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Biomedical subjects

M O Thorner

Publications and source records attributed to M O Thorner.

At least 19 recordsLinked to original sources

Pregnancy in patients presenting with hyperprolactinaemia.

Ninety-two pregnancies occurred in 76 hyperprolactinaemic patients treated with bromocriptine. Half conceived within three months of attempted conception. There was no evidence of an increased rate of spontaneous abortion, fetal abnormality, or multiple pregnancy; the three twin pregnancies occurred in women who were additionally treated with clomiphene and human chorionic gonadotrophin. Thirty-one patients had radiological evidence of a pituitary tumour; 14 with major radiograph changes in the pituitary fossa or serum prolactin concentrations greater than 100 ng/ml received pituitary irradiation before conception. None of the latter showed evidence of enlargement of the tumour during pregnancy. In contrast two of the four patients with similar tumours but who were not irradiated developed visual field defects, one with gross destruction of the pituitary fossa. Prophylactic treatment to limit subsequent tumour expansion during pregnancy in patients with prolactinomas is indicated, and pituitary irradiation before conception appears to be a safe and effective method to achieve this goal.

Bromocriptine

Reduction of pituitary-tumour size in patients with prolactinomas and acromegaly treated with bromocriptine with or without radiotherapy.

69 patients with prolactin-secreting or growth-hormone-secreting pituitary tumours were treated with bromocriptine with or without pituitary irradiation and followed up for 6 months to 6 1/2 years. Of 26 patients with prolactinomas, 11 had external pituitary irradiation in addition to bromocriptine. There was evidence of shrinkage of the pituitary tumour (either a reduction in fossa size or loss of visual-field defects) in 6 of these patients (23%), 3 of whom had been treated with bromocriptine alone. Of 43 acromegalic patients, 30 received external pituitary irradiation. 8 (19%) showed evidence of shrinkage of the pituitary tumour, including 2 who had received no radiotherapy. 1 patient treated with bromocriptine alone showed striking reduction in the size of his suprasellar extension, as assessed by serial computed-tomography scans over 11 months. At the same time his visual-field defects resolved and his deficient corticotrophin and thyrotrophin reserves returned to normal. Bromocriptine can reduce the size of both prolactin-secreting and growth-hormone-secreting pituitary tumours, and this is of potential importance in their management.

Acromegaly

The effects of dopamine, bromocriptine, lergotrile and metoclopramide on prolactin release from continuously perfused columns of isolated rat pituitary cells.

The control of secretion of prolactin was studied using continuous perfusion of a column of isolated rat pituitary cells supported by Bio-Gel polyacrylamide beads. Prolactin secretion was inhibited repeatedly by dopamine and rapidly recovered in its absence. Maximum inhibition was achieved at 5 x 10(-7) M dopamine. Bromocriptine and lergotrile directly inhibited prolactin release from the pituitary cells. Bromocriptine had a longterm action in inhibiting secretion. The dopamine receptor blocking agent, metoclopramide, overcame the inhibitory effect of dopamine but had no effect on prolactin secretion in its absence.

Animals

Effect of somatostatin on abnormal growth hormone and prolactin secretion in patients with the carcinoid syndrome.

Growth hormone (GH) secretion has been studied in two patients with the carcinoid syndrome during glucose loading and growth hormone-release inhibiting hormone (GHRIH, somatostatin) infusion. Both patients had elevated fasting GH levels which were not suppressed by glucose; GH levels fell rapidly during GHRIH infusion. One patient also had hyperprolactinaemia with galactorrhoea and the prolactin (PRL) levels were unaltered by GHRIH. The association between carcinoid tumours and abnormalities of GH and PRL secretion is discussed.

Adult

Effects of metoclopramide and bromocriptine on the renin-angiotensin-aldosterone system in man. Dopaminergic control of aldosterone.

This study was designed to investigate the possible role of dopaminergic mechanisms in the control of the renin-angiotensin-aldosterone system in normal man. Six normal male subjects in metabolic balance at 150 meq sodium, 60 meq potassium constant intake received the specific dopamine antagonist, metoclopramide, 10 mg i.v. or placebo followed by angiotensin II infusion 1 h later on 2 consecutive days. Metoclopramide increased plasma aldosterone concentration from 8.2+/-2.2 to 21.0+/-3.3 ng/100 ml (P < 0.005) and plasma prolactin concentration from 18.0+/-4.0 to 91.7+/-4.0 ng/ml (P < 0.001) within 15 min of its administration. At 1 h, plasma aldosterone and prolactin concentrations remained elevated at 16.8+/-2.1 ng/100 ml (P < 0.01) and 86.8+/-15.9 ng/ml (P < 0.005), respectively. Angiotensin II at 2, 4, and 6 pmol/kg per min further increased plasma aldosterone concentration to 27.2+/-3.4, 31.9+/-5.7, and 36.0+/-6.7 ng/100 ml (P < 0.02), respectively. Placebo did not alter plasma aldosterone or prolactin concentrations, but angiotensin II increased plasma aldosterone concentration to 13.7+/-2.4, 19.0+/-1.9, and 23.3+/-3.2 ng/100 ml (P < 0.005). The increment of plasma aldosterone concentration in response to angiotensin II was similar after metoclopramide or placebo. The six subjects also received the dopamine agonist, bromocriptine, 2.5 mg or placebo at 6 p.m., midnight, and 6 a.m. followed by angiotensin II infusion on 2 consecutive d. Bromocriptine suppressed prolactin to <3 ng/ml. After placebo, plasma aldosterone concentration increased from 5.2+/-1.4 to 12.3+/-1.7, 17.2+/-2.2, and 21.8+/-3.5 ng/100 ml (P < 0.01) and after bromocriptine from 7.2+/-1.0 to 14.7+/-3.0, 19.8+/-3.2, and 23.4+/-1.6 ng/100 ml (P < 0.001) with each respective angiotensin II dose. No difference in the response to angiotensin II after bromocriptine or placebo was observed. Plasma renin activity, free 11-hydroxycorticoid concentration, and serum potassium concentration were unchanged by metoclopramide or bromocriptine. The results suggest that aldosterone production is under maximum tonic dopaminergic inhibition which can be overridden with stimulation by angiotensin II in normal man.

11-Hydroxycorticosteroids

Effect of the dopamine agonist, lergotrile mesylate, on circulating anterior pituitary hormones in man.

The effects of the ergoline derivative, lergotrile mesylate, on the serum levels of PRL, GH, TSH, LH, FSH, cortisol, and blood sugar were studied in six normal males. The effects of lergotrile mesylate on the serum levels of GH and PRL were also studied in eight patients with acromegaly and in two with idiopathic hyperprolactinemia. In the normal subjects, 2 mg oral lergotrile lowered basal PRL levels after 90 min and markedly impaired the PRL response to TRH (200 micrograms iv); the mean peak value +/- SE was 8.3 +/- 1.1 micrograms/liter, compared to the control value of 66.6 /+- 11.3 micrograms/liter. Lergotrile raised serum GH levels in five of the six subjects to peaks of 8-49 micrograms/liter, compared to 2-8 micrograms/liter after placebo. In three subjects, the GH response to lergotrile was attenuated by the prior administration of the dopamine antagonist, metoclopramide (10 mg orally). Lergotrile had no effect on FSH and LH levels under basal conditions or after the gonadotrophin-releasing hormone (GnRH; 100 micrograms iv). Circulating TSH levels were unaltered basally but impaired after TRH. Blood sugar levels were unaltered; serum cortisol was elevated in five of six subjects; there was a brief depression of diastolic blood pressure, but no change in pulse rate. The side effects after lergotrile were variable, with drowsiness as a consistent feature. These actions are similar to those of bromocriptine (an ergot derivative treatment of hyperprolactinemia and acromegaly, to suppress PRL and GH secretion, and in parkinsonism. Therefore, it may be expected that lergotrile could fulfill these clinical uses; however, in the studies comparing the effects of single oral doses of lergotrile (2 mg) and bromocriptine (2.5 mg) on GH and PRL secretion in patients with acromegaly and hyperprolactinemia, lergotrile in the dose used has been found to have an earlier onset and shorter duration of action.

Acromegaly

Bromocriptine treatment of hyperprolactinaemic hypogonadism.

Results of bromocriptine therapy of 70 women and 25 men with hyperprolactinaemia are reported together with those of 8 normoprolactinaemic and 3 post menopausal women. Galactorrhoea was present in 79% and 28% of the hyperprolactinaemic women and men respectively. 34 of the hyperprolactinaemic women had suspected pituitary tumours. Bromocriptine therapy resulted in lowering of prolactin levels to normal in 85 of the 95 patients, and in the remainder prolactin levels were lowered in all but one patient. Gonadal function was restored in all but seven of the hyperprolactinaemic women, and potency in all but 4 of the men. Normal cyclical function was restored or pregnancy was achieved in 5 of 6 normoprolactinaemic women with irregular cycles or amenorrhoea. Basal circulating LH and FSH levels and their responses to GnRH were normal or exaggerated in the majority of the women, but the LH responses to GnRH were impaired in 12 of 21 men. The results of 37 pregnancies in 31 women, 11 of whom had suspected pituitary tumours, are discussed together with the problems of possible tumour growth during pregnancy.

Adolescent

Acromegaly--results of long term treatment with bromocriptine.

Bromocriptine, a long acting dopamine agonist, has been used to treat 73 patients with active acromegaly for between 3 and 25 months. Clear clinical improvement occurred in 71 patients (97%). This included improvement in facial appearance, reduction in hand and foot size and sweating, relief of headaches and increased energy and libido. Abnormal visual fields became normal in two patients, but one of these was given concomitant radiotherapy. A significant reduction in growth hormone occurred in 58 patients (79%), but only 15 patients had levels persistently below 5microgram/l. Carbohydrate tolerance improved with the reduction in growth hormone and of 23 patients with diabetes mellitus before treatment, glucose tolerance became normal in 15 and improved in a further 5. Administration of bromocriptine should begin slowly in order to minimise early side effects. Long term side effects have been minor to date and the deaths of two patients whilst taking the drug were not considered to have been caused by it. Bromocriptine offers a major advance in the management of acromegaly, but further careful follow-up is required to determine whether serious side effects will be a problem with the long term use of high doses.

Acromegaly

Long-term treatment of acromegaly with bromocriptine.

Seventy-three patients with active acromegaly were treated for three to 25 months with bromocriptine 10-60 mg/day. Seventy-one patients showed symptomatic and objective clinical improvement. This included reduction in excessive sweating, hand and foot size, and the number of headaches; improved facial appearance; and increased energy and libido. Abnormal visual fields became normal in two patients, one of whom had concomitant radiotherapy. Mean circulating growth hormone levels, obtained by averaging serial samples through the day, fell by more than 7 microng/l or became undetectable in 58 patients (79%) but did not reach normal values: only 15 patients had mean levels on treatment of 5 microng/l or less. Twenty-three patients were diabetic before treatment, and glucose tolerance became normal in 15 and improved in a further five. Provided the drug was started slowly side effects were minor when compared with the considerable clinical benefit obtained.

Acromegaly

Prolactin.

Prolactin exists in man as a distinct and separate anterior pituitary hormone from growth hormone. It is important in lactation and the control of gonadal function, although it may have a much wider and basic metabolic role, similar to its role in lower forms. In clinical endocrinology it is important as an index of pituitary and hypothalamic diseases; thus prolactin levels are elevated in association with these conditions and this reflects the normal tonic inhibitory hypothalamic control of prolactin by PIF; DA is the most important PIF. Hyperprolactinaemia causes hypogonadism in both men and women; it may present in women with amenorrhoea, oligomenorrhoea, polymenorrhoea, regular cycles with anovulation or a defective luteal phase, and impotence in men. In either sex galactorrhoea is reported to occur in only 30 per cent of patients. Neurotransmitter therapy, with dopamine agonists which act as functional analogues of PIF, restores prolactin levels to normal and leads to a return of normal gonadal function. The mechanism of the hypogonadism is not clear and is discussed together with the problems associated with inducing pregnancy in these patients, who may harbour microadenomata of the pituitary.

Age Factors

Serum prolactin and oestradiol levels at different stages of puberty.

Serum prolactin and oestradiol levels were measured in 183 children who were staged for pubertal development. Mean serum prolactin levels are higher in girls than in boys at stage 3 of pubertal development. In girls prolactin levels rise at stage 2, and are higher after menarche; in boys there is no change in prolactin levels. In this study serum oestradiol correlates with prolactin in the girls, but not in the boys.

Adolescent