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D Shoback

Publications and source records attributed to D Shoback.

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The effects of protein kinase-C agonists on parathyroid hormone release and intracellular free Ca2+ in bovine parathyroid cells.

High extracellular Ca2+ stimulates the accumulation of inositol trisphosphate and diacylglycerol in parathyroid cells and suppresses PTH release. Since diacylglycerol is an endogenous activator of protein kinase-C, these observations would suggest that activation of protein kinase-C is associated with inhibition of PTH release. However, phorbol esters, which stimulate protein kinase-C activity, have been reported to enhance PTH release. To clarify the role of protein kinase-C in the regulation of PTH secretion, we studied the responses of parathyroid cells to phorbol myristate acetate (PMA), bryostatin-1, and 1,2-dioctanoylglycerol (diC8). PMA and bryostatin-1 translocated protein kinase-C activity from the soluble to particulate fractions of cell homogenates. Phosphotransferase activity in the particulate fractions increased from 21 +/- 4% to 93 +/- 6% of the total activity after 10 min of exposure to PMA (10(-6) M) and from 21 +/- 2% to 69 +/- 2% after 5 min of exposure to bryostatin-1 (10(-7) M). These three structurally different agonists of protein kinase-C also altered the typical secretory response to Ca2+ in parathyroid cells. At 2.0 mM extracellular Ca2+, PMA (10(-6) M) bryostatin-1 (10(-7) M), and 1,2-dioctanoylglycerol (3 x 10(-4) M) blunted the suppressive effects of high Ca2+ on secretion, thus stimulating PTH release 252 +/- 45%, 122 +/- 20%, and 485 +/- 95% over control levels, respectively. However, at low extracellular Ca2+, these agents inhibited maximal PTH release. Since changes in the intracellular free Ca2+ concentration ([Ca2+]i) may be important in the control of PTH release, we investigated whether protein kinase-C agonists changed the relationship between extracellular Ca2+ and PTH release by affecting [Ca2+]i. In PMA-treated cells, the intracellular Ca2+ response to raising extracellular Ca2+ from 0.5 to 1.5 and 2.0 mM was reduced to 50 +/- 1% and 63 +/- 3% of that in control cells, respectively (P less than 0.005; n = 7-11). Specifically, PMA preincubation reduced the initial intracellular Ca2+ transient with raising extracellular Ca2+ from 0.5 to 2.0 mM and with adding 4.0 mM Sr2+. The sustained phase response to high Ca2+, but not to Sr2+, was also attenuated after incubation with PMA. We conclude that protein kinase-C agonists suppress PTH release at low extracellular Ca2+ and enhance PTH release at high extracellular Ca2+. The effects on secretion at high extracellular Ca2+ may be related to the ability of protein kinase-C agonists to change the sensitivity of [Ca2+]i to high extracellular Ca2+ in these cells.

Animals

Reverse T3 and modulators of the calcium messenger system rapidly decrease T4-5'-deiodinase II activity in cultured mouse neuroblastoma cells.

Neural T3 neogenesis is modulated by the enzyme T4-5'-deiodinase type II (T4-5'-DII). Hypothyroidism increases the activity of rat pituitary and cerebral cortex enzyme activity. Mouse neuroblastoma cells (NB41A3) incubated in thyroid hormone deficient medium also show a significant increase in T4-5'-DII activity. This response is rapidly (less than 30 minutes) reversed by reverse T3 (rT3) suggesting a mechanism independent of nuclear T3 receptor binding or new protein synthesis. This report details a series of studies performed to elucidate the nature of this rT3 effect. Confluent neuroblastoma cell culture preparations maintained in hypothyroid medium showed a 2-3 fold increase in T4-5'-DII activity compared to preparations in standard medium (p less than 0.001). RT3 (1-50 nM), the calcium ionophore A23187 (0.3-1.5 microM) and the phorbol ester TPA (0.1-1.0 microM) reversed the effect of thyroid hormone deficient medium on enzyme activity (p less than 0.001). Each agent showed a similar time course with maximal effect occurring between 15-30 minutes post medium supplementation. The suppressive effect of A23187 (1.5 microM) and TPA (0.5 microM) on enzyme activity was not additive. In addition, the combination o of rT3 (50 nM) and A23187 (1.5 nM) did not decrease enzyme activity compared to each agent alone. In contrast, the combined addition of rT3 (50 nM) and TPA (0.5 microM) did have an additive effect on neuroblastoma T4-5'-DII activity. A similar pattern of response was found, when the effects of these agents were analyzed on T4-5'-DII activity in neuroblastoma cells incubated in N-FSC.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals

Abnormal renal sodium handling in essential hypertension. Relation to failure of renal and adrenal modulation of responses to angiotensin II.

This study assessed renal sodium handling in a group of patients with essential hypertension in whom control of the renal blood supply and aldosterone release by angiotensin II is abnormal ("non-modulating") because of recent evidence that these patients have sodium-sensitive hypertension. Sixty-one patients were studied, 25 as balance was achieved with a daily sodium intake of 10 meq and 36 after a shift from a 10 meq to 200 meq sodium intake for five days. Renal and adrenal responsiveness to angiotensin II was assessed by measurement of para-aminohippurate clearance and plasma aldosterone prior to and during the infusion of 3 ng/kg per minute of angiotensin II, to identify the non-modulator group (n = 32). The half-time of the exponential function relating sodium excretion to time during the three to five days when external balance was being achieved with a 10 meq sodium intake was 23.9 +/- 0.3 hours in 60 normal subjects, 24.5 +/- 1.8 hours in the patients with essential hypertension in whom renal responsiveness to angiotensin II was normal, and prolonged (p less than 0.001) to 36.6 +/- 2.1 hours in the non-modulating patients. A prolonged half-time suggests that, with a shift to a high sodium intake, more time will be required to achieve external sodium balance and at the expense of more retained sodium. During the shift from a 10 to 200 meq sodium intake, the non-modulator group showed a delayed rate at which external sodium balance was achieved, greater cumulative positive sodium balance, more weight gain, and a greater frequency of blood pressure rise. The abnormality in the rate at which external sodium balance is achieved in non-modulation results in a difference in total body sodium that varies with sodium intake and that may well contribute to, or cause, sodium-sensitive hypertension.

Adrenal Glands

Regulation of parathyroid hormone release and cytosolic calcium by extracellular calcium in dispersed and cultured bovine and pathological human parathyroid cells.

Alterations in parathyroid glandular sensitivity to calcium may contribute to the hypersecretion of PTH in hyperparathyroidism. Since the cytosolic calcium concentration may mediate the effects of extracellular calcium on PTH release, we have employed the calcium-sensitive intracellular dye QUIN-2 to examine the relationship between extracellular calcium, cytosolic calcium, and PTH secretion in adult, neonatal, and cultured bovine as well as pathological human parathyroid cells. PTH release was measured using C- and N-terminal radioimmunoassays. Neonatal bovine parathyroid cells showed a greater set-point for secretion (the Ca++ concentration causing half of the maximal inhibition of PTH release) than adult cells (1.27 +/- 0.11 vs. 1.06 +/- 0.11 mM extracellular calcium, P less than 0.01), and a slightly higher extracellular calcium was necessary to raise the cytosolic calcium concentration to a given level in neonatal than in adult bovine parathyroid cells. In individual neonatal and adult cell preparations, there was a close correlation between the set-point for secretion and the "set-point" for cytosolic calcium (r = 0.832, P less than 0.001). In cells from five human parathyroid adenomas, which had an increase in set-point for secretion, the extracellular calcium concentration necessary to raise the cytosolic calcium concentration to a given level was slightly greater than in the neonatal cells. In four preparations of human parathyroid cells there was a significant correlation between the set-points for secretion and cytosolic calcium (r = 0.856, P less than 0.01). Because neonatal bovine and pathological human parathyroid glands show cellular hyperplasia, we studied the temporal relationship between cellular proliferation and the regulation of PTH release and cytosolic calcium concentration in cultured bovine parathyroid cells. Cellular proliferation, estimated by 3H-thymidine incorporation, increased significantly in culture from 104 +/- 10.1 counts/well on day 1 (first 24 h in culture) to 588 +/- 188 and 6,156 +/- 649 counts/well on days 2 and 4, respectively. In cultured cells on day 1, highly Ca++ (2-3 mM) inhibited maximal PTH release by 58.8 +/- 3.2%, which decreased significantly (P less than 0.001) to 38.2 +/- 1.9 and 17.1 +/- 3.7% on days 2 and 4, respectively. The cytosolic calcium observed at 3 mM calcium on day 1 was 701 +/- 43 nM, which declined to 466 +/- 60 and 314 +/- 14 nM on days 2 and 4 (P less than 0.05). There was a close correlation between this progressive decrease in maximal inhibition of PTH release and the cytosolic calcium at high extracellular calcium in cultured cells (r = 0.99, P < 0.001). Thus, during active proliferation of cultured cells, there is an alteration in the regulation of cytosolic calcium at a given extracellular calcium concentration, and changes in the regulation of PTH release and cytosolic calcium by extracellular calcium may be related to enhanced cellular proliferation.

Animals

Role of T3 surface molecules in human T-cell activation: T3-dependent activation results in an increase in cytoplasmic free calcium.

The human T-cell leukemia, Jurkat, and a T3-negative mutant of Jurkat (S.5) were used to study the role of T3 in human T-cell activation. Incubation of Jurkat with phytohemagglutinin (PHA) resulted in the production of interleukin 2, which was markedly increased by the addition of phorbol 12-myristate 13-acetate (PMA). Antibodies reactive with T3 could activate Jurkat only if added together with PMA. However, S.5 cells failed to produce interleukin 2 in response to PHA and produced 1/16th the interleukin 2 activity that Jurkat produced in response to PHA and PMA. Incubation of S.5 cells with the calcium ionophore A23187 and PMA resulted in the production of interleukin 2 activity comparable to that produced by Jurkat. Like antibodies reactive with T3, A23187 demonstrated an obligate requirement for PMA in order to activate Jurkat or S.5. These observations suggested that T3 might participate in T-cell activation through mechanisms that increase intracellular Ca2+. This was examined by using the Ca2+ sensitive fluor, quin-2, to measure levels of cytoplasmic free Ca2+ [( Ca2+]i). Addition of PHA, A23187, or monoclonal antibodies reactive with T3 to Jurkat cells resulted in substantial increases of [Ca2+]i. In contrast, only A23187 could induce an increase in [Ca2+]i in S.5 cells. Three other monoclonal antibodies reactive with other membrane antigens expressed on Jurkat or S.5 did not increase [Ca2+]i. These results suggest that T3 and/or associated molecules participate in T-cell activation through mechanisms that lead to increases in [Ca2+]i and that their expression is a relative requirement for T-cell activation by PHA.

Animals

Effects of extracellular Ca++ and Mg++ on cytosolic Ca++ and PTH release in dispersed bovine parathyroid cells.

We studied the effects of varying extracellular concentrations of Ca++ and Mg++ on cytosolic Ca++ concentration and PTH release by incorporating the Ca++-sensitive, fluorescent dye "QUIN 2" into dispersed bovine parathyroid cells. Increasing extracellular Ca++ from 0.5 to 2.0 mM led to a dose-dependent increase in cytosolic Ca++ from 179 +/- 8 to 646 +/- 68 nM (mean +/- SE, N = 13; P less than 0.01), which correlated closely (r = -.987, P less than .001) with the suppression of PTH secretion by the same Ca++ concentrations. Raising extracellular Mg++ from 0.5 to 3 mM also caused a dose-related increase in cytosolic Ca++ from 176 +/- 10 to 277 +/- 15 nM (N = 12, P less than 0.01) which correlated (r = -.959, P less than .01) with inhibition of PTH release. These results show a close inverse relationship between cytosolic Ca++ and PTH release with alterations in extracellular Ca++ or Mg++. Cytosolic Ca++ may, therefore, act as a second messenger mediating the effects of these divalent cations on PTH release.

Aminoquinolines

Pheochromocytoma.

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Adrenal Gland Neoplasms