PubMed Health⌕ Search

Biomedical subjects

G Tarjan

Publications and source records attributed to G Tarjan.

At least 19 recordsLinked to original sources

Insulin-like growth factor I production is essential for anabolic effects of thyroid hormone in osteoblasts.

Thyroid hormone (T3) and insulin-like growth factor I (IGF-I) are critical regulators of skeletal function. T3 increases IGF-I production in bone. To assess the potential role of IGF-I as a mediator of T3 actions, we characterized phenotypic markers of osteoblast activity in two osteoblast models, normal mouse osteoblasts and MC3T3-E1 cells, exposed to T3 alone or under conditions that interfere with IGF-I actions. T3 significantly increased osteoblast 3H-proline incorporation, alkaline phosphatase (ALP), and osteocalcin. Both alphaIR3, a neutralizing monoclonal antibody to the IGF-I receptor, and JB1, an IGF-I analogue antagonist, attenuated the stimulatory effects of T3. T3 effects also were decreased in cells transfected with antisense oligonucleotide (AS-ODN) to the IGF-I receptor gene. Both IGF-I and T3 had mitogenic effects that were inhibited by the antagonists. IGF-I by itself did not stimulate 3H-proline incorporation, ALP, and osteocalcin in the models used, revealing that although IGF-I is essential for the anabolic effects of T3, it acts in concert with other factors to elicit these phenotypic responses.

Animals↗

Alendronate/interleukin-1beta cotreatment increases interleukin-6 in bone and UMR-106 cells: dose dependence and relationship to the antiresorptive effect of alendronate.

Aminobisphosphonates inhibit bone resorption but have been shown to elicit acute-phase-like elevations in interleukin-6 (IL-6) in bone in vitro. The current studies were carried out to determine the relationship between the antiresorptive effects of the aminobisphosphonate alendronate and its effects on IL-6. Resorption was elicited in cultured 19-day fetal rat limb bones by 72 h treatment with interleukin-1beta (IL-1beta). Bone mass was quantitated at the end of the culture period to assess resorption. IL-6 was determined by bioassay (7TD1 cell proliferation). IL-1beta (18 and 180 pM) stimulated bone resorption and increased IL-6. Alendronate (70 microM) inhibited the IL-1beta-stimulated resorption. Alendronate alone did not affect IL-6 production by the bones. The IL-6 production from bones stimulated with 18 pM IL-1beta was not significantly affected by alendronate, but the IL-6 production from bones stimulated with 180 pM IL-1beta plus alendronate (21 and 70 microM) was higher than with IL-1beta alone. Indomethacin (1 mM) inhibited the IL-6 increase elicited by 180 pM IL-1beta and the enhanced IL-6 production elicited by cotreatment with IL-1beta and alendronate. Since bone cultures contain multiple cell types, further experiments were carried out to determine whether alendronate could increase IL-1beta-stimulated IL-6 production in an osteoblast cell line, UMR-106. Alendronate alone did not affect IL-6 in UMR-106 cells. Alendronate (70 microM) in combination with IL-1beta (180, 1.8, or 8 nM), or 7 microM alendronate, in combination with 8 nM IL-1beta, significantly increased IL-6 in 48 h cell cultures. The results from the bone organ cultures show that alendronate can enhance IL-6 production elicited by higher concentrations of the cytokine IL-1beta in bone, but that this effect on IL-6 does not prevent the inhibitory actions of alendronate on bone resorption. The results with the UMR106 cells indicate that one cellular site at which this enhancement of IL-6 production can occur is the osteoblast.

Alendronate↗

Serum interleukin-6 and bone metabolism in patients with thyroid function disorders.

To determine the possible involvement of interleukin-6 (IL-6) in the bone loss of hyperthyroidism, relationships between thyroid status, biochemical and densitometric parameters of bone metabolism, and IL-6 were studied in female subjects. Patients with hyperthyroidism caused by either toxic nodular goiter or Graves' disease had significantly higher serum IL-6 concentrations than normal controls. Within the control group, serum IL-6 was higher in postmenopausal than in premenopausal women, but this influence of menopausal status was not seen in the hyperthyroid patients. The production of IL-6 by blood mononuclear cells was higher in cells from the hyperthyroid women. Bone turnover was increased in the hyperthyroid patients based on serum osteocalcin and urinary deoxypyridinoline excretion, and the hyperthyroid group also had reduced radius bone mineral content (BMC). A subgroup of hyperthyroid patients who had the lowest BMC (values more than 1 SD below normal age-matched controls) also had serum IL-6 concentrations significantly greater than those of hyperthyroid patients showing less reduction of BMC. The correlations observed in this study support the possibility that IL-6 plays a role in mediating the bone loss that results from excess thyroid hormone.

Adult↗

Triiodothyronine potentiates the stimulatory effects of interleukin-1 beta on bone resorption and medium interleukin-6 content in fetal rat limb bone cultures.

It has been demonstrated that thyroid hormones stimulate osteoclasts indirectly and that this effect is mediated by products of other cell types present in bone. To determine if interleukin-6 (IL-6) could be a mediator of thyroid hormone action, we investigated the effect of 3,5,3'-triiodothyronine (T3) on bone resorption (45Ca release) and on the IL-6 concentration in medium from cultured 19-day-old fetal rat limb bones. T3 alone increased 45Ca release significantly only at a fairly high concentration (10(-6)M) under the conditions used. T3 alone, over a 10(-11)-10(-6) M concentration range, failed to elicit a detectable effect on the medium IL-6 content. However, T3 potentiated the stimulatory effect of interleukin-1 beta (IL-1 beta) on IL-6 production in a dose-dependent manner. T3, 10(-8) M, also significantly increased IL-1 beta-stimulated calcium release. Inhibition of IL-1 beta with 1 muM interleukin-1 receptor antagonist (IL-1ra) abrogated the potentiating effects of T3 on IL-1 beta-stimulated IL-6 production and blocked the combined effect of T3 and IL-1 beta on 45Ca release. One micromolar indomethacin significantly, but not completely, inhibited the effect of IL-1 beta, as well as the combined effect of IL-1 beta and T3 on resorption and IL-6 production, indicating the involvement of prostaglandins in these actions. Consistent with this, 1 microM prostaglandin E1 (PGE1) significantly increased both the IL-6 production and the calcium release. By potentiating the effect of IL-1 beta, T3 increased bone resorption at much lower concentrations.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Endothelin receptors, second messengers, and actions in bone.

Endothelins are a class of peptides that are produced by and elicit responses in many tissues. A growing literature documents the presence and effects of endothelins in bone. Both endothelinA and endothelinB receptors have been demonstrated in osteoblastic cells by ligand binding. Major signal transduction pathways for endothelin in bone cells appear to be stimulation of phospholipid turnover, by activation of A, C and D phospholipases, stimulation of calcium flux from intracellular and extracellular stores and activation of tyrosine kinases. Endothelins also modulate calcium signaling elicited by other agents in osteoblastic cells. The parathyroid hormone-stimulated calcium transient in UMR-106 cells is enhanced by endothelins, acting through an endothelinB receptor, whereas the parathyroid hormone-stimulated increase in cyclic AMP is inhibited by endothelins. Phenotypic responses to endothelin-1 include changes in alkaline phosphatase activity, stimulation of osteocalcin and osteopontin message, stimulation of collagen and noncollagenous protein synthesis, inhibition of osteoclast motility and stimulation of prostaglandin-dependent resorption. Endothelin-1 also enhances the interleukin-1-induced increase in interleukin-6. Endothelins can also potentially affect calcium metabolism through their actions to inhibit the secretion of parathyroid hormone.

Animals↗

Circadian rhythm of in vitro bone-resorbing activity in human serum.

Calciotropic hormones as well as biochemical parameters of bone formation and resorption show circadian rhythms. In a previous study in the rat, we observed a circadian rhythm in serum bone-resorbing activity (SBRA). In the present study, we investigated whether there was a circadian rhythm of SBRA in human serum. For this purpose, we studied 10 healthy premenopausal women and 5 healthy men. Blood was collected every 2 h, and urine samples were collected during 4-h periods for 24 h. For the determination of SBRA, media were prepared by reconstituting serum samples with Dulbecco's Modified Eagle's Medium at a ratio of 20% serum and 80% Dulbecco's Modified Eagle's Medium. Limb bones were dissected from 19-day old fetal rats prelabelled with 45Ca and were cultured for 72 h in the presence of the sera. Bone resorption was assessed from the 45Ca released into the culture medium and from that retained in the bone and was expressed as percentage 45Ca release. Serum calcium, phosphorus, PTH, cortisol, and urinary pyridinium cross-links were also determined. SBRA in human serum followed a circadian rhythm with a peak at about 0300 h and a nadir at 0700 h. There was no significant difference between the rhythm of SBRA of women and men. At concurrent time points, SBRA and serum PTH were positively correlated (r = 0.629; P < 0.01), and SBRA and serum cortisol were negatively correlated (r = 0.797; P < 0.01). To further investigate the possible contribution of these hormones to SBRA, either neutralizing anti-PTH antibody or RU-486 (mifepristone), a glucocorticoid receptor antagonist, was added to the serum samples of 6 subjects. Neutralizing the effect of PTH did not change the pattern of SBRA rhythm. The addition of RU-486 had a significant effect on the rhythm of SBRA, reducing the peak and nadir amplitudes. Thus we conclude that cortisol plays a major role in the rhythm of SBRA present in human serum; however, the influence of other factors cannot be excluded. Cortisol may be an important determinant of the circadian rhythm of bone resorption in vivo.

Adult↗

T-cell receptor V gene use in autoimmune thyroid disease: direct assessment by thyroid aspiration.

We have examined the hTcR V gene family use of T-cells present in the aspiration thyroid biopsy specimens of patients with hyperthyroid Graves' disease (n = 8) and Hashimoto's autoimmune thyroiditis (n = 5). Nine of the 13 specimens had cytologically identified thyroid follicular cells, and 12 of the 13 contained human thyroglobulin-specific mRNA, confirming successful sampling. Of 18 hTcR V alpha and 19 hTCR V beta gene families tested for in the individual aspirates, a mean +/- SEM of 6.8 +/- 0.9 V alpha and 9.6 +/- 1.4 V beta gene families were present in the Graves' aspirates, while 12.2 +/- 1.7 and 16.8 +/- 0.4 V alpha and V beta gene families were present in the aspirates of patients with Hashimoto's thyroiditis. These samples, which offer a window onto the natural history of autoimmune thyroid disease, demonstrate significant hTcR V alpha and beta gene restriction in hyperthyroid Graves' disease, but much less restriction of both V alpha and V beta gene families in Hashimoto's disease. Such data extend our earlier information based only on examination of highly selected surgical specimens of patients with autoimmune thyroid disease to the much more typical patient. We conclude that hTcR V gene restriction of varying degrees is present in the majority of patients with autoimmune thyroid disease, but appears to be more easily detected in Graves', rather that Hashimoto's, disease.

Adult↗

Radioimmunoassay of thyrotropin-releasing hormone in euthyroid subjects and in patients with thyroid diseases.

An episodic pattern of fluctuation in serum TRH level was demonstrated in euthyroid males. It is suggested that these rises in serum TRH-IR are due to its pulsatile hypothalamic release, however, it must be remembered that a high proportion of circulating TRH is derived from extrahypothalamic sources. The conception that the TSH surge during late evening is secondary to an increased TRH release could not be proved in the present study. In the euthyroid and primary hypothyroid groups the mean values of serum TRH-IR did not differ, while its level was slightly, but not significantly lower in hyperthyroid patients. The evaluation of a single TRH determination is impeded by the short half-life, low serum level and its production in extrahypothalamic sites, too.

Circadian Rhythm↗