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Biomedical subjects

R M MacLeod

Publications and source records attributed to R M MacLeod.

At least 91 records · Page 5Linked to original sources

Human pancreatic tumor growth hormone-releasing factor stimulates anterior pituitary adenylate cyclase activity, adenosine 3',5'-monophosphate accumulation, and growth hormone release in a calmodulin-dependent manner.

Pituitary GH secretion is regulated by Ca+2 and cAMP. We show that human pancreatic tumor GRF (hpGRF) stimulates anterior pituitary adenylate cyclase activity, cAMP accumulation, and GH release. The relationship between Ca+2 and the stimulating effects of the Ca+2 ionophore A23187 on cAMP accumulation and GH release in vitro was studied. To evaluate the role of the Ca+2-binding protein calmodulin in this system, we used the calmodulin antagonist W7, a naphthalene-sulfonamide derivative, and its less active analog W5. W7 inhibited hpGRF-stimulated adenylate cyclase activity, cAMP accumulation, and GH release, whereas W5 was either poorly effective or ineffective. Somatostatin (SRIF) also attenuated hpGRF stimulation of adenylate cyclase. These results suggest that the actions of Ca+2-calmodulin and cAMP are interrelated in modulating GH release. Calmodulin participates in hpGRF stimulation of adenylate cyclase, cAMP formation, and GH release. The attenuation of hpGRF-stimulated adenylate cyclase activity by SRIF may be one of the mechanisms for its GH inhibitory action.

Adenylyl Cyclases↗

Human pancreatic tumor growth hormone-releasing factor: dose-response relationships in normal man.

Human pancreatic GRF (hpGRF-40; 1 microgram/kg, iv) selectively stimulates GH release in normal men (9). We now report the effects of graded doses of hpGRF-40 on GH release in 12 normal men. Mean peak increments in serum GH after vehicle and the various doses of hpGRF-40 were 1.13, 11.40, 14.60, 17.01, 14.45, and 15.60 ng/ml after vehicle and 0.1, 0.33, 1.0, 3.3, and 10 micrograms/kg hpGRF-40 (iv bolus), respectively. Peak values were observed 30-60 min after hpGRF-40 treatment. There was considerable variability of responsiveness among individual subjects, and no dose-response relationship between the doses and maximal GH values was found. However, the higher doses of 3.3 and 10.0 micrograms/kg resulted in a more prolonged and biphasic pattern of GH release. A side effect of facial flushing of less than 5-min duration occurred in 4 or 6 subjects who received 3.3 micrograms/kg and in all 5 who received 10 micrograms/kg of hpGRF-40. No changes in serum glucose, LH, TSH, PRL, plasma cortisol, or 8 enteropancreatic hormones occurred after hpGRF-40 treatment. There were small increases in serum somatomedin C levels 24 h after the administration of various doses of hpGRF-40 in 11 of 13 studies. Plasma immunoreactive GRF levels measured 5 min after injection were 0.09, 2.0, 4.9, 23.9, and 66.6 ng/ml after 0.1, 0.33, 1.0, 3.3, and 10 micrograms/kg hpGRF-40, respectively. Serum GH responses after insulin-induced hypoglycemia were compared to GH responses after hpGRF-40. Comparable peak GH stimulation occurred with both provocative tests. Mean +/- SEM peak GH was 20.2 +/- 1.0 ng/ml after insulin and 20.9 +/- 3.2 after hpGRF-40 treatment. hpGRF-40 selectively stimulates GH release in normal men over a dose range of 0.1-10 micrograms/kg and is an effective probe to investigate the dynamics of GH release.

Adult↗

Paradoxical suppression of prolactin secretion: involvement of catecholaminergic mechanisms and the adrenal gland.

Prolactin (Prl) secretion is normally elevated on the afternoon of pro-oestrus in the rat. Studies have shown that ether stress caused a 'paradoxical inhibiting effect' on these high Prl levels. The present study was designed to investigate whether the paradoxical suppression of Prl was mediated by the central nervous system or the adrenal glands. Plasma was obtained from adult female rats after sampling via intra-atrial catheters from 16.25-18.45 h on the afternoon of pro-oestrus. Restraint stress administered between 16.45-17.00 h induced the expected precipitous decrease in plasma Prl in intact animals. Pre-treatment of intact animals with the catecholamine receptor blocking agent haloperidol (1.0 mg/kg at 13.00 h) resulted in a further elevation of plasma Prl levels as compared with untreated controls, but eliminated the decrease of Prl in response to restraint stress. Although acutely adrenalectomized (ADX) animals proved to be highly sensitive to the bleeding procedures, initial Prl levels on the afternoon of pro-oestrus were not different from those of intact animals. Restraint stress under conditions of acute ADX was not found to induce the expected suppression of high Prl levels. Rather, the response was opposite to that which occurred in intact animals. These results indicate that the paradoxical suppression of Prl by restraint stress was mediated by catecholaminergic mechanisms, and that the adrenal gland was essential for the effect.

Adrenal Glands↗

Effect of ovariectomy and clomiphene on the in-vitro incorporation of [3H]thymidine into pituitary DNA and on prolactin synthesis and release in rats.

In the anterior pituitary gland changes in prolactin synthesis and in the incorporation of [3H]thymidine into DNA are coincident under several experimental conditions. We investigated whether these changes are obligatory, thus indicating a regulatory mechanism common to the synthesis of both macromolecules. Alternatively, the parallel changes may represent similar responses to various stimuli operating through different pathways. The administration of alpha-methyl-p-tyrosine (alpha MpT) to rats stimulated the incorporation of [3H]leucine into prolactin and [3H]thymidine into DNA. When the effectiveness of oestrogen was suppressed by ovariectomy or by blockage of oestrogen receptors by the antioestrogen clomiphene, alpha MpT stimulated the synthesis of prolactin but not the incorporation of [3H]thymidine into pituitary DNA. The results clearly indicate two independent mechanisms regulating the synthesis of prolactin and DNA in the anterior pituitary gland.

Animals↗

Tumors producing chronic hyperprolactinemia do not alter [3H]spiperone binding and dopamine turnover in the corpus striatum of the female rat.

We studied the effect of prolactin on the dopamine (DA) receptor density and DA turnover of the rat corpus striatum. Chronic hyperprolactinemia was produced in female rats by implanting prolactin-secreting pituitary tumors. Even in the presence of circulating prolactin concentrations that were two to three orders of magnitude greater than normal, there was no apparent change in the affinity or maximal site numbers of DA receptors in the corpus striatum. In concert with this observation, prolactin also failed to alter DA turnover in the corpus striatum as reflected in the DA/DOPAC ratio. Under the conditions of our experiments, there was no evidence to confirm previous observations of increased density of DA receptors of the corpus striatum in the hyperprolactinemic state.

Animals↗

Effects of human pancreatic tumour growth hormone releasing factor on growth hormone and somatomedin C levels in patients with idiopathic growth hormone deficiency.

Human pancreatic tumour growth hormone releasing factor (hpGRF-40) 10 micrograms/kg was administered intravenously to 6 normal young men and 12 adult patients who had presented in childhood with growth hormone (GH) deficiency (7 patients had isolated GH deficiency, 4 had multiple anterior pituitary hormone deficiencies, and 1 had Hand-Schüller-Christian [HSC] disease). hpGRF-40 administration increased serum GH concentrations in all normal subjects and in 3 of 7 patients with isolated GH deficiency and in the 1 with HSC disease; however, the mean serum GH concentration in the patients who responded was less than that of the normal subjects. Somatomedin C concentrations were increased 24 h after a single dose of hpGRF-40 in 8 of 10 patients with GH deficiency. All subjects experienced flushing in response to hpGRF-40. A patient with isolated GH deficiency received 0.33 micrograms/kg hpGRF-40 every 3 h for 5 days. Despite the modest increase in GH in response to a subsequent dose of 10 micrograms/kg hpGRF-40, serum somatomedin C levels increased within 12 h from 0.06 to 0.1 U/ml and peaked at 0.36 U/ml at 72 h; in addition the patient with HSC disease, treated with hpGRF-40 daily for 5 days, demonstrated an increase in somatomedin C from 0.4 to 0.58 U/ml. The increase after hpGRF-40 in serum GH levels in this patient and the similar or greater responses in 3 of 7 patients suggest that at least some of these patients may have hypothalamic GH-releasing-hormone deficiency. hpGRF-40 may be useful in distinguishing pituitary disease from hypothalamic disease. After hpGRF-40 administration serum somatomedin C levels may increase without a change in serum immunoreactive GH concentrations. Further studies are needed to determine whether hpGRF-40 is useful in promoting linear growth in children with GH deficiency.

Adult↗

Reserpine inhibits rat anterior pituitary hormone secretion in vitro: effects on prolactin and ACTH and ultrastructural observations.

We measured [3H]prolactin ([3H]Prl) synthesis and secretion in female rat anterior hemipituitary glands incubated in vitro, and immunoassayable Prl secretion from dispersed anterior pituitary cells in a perfused column. Anterior pituitary glands which were incubated in 9 microM reserpine showed a marked inhibition of [3H]Prl secretion but no change in hormone synthesis, thus causing [3H]Prl accumulation within the gland. The same concentration of reserpine produced a similar effect in pituitary glands taken from rats depleted of dopamine with alpha-methyl-p-tyrosine. Reserpine inhibited Prl secretion from dispersed anterior pituitary cells with a gradual onset and prolonged duration. Thyrotropin-releasing hormone (TRH), but not dibutyryl cyclic AMP (dbcAMP), the calcium ionophore A23187 or excess Ca2+, stimulated both [3H]Prl and Prl secretion in the presence of reserpine. In contrast, neither basal nor vasopressin-stimulated ACTH (bio- and immunoassayable) secretion was inhibited by 9 microM reserpine. Ultrastructurally, pituitary glands incubated in reserpine had an increased content of Prl secretory granules. Reserpine thus selectively inhibited Prl secretion, secondarily causing accumulation of both measurable hormone and Prl secretory granules within the pituitary gland. We hypothesize that reserpine interrupted calcium-dependent mechanisms in the stimulus-secretion coupling process to inhibit Prl release.

Adrenocorticotropic Hormone↗

Human pancreatic growth-hormone-releasing factor selectively stimulates growth-hormone secretion in man.

A growth-hormone-releasing factor has been characterised and sequenced from a pancreatic tumour removed from a patient with acromegaly. It is a 40-residue linear peptide. Synthetic human pancreatic growth-hormone-releasing factor (hpGRF-40), 1 microgram/kg bodyweight, was administered as an intravenous bolus to six healthy men. hpGRF-40 selectively stimulated growth-hormone secretion. Serum growth-hormone concentrations were increased within 5 min, reaching a peak between 30 and 60 min (20 . 4 +/- 6 . 5 ng/ml compared with 2 . 1 +/- 0 . 1 ng/ml after placebo). Serum levels of prolactin, thyrotropin, luteinising hormone, and corticotropin (measured indirectly through plasma cortisol) were not increased after administration of hpGRF-40. Similarly, the concentrations of blood glucose, plasma insulin, glucagon, pancreatic polypeptide, cholecystokinin, gastrin, gastric inhibitory peptide, motilin, and somatostatin were unaffected by hpGRF-40. There were no changes in blood pressure, pulse rate, or body temperature, and no side-effects were noted. The characteristics of this peptide fulfil many of the criteria required of the hypophysiotropic growth-hormone-releasing hormone. hpGRF holds promise for a new approach to the diagnosis and treatment of various disorders of growth-hormone secretion.

Acromegaly↗

Biological activity of a growth hormone-releasing factor secreted by a human tumor.

A substance released by a pancreatic islet cell tumor induced signs and symptoms of acromegaly in a young woman. The culture medium in which the tumor was placed after resection was added to rat anterior pituitary cells and incubated in vitro. Both newly synthesized and total rat growth hormone (GH) release as well as cellular cyclic AMP accumulation were stimulated in a dose-dependent manner by the tumor medium. Coincubation with somatostatin blocked these effects. The increase of cyclic AMP preceded the enhanced GH release, indicating that cyclic AMP may be a second messenger for the tumor factor(s). Neither prolactin nor luteinizing hormone secretion was affected by the tumor medium. When measured by a perfused cell column apparatus, there was a rapid and dramatic release of GH by the dispersed rat pituitary cells during a 2.5-, 10-, and 40-min pulse of tumor medium; both the onset and termination of the GH response reached maximal or control values, respectively, within 5 min. Pretreatment of the tumor medium with pepsin markedly attenuated the tumor medium activity, indicating the peptide nature of the factor(s). Finally, ultrastructural analysis indicated that the somatotrophs were degranulated by the tumor medium, whereas there was no similar effect apparent on the mammotrophs. Whether this tumor polypeptide is identical to native hypothalamic GH-releasing hormone remains to be proved.

Adult↗

Pertussis toxin uncouples dopamine agonist inhibition of prolactin release.

Pertussis toxin, a protein exotoxin produced by Bordetella pertussis, markedly reduced or eliminated the ability of dopamine or the dopamine agonist bromocriptine to inhibit prolactin release from anterior pituitary cells in vitro. Toxin-mediated reversal of the effect on dopamine agonist inhibition of prolactin release occurred with a lag of greater than 6 h, was maximal by 24 h, and persisted for at least 6 days after removal of the toxin from the medium. The toxin reduced dopamine agonist efficacy without altering potency or directly modifying the dopamine receptor (as measured by [3H]spiperone binding). The ability of dopamine to reduce cellular cyclic AMP content was also antagonized by pertussis toxin, supporting the hypothesis that reduction of cellular cyclic AMP content and inhibition of prolactin secretion may be causally related. These data demonstrated that pertussis toxin can prevent the typical inhibitory action of dopamine agonists on anterior pituitary prolactin release and suggest that this receptor-mediated inhibitory hormone system is analogous to other inhibitory receptors coupled to adenylate cyclase.

Adenylate Cyclase Toxin↗

Human pancreatic GRF stimulates phosphatidylinositol labeling in cultured anterior pituitary cells.

The effects of natural and synthetic human pancreatic growth hormone-releasing factor (hpGRF) on 32P incorporation into phospholipids were studied in cultured rat anterior pituitary cells. Natural hpGRF (1:30 dilution) significantly (P less than 0.01) stimulated phosphatidylinositol labeling at all times studied (15, 30, and 60 min). Synthetic hpGRF-(1-40)OH also significantly (P less than 0.05; P less than 0.01) increased 32P incorporation into phosphatidylinositol in a dose-related (1-30 nM) and time-dependent (5, 10, and 30 min) manner. In contrast, phosphatidylcholine and phosphatidylethanolamine labeling was not affected at any time studied. Somatostatin (30 nM) did not affect basal or hpGRF-stimulated phosphatidylinositol labeling but inhibited the hpGRF stimulation of cyclic AMP accumulation and growth hormone release. These results suggest that the phosphatidylinositol cycle may be involved in the mechanism of action of hpGRF in the anterior pituitary gland.

Animals↗

Arachidonic acid metabolism and prolactin secretion in vitro: a possible role for the lipoxygenase products.

This study was designed to investigate basal and thyrotropin-releasing hormone (TRH)-stimulated prolactin release in the presence of agents that influence arachidonic acid metabolism. Agents that decrease its production by blocking phospholipase A2 activity, i.e., quinacrine and 4-bromophenacylbromide, significantly decreased prolactin secretion from anterior pituitary glands in vitro and from dispersed pituitary cells in a perifusion column. Phospholipase A2 and phorbol myristate acetate, substances that increase intracellular concentrations of arachidonic acid, markedly stimulated prolactin release by dispersed pituitary cells and by anterior pituitary glands incubated in vitro. The involvement in prolactin secretion of arachidonic acid metabolic products produced via the lipoxygenase pathway was investigated indirectly using nordihydroguaiaretic acid (NDGA), a specific inhibitor of this enzyme. NDGA progressively (dose-related) inhibited the release of prolactin in vitro and blocked the stimulating effect of 50 nM TRH on prolactin release from hemipituitary glands. Indomethacin, a specific inhibitor of the cycloxygenase pathway, had no significant effect on basal and TRH-stimulated prolactin release. The results suggest that arachidonic acid metabolism is involved in basal and TRH-stimulated prolactin secretion and that lipoxygenase pathway products are at least partially responsible for these effects.

Animals↗

Penfluridol decreases secretagogue-induced TSH, GH, and LH secretion in vitro: a possible role for calcium-calmodulin.

This study was designed to investigate the effects of penfluridol, a potent neuroleptic calmodulin inhibitor, on basal and secretagogue-stimulated secretion of thyroid-stimulating hormone (TSH), growth hormone (GH), and luteinizing hormone (LH). The drug had no effect on basal TSH or LH release, but decreased GH release in a dose-related manner. TSH, LH, and GH secretion stimulated by calcium ionophore A23187 or 50 mM K+ was decreased by penfluridol as was TSH and GH release stimulated by dibutyryl-cAMP (dbcAMP). Penfluridol reversibly abolished the stimulatory effect of thyrotropin-releasing hormone (TRH) on TSH release in perifused dispersed pituitary cells. The compound inhibited hormonal release without affecting hormonal synthesis and cellular morphology (trypan blue exclusion test). Penfluridol appears to inhibit hormonal secretion by interfering with the calcium-calmodulin system in the anterior pituitary; therefore calmodulin may be an important link in the stimulus-secretion coupling of adenohypophyseal hormones.

Animals↗

Zinc may have a physiological role in regulating pituitary prolactin secretion.

We studied the in vitro influence of physiologically relevant zinc concentrations on the pituitary synthesis and secretion of prolactin (Prl). Zinc in concentrations between 1 and 10 microM reduced Prl secretion and, to a milder extent, synthesis, but not basal or stimulated growth hormone (GH) or LH release. At a supraphysiological concentration of 100 microM, zinc markedly decreased Prl synthesis and secretion, but increased LH secretion. The ability of a physiological zinc concentration to influence Prl secretion suggests that this trace element may have a role in the in vivo regulation of Prl release.

Animals↗

In vitro studies on basal and stimulated prolactin release by rat anterior pituitary: a possible role for calmodulin.

The mechanism by which PRL is released from mammotrophs is a calcium-dependent process. Although calcium seems to function as a second messenger, its regulatory mechanism in PRL release has not been clarified. The binding of calcium to calmodulin and the activation of calmodulin-dependent enzymes have been suggested to be important steps during stimulus-secretion coupling in various cells. In the present work we investigated the in vitro effect of penfluridol, a potent neuroleptic that also possesses the ability to inhibit calmodulin's biological activity, on basal and stimulated PRL release. The effect of pimozide and haloperidol on basal PRL release was also investigated. Penfluridol, pimozide, and haloperidol inhibited basal PRL secretion in a dose-related manner, with the EC50 ranging from 0.5-1 microM for penfluridol to 1-2 microM for pimozide and more than 3 microM for haloperidol. These concentrations are similar to those necessary for the inactivation of calmodulin-dependent enzymes in vitro. Ionophore A-23187, a compound whose ability to mobilize extracellular calcium is not affected by neuroleptics, stimulated PRL secretion in vitro. This effect, however, was blocked by penfluridol pretreatment. The site of action of penfluridol may occur after calcium mobilization, with calmodulin a possible target for penfluridol's inhibitory action on PRL secretion. TRH, K+, (Bu)2cAMP, and theophylline, compounds that affect calcium mobilization, also significantly stimulated PRL release. The coincubation of varying concentrations of penfluridol with 70 nM TRH, 50 mM K+, 3 mM (Bu)2cAMP, or 5 mM theophylline resulted in a dose-related inhibition of secretagogue-stimulated PRL secretion. Perifusion of dispersed anterior pituitary cells with 1 microM penfluridol reduced the ability of 70 nM TRH to stimulate PRL release by approximately 50%, whereas removal of the penfluridol perifusion allowed the cells to again be fully responsive to TRH. These results are consistent with the hypothesis that calmodulin is involved in the stimulus-secretion coupling of PRL.

Animals↗

Is there a direct correlation between the activities of various lysosomal enzymes and prolactin secretion in the rat anterior pituitary?

The degree of endocrine activity by rat pituitary lactotrophs was manipulated and the lysosomal involvement in the release and intracellular degradation of PRL was monitored by concomitant assays of acid phosphatase, beta-glucuronidase, dipeptidyl peptidases I and II, and nonspecific esterases in the anterior lobe. The in vitro release of PRL by cell cultures was inhibited by 0.5 or 1.5 microM bromocriptine during 24 or 72 h of incubation and by 0.75 microM for 4 h. Long term treatment caused a 40% reduction in the total PRL content of cells and media; however, after 4 h of bromocriptine treatment, no reduction in PRL content was found. TRH (10 ng/ml) in medium for 4 h increased PRL release, whereas it produced intracellular hormone depletion. In vitro treatment of anterior lobes of diestrous rats with 1 microM dopamine decreased PRL release by 50%. No changes in lysosomal enzyme activities were observed after the inhibition of release or stimulation of the in vitro secretion of PRL. Haloperidol (2.5 mg/kg BW) caused a 90% increase in serum PRL concentrations in diestrous rats 1 h after sc injection. alpha-Methyl-p-tyrosine (200 mg/kg BW, ip) stimulated in vivo PRL secretion, monitored 1, 4, and 24 h after drug administration. The administration of 100 micrograms/rat bromocriptine for 3 consecutive days, a single dose of 100 micrograms/rat polyestradiol phosphate, and their combination resulted in the expected changes in PRL production in female rats. These in vivo treatments failed to alter lysosomal enzyme activities in the anterior pituitary. These findings suggest that the release, intracellular accumulation, or depletion of PRL occurred without concomitant changes in lysosomal enzyme activity in the anterior pituitary. We suggest that the system of lysosome-dependent hormone degradation may involve more specific enzymes than those monitored to date.

Acid Phosphatase↗

Adenosine 3',5'-monophosphate (cAMP) and calcium-calmodulin interrelation in the control of prolactin secretion: evidence for dopamine inhibition of cAMP accumulation and prolactin release after calcium mobilization.

Calcium (Ca2+) ionophore A23187 increased the intracellular cAMP content and PRL release in normal rat anterior pituitary cells. Cotreatment with dopamine reduced both control and A23187-stimulated cAMP accumulation and PRL release. The dopamine antagonist spiperone restored the response of cAMP to ionophoric stimulation after pretreatment with dopamine in the greatest concentration used. Penfluridol, a compound with Ca2+-calmodulin-blocking properties, decreased control and A23187-stimulated cAMP content and PRL release. W7, a selective calmodulin-blocking agent, reduced basal cAMP and PRL release, whereas W5, a W7 analog with only 20% of its calmodulin-blocking ability, did not affect cAMP or PRL secretion. These data indicate that the Ca2+-calmodulin and cAMP systems are interrelated in the regulation of PRL secretion. They are also consistent with the hypothesis that the inhibition of PRL release by dopamine occurs after Ca2+ is mobilized and when or before it stimulates adenylate cyclase activity.

Animals↗