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B Dozin

Publications and source records attributed to B Dozin.

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In vitro development of hypertrophic chondrocytes starting from selected clones of dedifferentiated cells.

Single cells from enzymatically dissociated chick embryo tibiae have been cloned and expanded in fresh or conditioned culture media. A cloning efficiency of approximately 13% was obtained using medium conditioned by dedifferentiated chondrocytes. A cloning efficiency of only 1.4% was obtained when conditioned medium from hypertrophic chondrocytes was used, and efficiencies of essentially 0 were found with fresh medium or medium conditioned by J2-3T3 mouse fibroblasts. Cell clones were selected by morphological criteria and clones showing a dedifferentiated phenotype (fibroblast-like) were further characterized. Out of 38 clones analyzed, 17 were able to differentiate to the hypertrophic chondrocyte stage and reconstitute hypertrophic cartilage when placed in the appropriate culture conditions. Cells from these clones expressed the typical markers of chondrocyte differentiation, i.e., type II and type X collagens. Clones not undergoing differentiation continued to express only type I collagen. Hypertrophic chondrocytes from differentiating clones were analyzed at the single cell level by immunofluorescence; all the cells were positive for type X collagen, while approximately 50% of them showed positivity for type II collagen.

Animals↗

Coding nucleotide sequence of rat malic enzyme mRNA and tissue specific regulation by thyroid hormone.

A nearly full length ME cDNA has been obtained and sequenced. The identity has been established by comparison of the translated nucleotide sequence with the amino acid sequence of 7 tryptic peptides from purified ME. Northern analysis with this cDNA shows that ME mRNA consists of two different messages of about 27S and 21S. The size difference between two ME mRNAs (approximately equal to 27S and 21S) is attributed to the differences in the 3' noncoding regions. The relative ratios of the two ME mRNAs differ in various tissues examined (liver, heart, kidney, brain, lung, spleen, and testis). Their regulation by T3 is tissue specific with coordinate stimulation of both mRNAs in liver, heart and kidney, suggesting a single promoter for both mRNAs and no stimulation of either in the other tissues. T3 regulates ME mRNA synthesis via a dual-tissue specific mechanism by increasing the rate of transcription in liver and heart and stabilizing nuclear ME RNA sequences only in liver.

Amino Acid Sequence↗

Transcriptional activation and stabilization of malic enzyme mRNA precursor by thyroid hormone.

One of the responses to the administration of thyroid hormone is an increase in malic enzyme (EC 1.1.1.40) mRNA in rat liver. We have previously shown that 3,5,3'-triiodo-L-thyronine (T3) causes a 3-4-fold increase in the rate of transcription of the malic enzyme gene as determined by in vitro run-off assays with the cDNA probe following T3 treatment for 10 days (Dozin, B., Magnuson, M.A., and Nikodem, V. M. (1986) J. Biol. Chem. 261, 10290-10292). Since the level of cytoplasmic mRNA increases 10-15-fold, one or more additional mechanisms must be operative to produce the full effect. We have now analyzed the time course of the effect of T3 on the rate of transcription and the accumulation of malic enzyme RNA in the nucleus using malic enzyme cDNAs and intronic probes. There is an approximately 10-12-fold increase in the level of nuclear RNA accompanied by the same increase in cytoplasmic mRNA, showing a half-rise time of about 60 h. The 3-4-fold increase in the transcription rate occurred with a half-time of about 18 h. The relative values for either the increase in transcriptional activity or the increase in the level of malic enzyme RNA in the nucleus were identical irrespective of the probes used. As a control, we examined the effect of a high carbohydrate diet which is known to increase malic enzyme mRNA without affecting either transcriptional rate or nuclear RNA (Dozin, B., Rall, J. E., and Nikodem, V. M. (1986) Proc. Natl. Acad. Sci. U.S.A. 83, 4705-4709). As expected, no change in the level of malic enzyme RNA in the nucleus was found with the intronic probes. We conclude that T3 both activates transcription of the malic enzyme gene in rat liver and decreases the rate of degradation of pre-mRNA coding for malic enzyme.

Animals↗

Changes in the expression of collagen genes show two stages in chondrocyte differentiation in vitro.

This report deals with the quantitation of both mRNA and transcription activity of type I collagen gene and of three cartilage-specific collagens (types II, IX, and X) during in vitro differentiation of chick chondrocytes. Differentiation was obtained by transferal to suspension culture of dedifferentiated cells passaged for 3 wk as adherent cells. The type I collagen mRNA, highly represented in the dedifferentiated cells, rapidly decreased during chondrocyte differentiation. On the contrary, types II and IX collagen mRNAs sharply increased within the first week of suspension culture, peaked in the second week, and thereafter began to decrease. This decrease was particularly significant for type IX collagen mRNA. The level of type X collagen mRNA progressively increased during the course of the culture, reached its maximal value after 3-4 wk, and decreased only at a later stage of cell differentiation. As determined by in vitro run-off transcription assays, all these changes in collagen mRNA levels could be attributed to parallel modifications in the relative rate of transcription of the corresponding collagen genes. We suggest that chicken chondrocyte differentiation proceeds through at least two different steps: (a) first, transition from a stage characterized by a high level of type I collagen mRNA to a stage characterized by predominance of types II and IX collagen mRNAs; (b) later, transition to a stage characterized by the highest level of type X collagen mRNA.

Animals↗

Altered interaction between triiodothyronine and its nuclear receptors in absence of cortisol: a proposed mechanism for increased thyrotropin secretion in corticosteroid deficiency states.

Thyroid hormones occasionally appear less effective when administered alone to patients with panhypopituitarism, and manifestations suggestive of hypothyroidism have been reported in patients suffering from untreated Addison's disease. In the latter condition, thyrotropin secretion is increased: this occurs already after as little as 2 days of temporary withdrawal of therapy with substitution doses of corticosteroids while circulating levels of thyroid hormones remain within normal limits. Therefore, a possible role of cortisol in interaction between triiodothyronine and its nuclear receptors was examined at the level of circulating lymphocytes obtained from patients with primary or secondary adrenocortical failure. The affinity of these receptors was found to be decreased, by more than 50% on average, in the absence of cortisol treatments. This change was promptly corrected upon resumption of therapy. The number of binding sites was not significantly modified. The influence of cortisol on thyroid hormone receptors discussed here might account for the clinical observations mentioned above.

Addison Disease↗

Transcriptional regulation by thyroid hormone of an mRNA homologous to a protease inhibitor.

We have previously cloned a cDNA of a rat liver mRNA, designated 4-12B, markedly induced by triiodothyronine (T3) at a pretranslational level [Magnuson, M.A., Dozin, B., & Nikodem, V.M. (1985) J. Biol. Chem. 260, 5906-5912]. Here we show that this hormonal effect is due in part to an increase of the rate of transcription of the 4-12B gene. In addition, the nucleotide sequence of 4-12B cDNA has been determined, revealing significant similarity with the sequences of the superfamily of serine protease inhibitors and a very high homology with contrapsin, a mouse serum trypsin inhibitor, at the level of nucleotide and amino acid sequence (77.9 and 66.8%, respectively). The optimized alignment of the putative reactive center region of 4-12B with four related members of this superfamily revealed that lysine-serine residues are located at the reactive site or adjacent to it, thus suggesting that the triiodothyronine-regulated rat 4-12B mRNA might code for a protease inhibitor with trypsin-like specificity. Although not enough data are presently available to assign definitively antitryptic activity to this protein, the high degree of similarity with members of the superfamily of serine protease inhibitors leaves no doubt that 4-12B is a member of this superfamily.

Amino Acid Sequence↗

Thyroid hormone regulation of malic enzyme synthesis. Dual tissue-specific control.

The regulatory mechanism(s) involved in the tissue-specific induction of cytosolic malic enzyme (EC 1.1.1.40) by triiodothyronine (T3) have been investigated in rat liver and heart. In these two tissues, cellular malic enzyme mRNA accumulates to different extents in response to hormonal stimulation (11-16- and 3-4-fold above the respective basal levels) (Dozin, B., Magnuson, M. A., and Nikodem, V. M. (1985) Biochemistry 24, 5581-5586). To gain further insight into this pretranslational control, nuclear in vitro run-off transcription assays were performed and correlated with the levels of malic enzyme RNA sequences in cytoplasm. The data demonstrate that the rate of transcription of the malic enzyme gene is stimulated by T3 to similar extents in liver and heart (3-4-fold above the basal activity). In liver, T3 also promotes an additional increase in cellular malic enzyme mRNA. This additional effect could be due to a tissue-specific change in the rate of degradation of cytoplasmic mRNA or to an effect on malic enzyme mRNA in the nucleus.

Animals↗

Tissue-specific control of rat malic enzyme activity and messenger RNA levels by a high carbohydrate diet.

In euthyroid rats fed a high carbohydrate fat-free diet for 10 days, the mass of cellular malic enzyme mRNA in liver is increased 7- to 8-fold above the basal level. Malic enzyme activity is stimulated to the same extent. This effect does not result from an increase either in the transcriptional activity of the malic enzyme gene, as determined by nuclear run-off transcription assay, or in the content of intranuclear malic enzyme RNA sequences. Mathematical modeling shows that this increase in cytoplasmic mRNA is compatible with retarded degradation of cytoplasmic mRNA. Regulation of malic enzyme by carbohydrates is liver-specific, since no response is observed in the following nonhepatic tissues: brain, heart, spleen, kidney, testis, and lung. Furthermore, the amplitude of the response in liver depends on the thyroid state of the animals, being lower (by a factor of approximately 4) in hypothyroidism and higher (12- to 15-fold) when normal animals are injected simultaneously with a daily dose of 15 micrograms of triiodothyronine per 100 g of body weight for 10 days. Since thyroid hormones regulate liver malic enzyme synthesis predominantly at the nuclear level and carbohydrates at the cytoplasmic level, the additive effect of triiodothyronine and a high carbohydrate diet on the activity of malic enzyme is readily explicable.

Animals↗

Tissue-specific regulation of two functional malic enzyme mRNAs by triiodothyronine.

Rat liver malic enzyme (ME) synthesis is known to be regulated by 3,5,3'-triiodo-L-thyronine (T3). Hybridization of 32P-labeled ME cDNA with RNA extracted from normal and T3-induced livers (15 or 50 micrograms/100 g body weight for 10 days) showed an increase in the ME mRNA concentration by approximately 11-fold in T3-treated rats. ME activity and ME mass were stimulated to the same degree as ME mRNA. Northern blot analysis of either total or poly(A+) RNA revealed two distinct ME mRNAs (21 and 27 S) which were equally induced by T3 treatment. Both mRNAs were shown by in vitro translation assay to program the synthesis of the same immunoprecipitable protein corresponding to full-sized ME. From all the above, we concluded that both messages code for active enzyme. ME activity and ME mRNA were also detected in nonhepatic tissues for which different responses to T3 induction were observed without direct correlation with their respective content of T3 nuclear receptor. Increases in ME activity and level of hybridizable ME mRNA were seen 48 h after a single administration of T3 (200 micrograms/100 g body weight) in liver, kidney, and heart (10.3- and 15.5-, 1.7- and 2.6-, and 1.72- and 3.4-fold above basal values, respectively). Lower levels of induction could already be detected after 24 h, liver being the most stimulated tissue. ME was not affected in brain, lung, testis, and spleen. Northern blot analysis showed that both ME mRNAs are present in all tissues tested, although in different relative proportions.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Identification of thyroid hormone receptors in rat liver nuclei by photoaffinity labeling with L-thyroxine and triiodo-L-thyronine.

Photoaffinity labeling of rat liver nuclear extract with underivatized thyroid hormones was performed after incubation with 1 nM [3',5'-125I]thyroxine ([125I]T4) or [3'-125I]triiodothyronine [( 125I]T3) by irradiation with light above 300 nm. Sodium dodecyl sulfate-polyacrylamide gel electrophoresis of the covalently photolabeled nuclear extract revealed four distinct hormone binding proteins of molecular masses 96, 56, 45, and 35 kilodaltons (kDa), respectively. Distribution of the hormone among these proteins was similar for T4 and T3. The 56- and 45-kDa proteins were the most prominently labeled. The specificity of the photoattachment of thyroid hormones to these nuclear proteins was verified by the irradiation of eight randomly chosen proteins and two proteins known to have thyroid hormone binding sites, human thyroxine binding globulin and bovine serum albumin. Only the latter two were photolabeled with [125I]T4. Competition studies performed by incubating nuclear extracts with [125I]T4 or [125I]T3 in the presence of increasing amounts of the corresponding unlabeled hormone (10-, 100-, and 1000-fold molar excess) demonstrated that (1) photoattachment of labeled T3 or T4 to the 56- and 45-kDa proteins was inhibited by 67-78% and 73-85%, respectively, after incubation with a 1000-fold molar excess of unlabeled hormone, (2) in the presence of lower molar excesses of the corresponding competitor (10- and 100-fold), photoattachment of labeled T3 or T4 to the 56- and 45-kDa receptors was gradually inhibited to a similar extent on both proteins, and (3) the 35- and 96-kDa proteins, although having thyroid hormone binding sites, display lower binding activities since the inhibition of photoattachment of labeled T3 or T4 by a 1000-fold molar excess of unlabeled hormone did not exceed 30-42% and 26-49%, respectively.(ABSTRACT TRUNCATED AT 250 WORDS)

Affinity Labels↗

Comparative characterization of thyroid hormone receptors and binding proteins in rat liver nucleus, plasma membrane, and cytosol by photoaffinity labeling with L-thyroxine.

Photoaffinity labeling with underivatized thyroxine (T4) was used to identify and compare the T4 binding proteins in rat liver cytosol, nuclear extract, and purified plasma membrane. When these subcellular fractions were incubated with a tracer concentration of [125I]T4, irradiated with light above 300 nm, and individually analyzed by sodium dodecyl sulfate-polyacrylamide gel electrophoresis, the radioactivity profiles revealed the presence of T4 binding proteins of molecular masses of 70, 52, 43, 37, 30, and 26 kilodaltons (kDa) in cytosol, of 96, 56, 45, and 35 kDa in nuclear extract, and of 70, 44, and 30 kDa in plasma membrane. Competition experiments performed in the presence of a 1000-fold excess of unlabeled T4 demonstrated that these binding proteins display different hormone binding activities. The similar electrophoretic mobilities of some binding proteins present in the different subcellular fractions, i.e., the 70-, 43-45-, and 30-kDa proteins, suggested that these proteins might be identical. However, double-labeling experiments in which plasma membrane, nuclear extract, and cytosol were photolabeled with either [125I] or [131I]T4 and mixed, two at a time, in all possible combinations showed that from one cellular fraction to another, the radioactivity peaks corresponding to the approximately 70-, 43-45-, and 30-kDa proteins were not superimposed. Their relative positions on the gel differed by one or two slices, which indicated differences in molecular mass of 1.9-3.6 kDa. Moreover, enzymatic digestion with Staphylococcus aureus V8 protease of these three proteins, prepared from each subcellular fraction, yielded dissimilar peptide patterns.(ABSTRACT TRUNCATED AT 250 WORDS)

Affinity Labels↗

Regulation of specific rat liver messenger ribonucleic acids by triiodothyronine.

A plasmid cDNA library was constructed using poly(A+) RNA isolated from the livers of rats treated with 3,5,3'-triiodothyronine (T3) and fed a high carbohydrate diet. This library was screened by differential colony hybridization with [32P]cDNA probes made from hypothyroid and hyperthyroid rat liver poly(A+) RNA to obtain clones representing T3-inducible mRNAs. Using plasmid cDNAs to 4 different T3-inducible mRNAs, we have studied by hybridization assay the responses of these mRNAs to different thyroidal steady states and to a high carbohydrate diet. The fold of induction (hypothyroid to hyperthyroid) varied from about 4.0 (mRNA 5-8D) to 13.2 (mRNA 4-12B). The linearity of response with regard to nuclear receptor occupancy was estimated by assessing the relative mRNA levels in a euthyroid state. Three of the mRNAs demonstrated nonlinear responses with the largest portion of the induction occurring in the euthyroid to hyperthyroid transition. An induction by the high carbohydrate diet was clearly seen for only one mRNA (5-8D) suggesting that these two pathways of induction are independent. In a study of the response kinetics of each mRNA to a nuclear receptor saturating dose of T3 in hypothyroid animals, an increase was seen within 4 h (the earliest time point examined) for one of the mRNAs. The other 3 mRNAs did not increase significantly until 8 h after the T3 dose. Northern analysis showed a single mRNA corresponding to each of these 4 clones with sizes ranging from about 1375 to 7600 bases. Two mRNAs (5-9E and 4-12B) were shown by hybrid-selected translation to code for proteins of molecular mass of about 27 and 46 kDa, respectively. The availability of several different cDNA probes to T3 responsive liver mRNAs should facilitate future studies on the mechanism of action of this hormone.

Animals↗

Triiodothyronine receptors in adult rat brain: topographical distribution and effect of hypothyroidism.

The binding properties (affinity constant Ka and number of binding sites) of the nuclear receptors for triiodothyronine (T3) were studied in selected brain areas of the adult rat: cerebral cortex, cerebellum, olfactory bulb, caudate nucleus, hippocampus, hypothalamus and pituitary. Normal rats were compared to hypothyroid animals. The Ka of the nuclear receptors in the different parts of the brain had a similar order of magnitude (10(9) M-1) except for the hypothalamus where the value was lower (6 X 10(7) M-1). In hypothyroid animals, two main changes were observed in the properties of nuclear receptors: the Ka in the cerebral cortex was reduced by half, whereas in the pituitary the value was three times higher than in controls. In contrast to the decreased affinity, hypothyroidism enhanced the maximal binding capacity, especially in the cerebral cortex, the olfactory bulb, the caudate nucleus and the hippocampus. Of particular interest were the effects of hypothyroidism on the pituitary receptors which showed a markedly increased affinity for T3 and a reduced number of binding sites; this observation could be related to the control feedback mechanism of thyroid-stimulating hormone secretion by thyroid hormones.

Animals↗