-binding protein in mouse liver is fatty acid-binding protein.

In a previous study, we purified three selenium-binding proteins (molecular masses 56, 14, and 12 kDa) from mouse liver using column chromatography and sodium dodecyl sulfate-polyacrylamide gel electrophoresis. The aim of the present study was to determine the amino acid sequence of the 14-kDa protein thereby establishing any relationship with known proteins. Although the amino terminus of the 14-kDa protein was blocked, separate in situ digestions of the protein with endoproteinases Glu-c and Lys-c gave overlapping peptides that provided a continuous sequence of 93 amino acids. This sequence exhibited a 92.5% sequence homology with rat liver fatty acid-binding protein. In situ enzymatic digestion and partial sequencing of a 12-kDa selenium-binding protein revealed identical homology to the 14-kDa protein. The 14-kDa protein bound specifically to an oleate-affinity column from which the protein and 75Se coeluted. Delipidation or sodium dodecyl sulfate treatment failed to remove 75Se from the protein, indicating that the selenium moiety was tightly bound to the protein. These observations confirm that the mouse liver selenium-binding 14-kDa protein is a fatty acid-binding protein. The nature of the selenium linkage to the protein still needs to be explored.

Amino Acid Sequence↗

Evidence for two selenium-binding proteins distinct from glutathione peroxidase in mouse liver.

Labeling studies with 75selenium (75Se) have suggested the existence of selenium-binding proteins in addition to glutathione peroxidase (GSH-Px) in rodent tissues. Three selenium-binding proteins of apparent mol. wt 56, 14 and 12K on SDS-PAGE were isolated from mouse liver using Sephadex G-150 and DEAE-Sephadex chromatography. The proteins were electroeluted from SDS-PAGE gels and injected into rabbits to elicit antibodies. Western immunoblot experiments indicated that the 56K protein was distinct from the 14 and 12K proteins. The latter two proteins appeared to be immunologically related, perhaps as differentially processed variants. The 56 and 14/12K proteins appeared to be distinct from GSH-Px and the 57K plasma selenium-binding proteins. These results indicate that the mouse liver contains at least two selenium-binding proteins distinct from GSH-Px. The existence of the antibodies should permit experiments which help to examine the role of these proteins in the biological function of selenium in mammals.

Animals↗

Altered selenium-binding protein levels associated with selenium resistance.

Our previous studies have sought to elucidate the mechanism by which selenium inhibits cell growth since the mechanisms involved may be relevant to the chemopreventive properties of selenium. In a previous report, we described the isolation of a selenium-resistant cell line, B19, from a selenium-sensitive parental cell line, C57. In this report we identify biochemical changes that may be responsible for conferring selenium resistance. Altered selenium uptake and intracellular glutathione concentrations were eliminated as possible modes of resistance since these two parameters were similar between the two cell lines. However, when the selenium-containing protein complements of the two cell lines were compared by labelling with [75Se]selenite, both increases and decreases in a number of selenium-labelling proteins were found in the B19 cells. The most striking differences were the presence of two 72 kDa selenium-labelling proteins in B19 cells which could not be detected in C57 cells. The levels of a number of mRNAs encoding antioxidant or detoxification enzymes were also compared between the two cell lines but only minor changes were found. This work suggests that further analysis of the 72 kDa selenium-labelling proteins may reveal insights into the mechanisms of growth inhibition by selenium.

Animals↗

Different patterns of regulation of the genes encoding the closely related 56 kDa selenium- and acetaminophen-binding proteins in normal tissues and during carcinogenesis.

A full-length cDNA encoding a 56 kDa liver protein recently implicated in the detoxification of acetaminophen (AP56) has been cloned by virtue of its similarity to the 56 kDa selenium-binding protein (SP56): in fact, the deduced AP56 amino acid sequence differs at only 14 residues from SP56. Isolation of genomic DNA recombinants from a Balb/c mouse cosmid genomic DNA library shows that SP56 and AP56 are encoded by two different genes. Using reverse transcription/PCR with oligonucleotide primers that distinguish the AP56 and SP56 mRNAs shows that the SP56 mRNA is highly expressed in liver, kidney and, to a lesser extent, lung; whereas the AP56 mRNA is mainly expressed in liver. Both mRNAs tend to be down-regulated in liver cell lines but remain high in DEN-induced liver tumours in vivo. The relevance of these findings is evaluated in terms of the postulated functions of the two proteins in mediating the anti-carcinogenic effects of selenium and detoxification mechanisms.

Acetaminophen↗

Purification, antibody production, and partial amino acid sequence of the 58-kDa acetaminophen-binding liver proteins.

Immunochemical analysis of electrophoretically resolved liver proteins from mice administered hepatotoxic doses of acetaminophen has identified two proteins of 44 and 58 kDa as major targets for acetaminophen arylation. In the present study the 58-kDa acetaminophen-binding protein (58-ABP) was purified from mouse liver cytosol by gel permeation chromatography, preparative isoelectric focusing, and polyacrylamide gel electrophoresis. The acetaminophen adducts were visualized on immunoblots using affinity-purified anti-acetaminophen antibodies after each step of the purification. Gel permeation chromatography, under nondenaturing conditions, indicated that the protein is a monomer. Two-dimensional gel electrophoresis demonstrated that the 58-ABP consists of a cluster of four immunochemically reactive isoforms with isoelectric points ranging from 6.2 to 6.6. V-8 protease digestion of the isoforms suggested that they contained similar peptide fragments. The purified 58-ABP was utilized to produce polyclonal antibodies and to determine the amino acid composition and partial sequence of the protein. These antibodies revealed a protein cluster of similar molecular weight and isoelectric points in the cytosol of a human liver specimen. Amino acid analysis of the purified protein indicated that it contains eight cysteine residues (about 1.4% by weight). This low cysteine content raises the possibility that at hepatotoxic doses acetaminophen may also bind to non-thiol sites on the protein. The amino acid sequence of two cyanogen bromide/tryptic peptide fragments revealed that the major immunochemically detectable acetaminophen target in the cytosol is homologous to a selenium-binding protein which has been recently sequenced.

Acetaminophen↗

The murine Niemann-Pick type C lesion affects testosterone production.

We have determined the effects of the Niemann-Pick type C (NPC) lesion, which impairs transport of cholesterol from lysosomes, on the androgenic status of male NPC mice. The mice have low serum testosterone levels resulting from decreased testosterone secretion. Testosterone secretion is reduced in NPC mouse testes incubated with 8-bromo-cAMP, 20 alpha-hydroxycholesterol, and pregnenolone compared to testosterone release by normal mouse testes under identical conditions. Ultrastructural examination of testes revealed a paucity of lipid droplets, extensive accumulation of inclusion bodies, and distorted endoplasmic reticulum in Leydig cells of adult NPC mice. The hypoandrogenemia caused systemic deficiencies in NPC mice. Seminal vesicles, a testosterone-responsive tissue, were underdeveloped in NPC male mice. The testosterone-responsive kidney beta-glucuronidase activity was also underexpressed. Seminal vesicle mass and beta-glucuronidase activity were increased by testosterone treatment of NPC mice. Many hepatic proteins, identified by microsequencing, were also deficient in NPC male mice. Levels of alpha 2-mu-globulin, glutathione S-transferase-pi, carbonic anhydrase-III, and selenium-binding protein increased in normal male mice during puberty, but did not increase in the NPC male mice. Based on the increases in protein expression during puberty, differential expression in males and females, and the reported involvement of androgens in regulating expression of some of these proteins, deficient expression of most of these proteins in male NPC mice appears to result from low testosterone levels. We conclude that a defect in testicular testosterone production in NPC male mice causes a pleiotropic deficiency in androgen-sensitive expression of proteins in various organs.

Aging↗

Evidence suggesting the 58-kDa acetaminophen binding protein is a preferential target for acetaminophen electrophile.

Acetaminophen is an analgesic and antipyretic which causes liver toxicity in humans and experimental animals with overdose. Acetaminophen (APAP) covalent binding to a cytosolic protein of approximately 58 kDa (58-ABP) has been associated with target organ toxicity. Since hepatic content of 58-ABP varies, studies were conducted to determine if this influences APAP binding to other target proteins. In the liver, the amount of 58-ABP varied with individual male CD-1 mice, but in kidneys of the same mice there was no such variability in 58-ABP content. All male A/J mice tested had comparatively little detectable 58-ABP in liver cytosol. Similarly, female CD-1 mice had low 58-ABP content compared to males; however, administration of testosterone propionate to females significantly increased 58-ABP content in liver cytosol. At 4 hr after challenge of mice from the above-described groups with 600 mg APAP/kg, cytosolic covalent binding to proteins was determined by Western blot analysis with anti-APAP antibody. The Western blots were then stripped of antibody and blocking agents and reprobed with antibody prepared against purified 58-ABP (anti-58-ABP). In the liver, the level of APAP bound to the 58-ABP target corresponded with 58-ABP content. In cases where 58-ABP was poorly expressed, APAP adducts to other protein targets were more prominently detected. In the kidneys of the male CD-1 mice 58-ABP arylation by APAP varied little among animals, reflecting the relatively consistent levels of renal 58-ABP. These data suggest that binding to the 58-ABP may spare other potential targets of APAP electrophile attach and support a role of the 58-ABP as a preferred target of APAP electrophile in cytosol.

Acetaminophen↗

DNA sequencing of a mouse liver protein that binds selenium: implications for selenium's mechanism of action in cancer prevention.

Complementary DNA clones for liver protein 56K (SLP-56) were isolated by screening a lambda Zap mouse liver library. The cloned cDNAs represented the complete message. The correct reading frame was verified by alignment of the deduced amino acid sequence with that of peptides sequenced from the purified protein. The primary sequence has not been reported previously since homologous DNA sequences were not found in GenBank. Most importantly, the DNA sequence did not contain an in-frame TGA codon that would code for seleno-cysteine, as occurs in the prototypic selenoprotein, glutathione peroxidase. Hydropathy analysis suggested the protein was not a membrane-spanning protein. SLP-56 was previously localized as a cytosolic-soluble protein on the basis of cell fractionation experiments. The results suggest that SLP-56 is different from proteins whose synthesis and concentration are dependent upon selenium and require TGA to encode for selenocysteine. In this respect, SLP-56 appears to be similar to liver fatty acid binding protein (SLP-14) for which selenium is a ligand. Our working hypothesis is that selenium exerts its inhibitory effects on cell growth by modulating the properties of existing growth regulatory proteins. The two proteins that are readily labeled by selenium in many rodent tissues, SLP-56 and SLP-14, would fit into this category.

Amino Acid Sequence↗

Evidence for common binding of acetaminophen and bromobenzene to the 58-kDa acetaminophen-binding protein.

Acetaminophen (APAP) toxicity has been closely associated with covalent binding to a cytosolic protein of approximately 58 kDa (58-ABP). To determine if metabolites of other toxicants might also selectively target this protein, studies were conducted with bromobenzene (BrB). Mice were given phenobarbital (80 mg/kg/d x 4 d) and were killed 4 h after challenge with 800 mg BrB/kg. Liver cytosols from BrB-treated or naive mice were incubated with an APAP activating system. Cytosolic fractions were analyzed for APAP binding by Western blotting with anti-APAP antibody. Binding to 58-ABP was selectively decreased in liver cytosol from BrB-treated mice while binding to other targets was minimally affected. Western blotting of the same samples with anti-58-ABP antisera showed that this decrease in binding did not result from diminished 58-ABP content. HPLC analysis of APAP-N-acetyl cysteine conjugate formation in vitro indicates that APAP activation was not altered in the incubates with cytosol from BrB-treated mice. These results suggest that the 58-ABP may be a common target for electrophiles in reactive intermediate toxicity.

Acetaminophen↗

A coplanar PCB induces a selenium binding protein as a major cytosolic protein in rat liver.

We obtained evidence that a toxic coplanar polychlorinated biphenyl (PCB) induces a counterpart of murine 56kDa selenium binding protein in rat liver cytosol. A 54kDa protein in the liver cytosol was significantly induced by 3,3',4,4',5-pentachlorobiphenyl and proved to be a major cytosolic protein in the rat liver. The protein exhibited pI of 6.8 on two-dimensional gel electrophoresis. The amino acid sequence of peptide fragments from the protein digested in situ, was highly similar to a 56kDa selenium binding protein and similar to an acetaminophen binding protein in mice.

Amino Acid Sequence↗

Cadmium, selenium, and tellurium chelators in Aspergillus terreus.

Aspergillus terreus was cultivated on Harrold's medium supplemented with 0.1% (w/v) cadmium chloride as well as on sulfur free medium amended with 0.1% (w/v) sodium selenite and potassium tellurite separately. The cell free extract of the fungus for each treatment was fractionated on a column packed with Sephadex G 75. The results demonstrated the ability of the fungus to synthesize several cadmium, selenium, and tellurium-binding proteins as well as metallothionein. The results suggested the biosynthesis of heavy metals chelators as well. The amino acids composition of a cadmium-binding metallothionein revealed the presence of high levels of both aromatic and sulfur amino acids in the hydrolysate.

Amino Acids↗

A metabolite of acetaminophen covalently binds to the 56 kDa selenium binding protein.

Acetaminophen is metabolized by cytochrome P450 to a reactive metabolite that covalently binds to proteins and this binding correlates with the hepatotoxicity. The major protein adduct was previously reported to be a 55 kDa protein that was detected on Western blots using antisera specific for 3-(cystein-S-yl)acetaminophen. In this study, the 55 kDa protein was isolated using a combination of ion exchange fast flow chromatography, hydroxyapatite HPLC and anion exchange HPLC. Amino acid sequences of 8 internal peptides from a trypsin digestion of the 55 kDa protein were found to have 97% homology with the deduced amino acid sequence from a cDNA that corresponds to a 56 kDa selenium binding protein. This is the first report of a specific protein to which a metabolite of acetaminophen covalently binds.

Acetaminophen↗

A selenium transport protein model of a sub-type of schizophrenia.

The model presented here suggests that a defect in a selenium transport protein may be a necessary but not sufficient precondition for a sub-type of schizophrenia--a type of schizophrenia that has been characterized by negative symptoms, brain damage, and a lack of primarily paranoid ideation. A defective selenium transport protein and consequent low levels of selenium might adversely affect multiple enzyme systems. Selenium-enzyme interreactions are discussed and the effect of selenium on arachidonic acid and its metabolites, especially 12-HPETE, are examined in light of the presented model. If the proffered model is essentially correct, selenoprotein P, a hypothesized selenium transport protein, is a likely candidate for a protein involved in the etiology of a form of schizophrenia.

12-Hydroxy-5,8,10,14-eicosatetraenoic Acid↗

Significant induction of a 54-kDa protein in rat liver with homologous alignment to mouse selenium binding protein by a coplanar polychlorinated biphenyl, 3,4,5,3',4'-pentachlorobiphenyl and 3-methylcholanthrene.

A 54-kDa protein in rat liver cytosol was significantly induced by treatment with 3,4,5,3',4'-pentachlorobiphenyl (25 mg/kg, single i.p.) and 3-methylcholanthrene (20 mg/kg, once a day for 3 days, i.p.). The protein exhibited pI of 6.8 on two-dimensional gel electrophoresis. The amino acid sequences of peptide fragments from the protein digested in situ were highly similar to a selenium binding protein in mice and to the isoform acetaminophen binding protein in mice. The present result clearly demonstrates that a coplanar polychlorinated biphenyl and 3-methylcholanthrene are responsible for induction of selenium binding protein homologues. The physiological role of the mouse proteins, however, is not yet elucidated.

Amino Acid Sequence↗

Specific binding proteins for selenium in rat tissues.

The preventive and therapeutic potential of selenium (Se), a micronutrient, against cancer has been well documented in several test systems, but the mechanism of its action is not known. The possibility that Se might function in a manner similar to steroid hormones and retinoids through mediation of cellular receptors was examined. A specific 2S cellular binding protein (SeBP) for Na2[75Se]O3 was detected in rat tissue extracts. Liver and intestine exhibited highest levels of SeBP, and heart, uterus and spleen had the lowest levels. Oral administration of Na2[75Se]O3 to rats resulted in its uptake by the tissues with concomitant appearance of [75Se]SeBP complex. The protein binds sodium selenite with moderately high affinity; the apparent dissociation constant was determined by Scatchard analysis to be 1.1 X 10(-7) M. SeBP focused at pH 5.3 upon isoelectric focusing in ampholines of pH 3-10. Competitive binding affinity studies with unlabeled test compounds revealed that selenium dioxide and selenocystine showed high binding affinity (90-95%) for the selenite-binding site on SeBP. Sodium selenate, elemental Se powder, and selenomethionine, however, showed poor competition with sodium selenite. Biological activity of the above selenocompounds, as expressed by others, correlate with their binding affinities for SeBP. Sodium sulfite showed 35% inhibition of Na2[75Se]O3 binding, but sulfate showed none. Two ultimate carcinogens, N-methyl-N-nitrosourea and N-methyl-N'-nitro-N-nitrosoguanidine, and two retinoids, retinol and retinoic acid, showed less than 10% inhibition of binding. Interaction of Se with SeBP is completely blocked by thiol inhibitors. Plasma transport of Na2[75Se]O3 is mediated by a protein with a mol. wt of 68,000, which is presently identified, by immunoprecipitation studies as well as by Affi-Gel Blue column chromatographic experiments, as serum albumin. The results suggest that the plasma transport of Se is facilitated by albumin, and that the intracellular transport of Se for its biological functions is accomplished by SeBP.

Animals↗