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Biomedical subjects

S W Spaulding

Publications and source records attributed to S W Spaulding.

At least 37 records · Page 2Linked to original sources

High mobility group protein 1 preferentially conserves torsion in negatively supercoiled DNA.

HMG 1 is known to bind to a variety of DNAs and to unwind nicked and closed circular DNA. We now report evidence that it has a significantly higher unwinding angle on negatively supercoiled DNA than on the other torsional forms. The degree of unwinding observed on nicked circular DNA depends on the purity of the HMG 1 preparation used. HMG 1 from CM-Sephadex has an unwinding angle of 28.8 degrees, compared to 7.2 degrees for the purer preparation obtained from Mono S, suggesting that contaminating strand-separating activity is removed by the additional purification step. The subsequent studies on closed circular forms of DNA were all performed using the purer HMG 1. After preincubation of highly negatively supercoiled DNA (sigma = -0.040) with HMG 1, the DNA-protein mixture was relaxed with Escherichia coli topoisomerase I. At molar ratios of less than 100:1 (HMG 1 to DNA), negatively supercoiled DNA displays a dose-dependent change in the linking number, indicating an unwinding angle of 57.6 degrees. HMG 1 protects 50% of highly negatively supercoiled DNA from E. coli topoisomerase I at a molar ratio of 100:1, and protects all supercoils at a molar ratio of 200:1, indicating saturation of the DNA at this concentration. HMG 1 also protects highly negatively supercoiled DNA from calf thymus topoisomerase I, with an apparent unwinding angle of 57.6 degrees. Moderately negatively supercoiled DNA (sigma = -0.018), but not moderately positively supercoiled DNA (sigma = +0.011), competes for the protective effect of HMG 1 on highly negatively supercoiled DNA.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

A one-step preparative method for separating SER 6-phosphorylated HMG 14 from unphosphorylated HMG 14 and in vitro phosphorylation reaction components.

While clear evidence exists for the regulation of the phosphorylation of the very basic high mobility group (HMG) and histone chromatin proteins, the physiological role of their phosphorylation remains poorly understood. Elucidation of these roles has been difficult, in part, because of the inability to obtain sufficient quantities of purified phosphorylated derivatives. We have used Mono S cation-exchange chromatography to prepare milligram quantities of pure Ser 6-phosphorylated HMG 14 (Ser 6-PO4-HMG) from unphosphorylated Mono S-purified calf thymus HMG 14 following in vitro phosphorylation with cAMP-dependent protein kinase (A-kinase). In one step, this technique separates the phosphorylated derivative from A-kinase, ATP, unphosphorylated HMG 14, and a minor phosphorylated by-product which evidence suggests may be the previously reported Ser 6, 24-diphospho-HMG 14. Mono S chromatography also enhances the purity of calf thymus HMG 14 prepared by perchloric acid extraction, acetone and ethanol precipitations, and CM-Sephadex chromatography. In addition, it permits the detection of apparent microheterogenous forms of both unphosphorylated and Ser 6-PO4-HMG 14. The significant reductions in binding affinity resulting from the incorporation of phosphate groups into HMG 14 suggest that Mono S chromatography could have more general application in the isolation of phosphorylated derivatives of other basic proteins, including other chromatin-associated DNA-binding proteins which are known to undergo specific phosphorylation. It would especially be useful when the proteins and their phosphorylated derivatives bind more tightly to Mono S than the kinases used for their phosphorylation.

Acetone↗

Desulfation of 3,5,3'-triiodothyronine sulfate by microsomes from human and rat tissues.

Subcellular preparations from rat liver, brain, and kidney and from human liver were tested for their ability to desulfate T3 sulfate (T3SO4). Activity was found associated with the microsomal fraction: rat liver was the most active, hydrolyzing 76 pmol/min.mg protein of T3SO4 while preparations from rat kidney and brain were about 1/5 and 1/20 as active. Microsomal preparations from human liver obtained at autopsy were as active as fresh rat preparations. Thyroxine sulfate was not an active substrate. Microsomes prepared with dithiothreitol and EDTA in order to detect deiodinating activity maintained T3SO4-desulfating activity. Cytosolic preparations containing arylsulfatase activities failed to desulfate T3SO4. Estrone sulfate, dehydroepiandrosterone sulfate, and nitrophenyl sulfate are known substrates for microsome-associated arylsulfatase activities, and these compounds were found to inhibit hydrolysis of T3SO4 to various extents. Of these competing sulfatase substrates, only dehydroepiandrosterone sulfate inhibits T3SO4 desulfation completely. In order to determine whether desulfation occurs in intact cells, isolated hepatocytes were incubated in the presence of 7 and 54 microM T3SO4. These cells were found to hydrolyze 1-1.5% of the sulfate ester/h for up to 3 h. The demonstration of this activity raises the possibility that these hepatic cells may be able to reactivate T3SO4, which has generally been regarded as an irreversibly inactivated metabolite.

Animals↗

Age and the thyroid.

Thyroid diseases are common in elderly patients, but their clinical manifestations are more subtle and often are hidden by a background of intercurrent disease. Therapy for thyroid disease in the elderly can also be more problematic because of increased risks of complications.

Aged↗

Peroxide formation and glucose oxidation in calf thyroid slices: regulation by protein kinase-C and cytosolic free calcium.

We have determined the effects of tetradecanoyl phorbol acetate (TPA) and of the calcium ionophore A23187 on two thyroid responses to TSH previously reported to be cAMP-independent. We observed that TPA and A23187, at doses of 1.0 microM, stimulated both hydrogen peroxide generation and glucose oxidation in calf thyroid slices. A subthreshold dose of A23187 (0.1 microM) added to a submaximal dose of TPA (0.5 microM) acted synergistically, stimulating H2O2 production to the same degree as a maximally effective dose of TSH (50 mU/ml). Forskolin (25 microM), a direct stimulator of adenylate cyclase, actually inhibited both glucose oxidation and hydrogen peroxide generation. Lithium chloride (25 mM) had no effect on either response, either in the basal state or with TSH stimulation. The calcium channel antagonist verapamil (50 microM) decreased the basal activity of glucose oxidation and peroxide generation but did not substantially inhibit the effect of TSH on H2O2 generation under the conditions studied. These data support the concept that TSH induces changes in the thyroid phosphatidylinositol metabolism which activates protein kinase-C (c-kinase) and raises cytosolic free calcium. These events appear to act in concert to mediate certain metabolic responses in differentiated thyroid tissue.

Adenylyl Cyclases↗

Hormonal control of the phosphorylation of histones, HMG proteins and other nuclear proteins.

Hormone-dependent phosphorylation and dephosphorylation of nuclear proteins may play an important part in regulating nuclear function and specific gene expression. Some progress has been made in identifying specific nuclear proteins whose phosphorylation is affected by specific hormones; however, relatively little is known about the regulatory mechanisms involved, or about the molecular consequences of increased or decreased phosphorylation. It is suspected--but not yet proved--that cAMP-dependent effects on transcription are mediated at least partly by increases in nuclear cAMP-dependent protein kinase (A-kinase) activity, and consequent increases in the phosphorylation of specific chromatin proteins. In several instances, increased phosphorylation has been found to precede or correlate with cAMP-mediated induction of specific gene products. Several chromatin proteins are susceptible to cAMP-dependent phosphorylation in vivo, including histones H1 and H3, the high mobility group protein HMG 14 (which is preferentially associated with actively transcribed chromatin), and at least three other basic nonhistone proteins. The A-kinase phosphorylation sites of the majority of H1, H3 and HMG 14 molecules in chromatin appear to be inaccessible to A-kinase in vivo; nothing is known about the factors determining their accessibility, which may be tightly regulated and may vary significantly from cell to cell and tissue to tissue. Many hormone-induced changes in nuclear protein phosphorylation may be cAMP-independent. cAMP-independent mechanisms could involve a variety of nuclear enzymes including, for example, cGMP-dependent, Ca2+/calmodulin-dependent, Ca2+/phospholipid-dependent and polyamine-dependent protein kinases. So far, however, there is little solid evidence in support of a role for any specific cAMP-independent protein kinase in mediating hormonally induced increases in the phosphorylation of specific, identified nuclear proteins.

Animals↗

Hyperthyroidism. Causes, clinical features, and diagnosis.

The usual patient with hyperthyroidism has Graves' disease: If serum levels of thyroid hormone are clearly elevated, the presence of infiltrative ophthalmopathy or pretibial myxedema is probably sufficient for establishing the diagnosis. However, if the ancillary findings of Graves' are not present, the radioactive iodine uptake should be determined to rule out other possible etiologies of hyperthyroidism. Signs of hyperthyroidism may be subtle or misleading, particularly in the elderly; the well-informed clinician keeps the diagnosis in mind, and if the initial thyroid hormone tests are not definitive, employs additional tests that are cost-effective in the individual clinical situation.

Digestive System↗

Thyrotropin-stimulated phosphorylation of high mobility group protein 14 in vivo at the site catalyzed by cyclic nucleotide-dependent protein kinases in vitro.

Thyrotropin (TSH) treatment of bovine thyroid slices increased 32P-labeling of chromosomal high mobility group 14 (HMG) protein approximately 2-fold. Analogs of cAMP, but not cGMP, also enhanced phosphorylation of HMG 14. The sites of phosphorylation were analyzed by partial acid hydrolysis and by two-dimensional mapping of tryptic digests of 32P-labeled HMG 14 which was purified from control and TSH-treated thyroid tissue. TSH treatment enhanced phosphorylation at serine residues in four prominent tryptic phosphopeptides which were identical with those derived from HMG 14 phosphorylated in vitro with cAMP- and cGMP-dependent protein kinases. The four tryptic phosphopeptides contain serine 6, the major site of in vitro phosphorylation catalyzed by cyclic nucleotide-dependent protein kinases (Walton, G. M., Spiess, J., and Gill, G. N. (1982) J. Biol. Chem. 257, 4661-4668). TSH did not affect phosphorylation of serine 24, a minor site of phosphorylation in vitro. These studies suggest that TSH-stimulated phosphorylation of HMG 14 is catalyzed by cAMP-dependent protein kinase.

Amino Acids↗

Effects of cycloheximide, alpha-amanitin, and alpha-difluoromethylornithine on thyrotropin-induced increases in the micrococcal nuclease sensitivity of thyroid nuclear chromatin.

Treatment of calf thyroid slices with TSH increases the nuclease sensitivity of nuclear chromatin, i.e. the amount of DNA released from nuclei by mild digestion with DNase I and micrococcal nuclease. Cycloheximide and alpha-amanitin were used to investigate the roles played by protein and RNA synthesis in mediating this effect of TSH; alpha-difluoromethylornithine, an irreversible inhibitor of ornithine decarboxylase, was used to investigate the possible involvement of polyamines. Calf thyroid slices were incubated with or without TSH (50 mU/ml) for 5 h, in the presence or absence of inhibitors. Nuclei were then prepared, subjected to mild digestion with micrococcal nuclease, and centrifuged at 1200 X g. The amount of DNA in 1200 X g supernatants was increased by TSH; this was inhibited by cycloheximide (100 micrograms/ml) and alpha-amanitin (4 micrograms/ml) when these agents were present throughout incubations with TSH. In contrast, alpha-amanitin failed to inhibit the TSH effect when it was added to incubations 30 min or 2 h after the addition of TSH. These results indicate that RNA and protein synthesis play a part in mediating the effect of TSH on the micrococcal nuclease sensitivity of chromatin, and that the RNA synthesis involved takes place within the first 30 min of exposure of thyroid slices to TSH. alpha-Difluoromethylornithine (5 mM) inhibited the TSH-dependent development of micrococcal nuclease sensitivity; however, it also inhibited nuclease digestion when it was added directly to nuclei prepared from fresh thyroid tissue. This observation should serve as a warning against uncritical acceptance of the notion that all effects of alpha-difluoromethylornithine are the result of inhibition of ornithine decarboxylase.

Amanitins↗

Histone and high mobility group protein phosphorylation in the thyroid: regulation by cyclic nucleotides.

A variety of cyclic nucleotide analogs and other agents that affect thyroid cyclic nucleotide metabolism were used to investigate the role of cAMP and cGMP in regulating nuclear protein phosphorylation in calf thyroid slices labeled in vitro with [32P]orthophosphate. Two major groups of acid-soluble proteins were studied. Group I consisted of proteins whose phosphorylation is stimulated by TSH [histones H1 and H3, high mobility group (HMG) protein 14, and the HMG 14/17-like protein PS.3]; group II included representatives of a spectrum of proteins whose phosphorylation is unaffected by TSH (histones H2A, H2B, and H4, HMG 17, the HMG 14/17-like protein PS.2, and the nonhistone protein AS.1). The effects of TSH (50 mU/ml) on the 32P labeling of group I proteins were partially reproduced by (Bu)2cAMP (1 mM), 8-bromo-cAMP (1 mM), and butyrate (2 mM), and closely mimicked by 8-(4-chlorophenylthio)cAMP (1 mM), forskolin (25 microM), and butyrate (10 mM). (Bu)2cGMP (1 mM), 8-bromo-cGMP (1 mM), and carbachol (50 microM) had no effect on protein phosphorylation. NaNO2 (20 mM), which markedly increases cGMP concentration in calf thyroid slices, decreased the 32P labeling of group I proteins and also affected, to varying extents, the phosphorylation of the group II proteins. The phosphodiesterase inhibitor methylisobutylxanthine (0.5 mM) had generally minor effects on 32P labeling; however, it did counteract the effects of NaNO2 on group I protein phosphorylation. Our results provide strong support for the hypothesis that TSH-dependent phosphorylation of group I proteins is mediated by cAMP, but they provide little evidence of cGMP regulation of histone or HMG protein phosphorylation.

1-Methyl-3-isobutylxanthine↗

Estimation of a physiologic replacement dose of levothyroxine in elderly patients with hypothyroidism.

We gave graded doses of levothyroxine sodium to 11 elderly hypothyroid subjects (mean age, 66.1 years). The daily levothyroxine sodium dose was initially 75 micrograms or less, and was increased by 25 micrograms every six weeks. Serum total thyroxine, total triiodothyronine, and basal thyrotropin levels were measured at the start of the study and at the end of each six-week dose period. A protirelin (thyrotropin-releasing hormone) test was performed when the thyrotropin level returned to normal. Mean daily levothyroxine sodium doses that normalized serum thyrotropin levels and protirelin test were 110 +/- 8 micrograms and 113 +/- 9 micrograms, respectively. Serial basal thyrotropin determinations during stepwise increments in levothyroxine dose indicated physiologic hormone replacement. As determined in our elderly patients, levothyroxine replacement dose was a third less than that formerly recommended.

Aged↗

HMG (high-mobility-group)-14/17-like proteins in calf thyroid. Thyrotropin-dependent phosphorylation and comparison with calf thymus proteins.

Two-dimensional polyacrylamide-gel electrophoresis of acid extracts of thyroid and thymus tissue, and of thyroid nuclei, revealed the presence of three HClO4-soluble nuclear proteins, PS.1, PS.2 and PS.3, whose electrophoretic mobilities closely resembled those of HMG (high-mobility-group) proteins 14 and 17. PS.1 co-migrated with HMG 14 on CM-Sephadex column chromatography. Like HMG 14, PS.2 and PS.3 were phosphorylated in calf thyroid slices; 32P-labelling of PS.3 was stimulated by thyrotropin. Thyrotropin also induced a rapid increase in the labelling of A5, an HMG-14/17-like protein found in whole calf thyroid and thymus tissue, but not in thyroid nuclei.

Animals↗

Effects of thyrotropin on thyroid chromatin. Enhanced sensitivity to micrococcal nuclease and increased nuclear protein phosphorylation.

Thyroid slices were incubated with or without TSH for 2 or 5 h. Nuclei were then prepared, subjected to mild digestion with micrococcal nuclease, and centrifuged at 1200 X g. The amount of DNA in 1200 X g supernatants was increased by TSH at 5 h, but not at 2 h. In parallel studies, thyroid slices were incubated with 32Pi and labeling of acid-soluble nuclear proteins was examined. TSH-dependent increases in labeling of histones H1 and H3, and of the high mobility group protein HMG 14, were observed at 2 h; however, there were no apparent changes in TSH-dependent labeling between 2 and 5 h, in nuclease-sensitive or in bulk chromatin. These results suggest that the observed TSH-dependent changes in the micrococcal nuclease-sensitivity of thyroid nuclear chromatin were not induced directly by changes in the phosphorylation of the histones or HMG 14.

Animals↗

Effects of thyrotropin on the phosphorylation of histones and nonhistone phosphoproteins in micrococcal nuclease-sensitive and resistant thyroid chromatin.

Actively transcribed regions of chromatin are more susceptible than bulk chromatin to digestion by nucleases, and useful information about the composition and structure of active chromatin may be obtained by studying the chromatin fragments released from nuclei by limited nuclease digestion. In the present study, we have used micrococcal nuclease to investigate the effects of TSH on protein phosphorylation in nuclease-sensitive fractions of calf thyroid chromatin. Batches of calf thyroid slices were incubated for 2 h with 32Pi, with or without 50 mU/ml TSH. Nuclei were then prepared and the distribution of 32P-labeled histones, high mobility group (HMG) proteins, and other acid-soluble phosphoproteins between micrococcal nuclease-sensitive and resistant fractions of chromatin was examined. TSH increased the amount of 32P incorporated into HMG 14 and the histones H1 and H3. Hormone-dependent increases in the 32P-labeling of H1 and H3 were not selectively associated with micrococcal nuclease-sensitive chromatin. In contrast, [32P] HMG-14 was preferentially solubilized from nuclei by micrococcal nuclease. This lends support to the view that TSH-induced effects on the structure and function of transcriptionally active chromatin may be mediated in part by phosphorylation of HMG 14.

Animals↗

TSH stimulates 32P-labeling of thyroid nuclear HMG 14, a protein associated with actively transcribed chromatin.

Thyroid slices were incubated with 32Pi with or without TSH. 32P-labeling of acid-soluble nuclear proteins was then examined by two-dimensional polyacrylamide gel electrophoresis and autoradiography. We found that TSH enhanced the labeling of the high mobility group protein HMG 14, a protein that is preferentially associated with actively transcribed chromatin. This observation suggests that changes in HMG 14 phosphorylation may be involved in mediating TSH-induced effects on the structure and function of active chromatin.

Animals↗

Effect of thyrotropin on the sensitivity of thyroid nuclear deoxyribonucleic acid to digestion by micrococcal nuclease.

Little is known about the mechanisms of action of polypeptide hormones on chromatin structure and nuclear function. We have employed micrococcal nuclease to examine the effect of TSH on the accessibility of DNA in thyroid nuclei. Brief digestion of nuclear suspensions with 0.05-0.2 U/ml micrococcal nuclease at 26-28 C decreased their opacity at 600 nm. The decrease in opacity was linear with increasing nuclear concentration up to 0.2 mg/ml DNA. This response to nuclease was enhanced in nuclear suspensions prepared from thyroid slices that had been incubated with TSH (50 mU/ml) for 5 h (P less than 0.001). To determine whether TSH also increased the digestion of DNA, we measured the amount of DNA released into 1200 X g supernatants by nuclease treatment of nuclei prepared from control and TSH-treated slices. When TSH-treated nuclei (110 micrograms/100 microliters) were digested with 0.2 U micrococcal nuclease/ml at 37 C for 30 sec, a mean of 12.6 micrograms +/- 3.6 (SD) DNA appeared in the supernatant, as compared to 8.4 micrograms +/- 1.98 DNA from control nuclei (P less than 0.05). This increase in the insensitivity of nuclear DNA to micrococcal nuclease may reflect some conformational change in chromatin in response to TSH. Since micrococcal nuclease sensitivity may reflect transcriptional competence of DNA, we speculate that polypeptide hormones may enhance the accessibility of DNA to RNA polymerase or to endogenous stimulators of transcription.

Animals↗

Effect of thyrotropin on 32P-labelled histones H1 and H3 in specific populations of nucleosomes in the thyroid.

Thyrotropin (TSH) increases the labeling of histones of H1 and H3 in thyroid slices incubated with 32Pi. We have prepared nuclei from control and TSH-treated thyroid slices, digested them with micrococcal nuclease, and extracted specific populations of nucleosomes by salt fractionation. Mononucleosomes, derived from the most nuclease-sensitive regions of chromatin, appeared to be selectively enriched in 32P-labeled H1 and H3. However, we were able to detect TSH enhancement of H1 and H3 labeling only in nucleosome multimers derived from less nuclease-sensitive chromatin. Recent studies have indicated that transcriptionally competent regions of chromatin may be more susceptible to micrococcal nuclease digestion than inactive regions. Our results therefore suggest that H1 and H3 may be actively phosphorylated in transcriptionally competent chromatin; however, they suggest either that hormone-dependent phosphorylation of H1 and/or H3 does not confer transcriptional competence, or that not all transcriptionally competent chromatin is nuclease sensitive.

Animals↗