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Biomedical subjects

R F Burk

Publications and source records attributed to R F Burk.

At least 37 records · Page 2Linked to original sources

Selenoprotein P associates with endothelial cells in rat tissues.

Selenoprotein P is an extracellular heparin-binding protein that has been implicated in protecting the liver against oxidant injury. Its location in liver, kidney, and brain was determined by conventional immunohistochemistry and confocal microscopy using a polyclonal antiserum. Selenoprotein P is associated with endothelial cells in the liver and is more abundant in central regions than in portal regions. It is also present in kidney glomeruli associated with capillary endothelial cells. Staining of selenoprotein P in the brain is also confined to vascular endothelial cells. The heparin-binding properties of selenoprotein P could be the basis for its binding to tissue. Its localization to the vicinity of endothelial cells is potentially relevant to its oxidant defense function.

Animals↗

Selenoprotein P: recent studies in rats and in humans.

Purification of selenoprotein P from rat plasma has allowed detailed characterization of the protein from that species. Chromatographic studies have revealed the existence of at least two isoforms of the protein. One isoform is a truncated protein with termination of protein synthesis occurring at the second selenocysteine codon. Immunohistochemical studies have shown that the rat protein is associated with capillary endothelial cells in the liver, kidney, and brain. In vivo experiments were designed to study the relationship between selenoprotein P and lipid peroxidation. F2 isoprostanes were measured to quantitate the extent of lipid peroxidation caused by diquat. Using selenium-deficient rats supplemented with selenium, it was demonstrated that selenoprotein P appearance correlated with disappearance of diquat-induced lipid peroxidation. This finding is consistent with the protein serving to protect the plasma membrane from oxidative damage. Development of a radioimmunoassay to measure selenoprotein P has allowed assessment of the protein in humans. Measurements of the protein in selenium-deficient Chinese subjects indicated that it can be used as an index of selenium nutritional status in humans.

Animals↗

Effect of selenium on selenoprotein P expression in cultured liver cells.

Selenoprotein P and glutathione peroxidase are selenoproteins that are synthesized by hepatocytes. The production of these selenoproteins by human and rat liver cell lines has been assessed at several levels of selenium supplementation and compared with one another. HepG2 and H4IIE cells were cultured in serum-free medium without selenium supplementation for 48 h; then sodium selenite was added to the medium to give final concentrations of 0, 1, 2.5, 5, or 10 ng selenium/ml medium. After 48 h, selenoprotein P concentration in the medium, cellular glutathione peroxidase activity, and the mRNA levels of the two selenoproteins were determined. Selenium deficiency caused a decrease in selenoprotein mRNA and protein levels. The extent of decrease depended on the cell line examined. In selenium-deprived HepG2 cells, selenoprotein P release decreased to 10% of the release by selenium-replete cells. Under the same conditions, cellular glutathione peroxidase activity decreased to 33%. H4IIE cells showed the opposite results with cellular glutathione peroxidase activity decreasing to 13% and selenoprotein P release decreasing to 40% of selenium-replete cells. The effect of dithiothreitol on secretion of selenoprotein P by H4IIE cells was examined. Selenoprotein P secretion was inhibited by dithiothreitol, suggesting that disulfide bond formation is necessary for secretion of the mature protein.

Animals↗

Isoforms of selenoprotein P in rat plasma. Evidence for a full-length form and another form that terminates at the second UGA in the open reading frame.

Several forms of selenoprotein P that share the same N-terminal sequence have been identified in rat plasma, but only one selenoprotein P mRNA has been characterized. The open reading frame of the mRNA contains 10 UGAs that presumably code for selenocysteine residues. Using heparin-Sepharose, we isolated two of the protein forms from immunoaffinity-purified selenoprotein P. One of the forms, Se-P45B, migrates at 45 kDa on SDS-polyacrylamide gel electrophoresis, and the other, Se-P57B, migrates at 57 kDa. These two forms were cleaved with cyanogen bromide, and both yielded 40-kDa fragments that were consistent with those fragments being an inter-methionine peptide near the N terminus of the predicted polypeptide. A 20-kDa fragment present in the cleavage products of Se-P57B was absent from the products of Se-P45B. This result suggested that Se-P45B lacks the C-terminal region of the predicted polypeptide. Carboxypeptidase P digestion of Se-P45B indicated that its C-terminal amino acid is Ser244, the amino acid immediately upstream from the predicted second selenocysteine. C-terminal analysis of Se-P57B indicated that its final residue is Asn366, the last amino acid predicted by the cDNA sequence. Amino acid composition analyses of the two forms were consistent with both arising from the same mRNA. Immunoaffinity-purified selenoprotein P was digested with proteases, and the resulting peptides were separated and sequenced. Only amino acid sequences predicted by the cDNA were found, and 80% of the predicted amino acid sequence was confirmed. These results are compatible with Se-P45B arising from termination of translation at the second in-frame UGA codon and all of the 10 in-frame UGA codons being read through to produce Se-P57B. These findings demonstrate that selenoprotein P isoforms of differing peptide lengths are present in plasma. They raise the possibility that the second UGA codon in selenoprotein P mRNA can have alternative functions: coding for the incorporation of selenocysteine or coding for termination of translation.

Amino Acid Sequence↗

Multiple forms of selenoprotein P in rat plasma.

SDS-PAGE of immunoaffinity-purified rat seleno-protein P demonstrates a major band at 57 kDa and a less intense band at 45 kDa, suggesting the existence of more than one form of the protein. Separate experiments were carried out in which plasma from rats administered 75Se and immunoaffinity-purified 75Se-labeled selenoprotein P were applied to a heparin-Sepharose column at pH 7. In each experiment three peaks of 75Se-labeled protein were eluted during a continuous gradient from pH 7 to pH 8.5. The remaining 75Se-labeled material was eluted as a single peak by 1 M NaCl. Phosphorimaging of the SDS-PAGE gel of the peaks revealed that the first peak (1a) contained two bands (45 and 57 kDa) while the three remaining peaks each contained one band (peak 1b, 45 kDa and peaks 2 and 3, 57 kDa). N-terminal sequencing of the first eight amino acids of each band revealed that all five have the same N-terminal amino acid sequence and therefore are forms of selenoprotein P. Staining using a digoxigenin-based staining procedure revealed that all five forms contain carbohydrate. This demonstrates that plasma-derived selenoprotein P can be separated into five forms based on SDS-PAGE migration and heparin-Sepharose affinity and that at least two isoforms of selenoprotein P exist based on the presence of 45- and 57-kDa forms. The five forms have been given designations based on their order of elution from the heparin-Sepharose column and their M(r) on SDS-PAGE: selenoprotein P57A (peak 1a, 57 kDa), selenoprotein P45A (peak 1a, 45 kDa), selenoprotein P45B (peak 1b, 45 kDa), selenoprotein P57B (peak 2, 57 kDa), and selenoprotein P57C (peak 3, 57 kDa).

Amino Acid Sequence↗

Isoprostanes--prostaglandin-like compounds formed in vivo independently of cyclooxygenase: use as clinical indicators of oxidant damage.

F2-isoprostanes are prostanoids produced independently of cyclooxygenase by free radical-catalyzed peroxidation of arachidonic acid-containing lipids. Quantification of F2-isoprostanes from biologic fluids and tissues represents an important advance in the detection and measurement of lipid peroxidation in vivo. In addition, efforts to understand both the biophysical effects of isoprostane containing lipids and the biologic effects of free isoprostanes should lead to a better understanding of the mechanisms responsible for oxidant stress-related alterations in homeostasis. Continued application of F2-isoprostane measurement in experimental models of free radical-induced injury and human disease may allow better design and evaluation of antioxidant therapeutic strategies.

Animals↗

Selenoprotein P concentration in plasma is an index of selenium status in selenium-deficient and selenium-supplemented Chinese subjects.

Selenoprotein P, a selenium-rich plasma protein, is an index of selenium status in rats. Antibodies against human selenoprotein P were raised to study the protein and to develop a radioimmunoassay for it. A single collection of plasma from a healthy person in the United States contained 1.84 mumol selenium/L and was defined as containing 1 Unit (U) selenoprotein P/L. Removal of selenoprotein P from the reference plasma by an antibody column indicated that 0.81 mumol selenium/L, or 44% of the plasma selenium, was present as selenoprotein P. Work by others had determined that glutathione peroxidase accounted for 12% of plasma selenium. Stored plasma samples from selenium-deficient (Dechang County) and selenium-supplemented (Mianning County) populations in China were assayed for selenoprotein P. Boys aged 8-12 y had selenoprotein P concentrations of 0.10 +/- 0.04 U/L (n = 22) in Dechang and 0.39 +/- 0.17 U/L (n = 17) in Mianning. Supplementation with 100 micrograms selenium as selenate per day for 14 d raised those levels to 0.51 +/- 0.13 U/L in Dechang and to 0.76 +/- 0.27 U/L in Mianning. Similar results were obtained in men, and plasma selenium concentrations correlated with selenoprotein P concentrations. A study comparing indices of selenium status was conducted in the two counties. Selenoprotein P concentration in Dechang subjects (n = 79) was 36% of that in Mianning subjects (n = 117). For plasma glutathione peroxidase activity the value was 54%; for plasma selenium, 47%; and for whole blood selenium, 64%. We conclude that selenoprotein P is the major selenoprotein in human plasma and that its concentration is an index of selenium nutritional status that appears to be as sensitive as other indices in common use.

Adolescent↗

Outcomes analysis for 50 liver transplant recipients: the Vanderbilt experience.

Healthcare reform has mandated scrutiny of the fiscal aspects of patient care as well as medical outcomes. Therefore, we reviewed our experience with 50 liver transplant recipients from a multidisciplinary collaborative transplant team. From February 1991 to July 1994, of 175 patients referred, 75 were formally evaluated for transplantation; 56 (76%) of these patients were accepted for transplantation; 50 patients underwent 53 transplants. Operative mortality of 6 per cent, retransplantation rate of 6 per cent, 6-month actuarial survival of 88 per cent, 1-year survival of 86 per cent, and the 2 and 3-year survival of 83 per cent were unchanged over time. Quality of life evaluated by the Karnofsky Performance Status was a mean of 55 pretransplant, 72 at 3 months, 79 at 6 months, 84 at 1 year, 88 at 2 years, and 95 at 3 years, demonstrating improved general health and functional rehabilitation after transplantation. Psychosocial Adjustment to Illness Scale scores demonstrated significant improvement following transplantation, improving most dramatically in the vocation environment, domestic environment, and sexual relationship domains. Postoperative length of stay has declined with an average of 28 days in 1991, 22 days in 1992, 19 days in 1993, and 14 days in 1994. Average total hospital, organ procurement, and physician charges for the transplantation hospitalization was $165,000. Average 91-92 hospital charges were $154,000 and were reduced in 93-95 to $103,000 (P < .05). We found that charges and length of stay decreased over time, while the outcome and quality of patient care was maintained. We believe the collaborative practice, case management, and revised patient care protocols are responsible.

Activities of Daily Living↗

Selenoprotein P and glutathione peroxidase (EC 1.11.1.9) in plasma as indices of selenium status in relation to the intake of fish.

In Sweden fish is considered to be an important source of dietary Se. Therefore Se status was assessed in forty-one middle-aged men with widely varying fish consumption. Glutathione peroxidase (EC 1.11.1.9) and selenoprotein P in plasma were measured by radioimmunoassay. Plasma Se among the men increased slightly with increasing consumption of fish, but no such increases in the concentrations of glutathione peroxidase and selenoprotein P in plasma were observed. Moreover, no correlation was found between plasma Se and glutathione peroxidase or selenoprotein P. Instead, glutathione peroxidase was significantly correlated with selenoprotein P (r 0.73, P < 0.001), indicating that both glutathione peroxidase and selenoprotein P were functional indicators of Se status in this group. The proportion of plasma Se located in glutathione peroxidase decreased with increasing plasma Se. The results suggest that the Se consumed from fish had no apparent effect on the amount of Se incorporated into the functional selenoproteins of plasma. It is concluded that in some cases selenoproteins may be better biological markers of Se status than the total concentration of Se.

Animals↗

Reduced glutathione release into rat plasma by extrahepatic tissues.

The liver is the only tissue that has been demonstrated directly to secrete glutathione into the plasma. The present experiments were carried out to determine whether extrahepatic tissues secrete the reduced form of glutathione (GSH) as well. Phorone, a compound that depletes glutathione through glutathione S-transferase-dependent conjugation with GSH, was administered to fasted rats in a dose of 250 mg/kg. Two hours later, glutathione concentrations were reduced to the following: liver, 2%; plasma, 17%; and skeletal muscle, 63%. This showed that plasma and muscle glutathione were not depleted to the same extent as liver glutathione. Glutathione concentration in plasma from the hepatic vein was not higher than concentrations in plasma from the portal vein and from the aorta, indicating that the depleted liver was not releasing glutathione into the plasma. Total glutathione and GSH were higher in plasma from the femoral vein than in plasma from the aorta under these same conditions. This indicates that the leg releases GSH under conditions of absent hepatic GSH release when plasma glutathione concentrations are decreased. These results suggest that muscle secretes GSH into the extracellular space and raise the possibility that other tissues secrete GSH as well. Further studies will be required to determine whether GSH release by extrahepatic tissues is affected by the plasma glutathione concentration.

Animals↗

Liver and kidney necrosis in selenium-deficient rats depleted of glutathione.

BACKGROUND: Selenium and glutathione have interrelated oxidant defense roles in vivo. Experiments were carried out to determine the effect of glutathione depletion in selenium-deficient rats. EXPERIMENTAL DESIGN: Selenium-deficient and control rats were injected with phorone to deplete glutathione. Histologic assessment of liver and kidney injury was performed at 24 hours. In another experiment, glutathione depletion, lipid peroxidation, and liver injury were measured for 12 hours after phorone administration to determine their relationships with one another. In a final experiment, selenoproteins were correlated with protection against lipid peroxidation and liver necrosis. Selenium-deficient rats were injected with vehicle alone and with 5, 10, or 25 micrograms of selenium/kg. Twelve hours later, selenoproteins were measured in some of the rats, and phorone was injected into others. Liver injury and lipid peroxidation were assessed 6 hours after the phorone injection. RESULTS: Twenty-four hours after phorone administration (125 mg/kg), centrilobular hepatic necrosis and renal tubular necrosis were evident in selenium-deficient rats but not in controls. The time-course experiment revealed that phorone (250 mg/kg) caused sharp decreases in liver and kidney glutathione levels in both groups within 2 to 4 hours. Lipid peroxidation, as assessed by F2 isoprostane concentrations, in selenium-deficient animals. Liver necrosis, indicated by a rise in plasma ALT, took place in selenium-deficient rats but not in controls. Selenium injections into selenium-deficient rats increased selenoprotein P concentrations from 4% of control to as high as 39% but had little effect on glutathione peroxidase activities. Six hours after phorone administration, rats that had received selenium had no rise in ALT, and the rises in F2 isoprostanes were abolished or attenuated. CONCLUSIONS: We conclude that depletion of glutathione in selenium-deficient liver and kidney leads to necrosis in those organs associated with evidence of lipid peroxidation. Protection against this injury by selenium correlates with selenoprotein P concentration in plasma but not with glutathione peroxidase activity in tissues or in plasma. These findings raise the possibility that selenoprotein P protects cell membranes against oxidant injury and that glutathione is involved in that protection.

Animals↗

Pathogenesis of diquat-induced liver necrosis in selenium-deficient rats: assessment of the roles of lipid peroxidation and selenoprotein P.

A dose of diquat below the amount injurious to selenium-replete animals causes lipid peroxidation and massive liver necrosis in selenium-deficient rats. The current study was undertaken to characterize the lipid peroxidation with respect to the liver injury and to correlate the presence of several selenoproteins with the protective effect of selenium. Lipid peroxidation was assessed by measurement of F2 isoprostanes. Diquat caused an increase in liver and plasma F2 isoprotanes. A gradient of these compounds was detected across the liver in some animals, indicating that this organ was a source of some of the plasma F2 isoprostanes. A time-course experiment showed that liver F2 isoprostane concentration increased before plasma alanine transaminase (ALT) levels rose. Selenium-deficient rats were injected with selenium doses from 2 to 50 micrograms/kg and studied 12 hours later. A dose of 10 micrograms/kg or more prevented diquat-induced lipid peroxidation and liver injury. This dose increased plasma selenoprotein P substantially, and a dose-response was present. Liver cellular and plasma glutathione peroxidase activities remained below 2% of their values in control rats for all selenium doses. In selenium-deficient rats given diquat, hepatic lipid peroxidation precedes hepatic necrosis and could therefore be an important mechanism of the necrosis. Selenoprotein P levels were increased by selenium injections, which protected against diquat injury, but glutathione peroxidase activity was not increased. This is consistent with selenoprotein P being the mediator of the selenium effect.

Animals↗

Effect of oxygen tension on the generation of F2-isoprostanes and malondialdehyde in peroxidizing rat liver microsomes.

Although numerous methods have been developed for the detection of lipid peroxidation, it is generally recognized that most of these lack specificity and/or sensitivity, particularly when applied to in vivo situations. We have reported recently that a series of prostaglandin F2-like compounds, termed F2-isoprostanes, are formed in vivo from the free radical catalyzed peroxidation of arachidonic acid and appear to be a useful marker of oxidant stress. Because of formation of other products of lipid peroxidation, such as alkanes and malondialdehyde (MDA), are affected by oxygen tension, which may influence their usefulness as markers of oxidant stress, we carried out a systematic study of the generation of F2-isoprostanes at various oxygen concentrations and compared these changes with the generation of MDA. The disappearance of the F2-isoprostane precursor, arachidonic acid, was used as a reference measure. Rat liver microsomes were peroxidized using an iron-ascorbate system. The incubations were carried out in sealed flasks at 37 degrees under N2 and various concentrations of O2 up to 100%. F2-isoprostanes were quantified by mass spectrometry and MDA by the thiobarbituric acid reaction. Microsomal fatty acids were measured by gas chromatography. Both MDA and F2-isoprostane formation increased in a time-dependent manner up to 15 min. Their formation correlated with a loss of polyunsaturated fatty acid and with an increase in O2 tension up to 21% O2. At oxygen tensions above 21%, MDA generation continued to increase, while F2-isoprostane generation and arachidonic acid loss did not. Levels of MDA and F2-isoprostanes increased a maximum of 65 and 9.4 times baseline values, respectively. These studies, therefore, define factors that influence the formation of F2-isoprostanes in an in vitro model of lipid peroxidation. Further, they demonstrate that higher O2 tensions do not block formation of F2-isoprostanes and validate their usefulness for assessing lipid peroxidation under high, as well as low, oxygen tension.

Animals↗

Purification of selenoprotein P from human plasma.

Selenoprotein P was partially purified (> 1000-fold) from human plasma in four chromatographic steps using 75Se-labeled selenoprotein P secreted by HepG2 cells in culture as a marker. The purified preparation was injected into mice and monoclonal antibodies, which precipitated the labeled protein, were generated. Neither of two different monoclonal antibodies had cross-reactivity with plasma from five animal species. Antibodies were coupled to agarose, and selenoprotein P was purified from human plasma by immunoaffinity chromatography followed by chromatography on heparin agarose. With two different matrix-bound monoclonal antibodies, the purification procedure gave two bands on SDS-PAGE with mobilities corresponding to 61 and 55 kDa. Both bands stained for carbohydrate and showed increased electrophoretic mobility after enzymatic deglycosylation. Immunoaffinity chromatography removed approx. one-third of the selenium from plasma or 0.4 mumol Se/l at a total selenium concentration of 1.1 mumol/l, indicating that selenoprotein P constituted this proportion of total plasma selenium in healthy US blood donors.

Amino Acid Sequence↗

Selenoprotein P. A selenium-rich extracellular glycoprotein.

Selenoprotein P is a glycoprotein that has been purified from rat and human plasma. In selenium-replete rats it contains 65% of the plasma selenium and its concentration is 25-30 mg protein/L. In selenium-deficient rats its concentration is < 3 mg protein/L. The plasma half life of 75Se in selenoprotein P is 3 to 4 h, indicating a rapid turnover. Purified rat selenoprotein P contains 7.5 +/- 1 selenium atoms per molecule as selenocysteine. The sequence of the cloned cDNA predicts 10 selenocysteine residues, which suggests that the protein in plasma is a modification of the predicted one. Deduced amino acid sequence identity between rats and humans is 72%. The 3' untranslated region of selenoprotein P cDNA contains two predicted stem loops of the type essential for selenocysteine incorporation. Northern analysis indicates that selenoprotein P is expressed by many tissues. Hepatic selenoprotein P mRNA level, but not its transcription, decreases during selenium deficiency. The decrease is less than the decrease of glutathione peroxidase mRNA, however. Selenoprotein P is postulated to serve as an extracellular oxidant defense because its presence correlates with selenium protection of selenium-deficient rats against diquat-induced lipid peroxidation and liver necrosis. More research will be required to test this hypothesis and to establish the biochemical function of selenoprotein P.

Amino Acid Sequence↗

Detection and localization of lipid peroxidation in selenium- and vitamin E-deficient rats using F2-isoprostanes.

Data on the effect of vitamin E and selenium deficiency on lipid peroxidation in vivo have been limited. F2-isoprostanes are novel prostanoids that, free in plasma and esterified to phospholipids in tissues, are markers of lipid peroxidation in vivo. To address the importance of vitamin E and selenium in defense against lipid peroxidation in vivo, we determined F2-isoprostane concentrations in the plasma and organs of rats fed diets deficient in one or both nutrients. Weanling rats were fed a vitamin E- and selenium-deficient diet for 12 wk and then divided into four groups. One group continued to receive the doubly deficient diet, and the other three groups were fed the diet supplemented with vitamin E, selenium or both nutrients (control diet) for 4 wk. Plasma F2-isoprostanes in rats fed the doubly deficient diet were 5.2-fold higher than in animals changed to a control diet. In addition, there were significant differences in liver, lung, kidney, heart and skeletal muscle phospholipid-esterified F2-isoprostanes between these two groups. Lesser increases were noted in the group fed the vitamin E-deficient diet. Selenium deficiency alone was not associated with greater lipid peroxidation. Lipid peroxidation occurs in tissues of rats fed a vitamin E-deficient diet and is increased by concomitant selenium deficiency.

Animals↗

Effect of selenium deficiency and glutathione-modulating agents on diquat toxicity and lipid peroxidation in rats.

The dipyridyl herbicide diquat undergoes redox cycling in vivo resulting in superoxide generation. Diquat administration causes hepatic and renal toxicity in rodents. Selenium deficiency worsens this injury and lipid peroxidation is a prominent feature of the toxicity. However, there is limited data regarding the role of lipid peroxidation in diquat-induced toxicity in selenium-adequate animals. In addition, little is known about the effect of glutathione-modulating agents on diquat-induced toxicity and lipid peroxidation in vivo. F2-isoprostanes are novel prostanoids which, both free in plasma and esterified to phospholipids in tissues, are markers of lipid peroxidation in vivo. By using F2-isoprostane quantitation, we examined the effects of selenium deficiency and modulation of glutathione status with 1,3-bis (2-chloroethyl)-1-nitrosourea, phorone or buthionine sulfoximine on diquat-induced toxicity and lipid peroxidation. F2-isoprostanes increased 2- to 9-fold in plasma, liver, kidney and lung in selenium-adequate Fischer 344 rats with liver injury after receiving 100 mumol of diquat per kg. Selenium deficiency or modulation of glutathione status increased diquat toxicity. This was accompanied by 10- to 100-fold increases in plasma and kidney F2-isoprostane levels. Liver F2-isoprostanes were increased 2- to 5-fold. These studies suggest that glutathione, in addition to selenium, is an important defense against diquat-induced toxicity and lipid peroxidation.

Animals↗