Search PubMed⌕ Search

Biomedical subjects

M H Samuels

Publications and source records attributed to M H Samuels.

47 records · Page 3Linked to original sources

Pulsatile prolactin secretion in hyperprolactinemia due to presumed pituitary stalk interruption.

PRL, like other anterior pituitary hormones, is normally secreted in a pulsatile fashion. However, it is not known whether such pulses depend on dopamine and/or other hypothalamic factors. This question can be addressed by investigating patients with large pituitary mass lesions, since such patients often have hyperprolactinemia due to disruption of normal hypothalamic input to the pituitary gland. Six such patients (5 with non-PRL-secreting tumors and 1 with a craniopharyngioma) and 11 healthy control subjects had PRL levels measured every 15 min over 24 h. PRL pulses were located by cluster analysis. All patients had PRL pulses of normal frequency, but increased amplitude. Circadian variation in PRL pulse amplitude, present in healthy women, was abolished in tumor patients. These results imply that normal pituitary levels of dopamine do not control the generation of PRL pulses. Instead, PRL pulses may arise from the pituitary gland, with pulse amplitude and circadian rhythm modulation by dopamine and other hypothalamic factors. Alternatively, the mild hyperprolactinemia associated with large hypothalamic-pituitary tumors may represent partial impairment of dopamine secretion, with sufficient pituitary dopamine levels to maintain normal PRL pulse frequency.

Circadian Rhythm↗

The role of endogenous opiates in athletic amenorrhea.

We hypothesized that menstrual disturbances in female athletes arise from opioid-induced abnormalities in gonadotropin and/or prolactin (PRL) secretion. To investigate this hypothesis, we measured luteinizing hormone, follicle-stimulating hormone, and PRL levels in eumenorrheic and amenorrheic athletes during thyrotropin-releasing hormone and gonadotropin-releasing hormone tests at baseline, after naloxone infusions, after exercise to exhaustion, and after similar exercise during naloxone infusions. Contrary to our hypothesis, amenorrheic runners did not have significant alterations in basal, postexercise, or stimulated hormone levels compared with eumenorrheic runners. In addition, opioid blockade by naloxone did not enhance gonadotropin release by amenorrheic athletes.

Adult↗

Patterns of pulsatile pituitary glycoprotein secretion in central hypothyroidism and hypogonadism.

Five patients with central hypothyroidism and hypogonadism due to mass or infiltrative lesions of the pituitary and hypothalamus were studied to determine pulsatile pituitary glycoprotein secretion patterns. Blood samples were obtained every 15 min over 24 h, and TSH, LH and FSH were measured by immunoradiometric assays. Hormone pulses were located by cluster analysis, and pulse patterns were compared to those in normal subjects. Three patients had unmeasurable LH levels, while two had a normal number of low amplitude pulses. In contrast, all patients had normal FSH pulse frequency, and only one had low pulse amplitude. Three patients had normal 24-h TSH pulse frequency and amplitude, while two had slightly decreased pulse parameters. However, all failed to show normal nocturnal increases in TSH pulse amplitude. Thus, anatomical hypothalamic-pituitary lesions disrupt pulsatile glycoprotein secretion in a discordant fashion. LH is most severely affected, with abnormal pulse patterns similar to those in idiopathic central hypogonadism. FSH and TSH pulses are relatively preserved, but loss of the usual nocturnal increase in TSH pulse amplitude is sufficient to cause clinical hypothyroidism. Whether these defects reflect intrinsic pituitary disease or impaired hypothalamic releasing factor function remains to be determined.

Adolescent↗

Pathophysiology of pulsatile and copulsatile release of thyroid-stimulating hormone, luteinizing hormone, follicle-stimulating hormone, and alpha-subunit.

Under physiological conditions, TSH, LH, FSH, and alpha-subunit are released in discrete pulses. To further characterize their neuroregulation and to investigate possible copulsatile secretion of these glycoprotein hormones, we studied the 24-h pulse profiles of all four hormones in each of four subject groups: young men, young women, postmenopausal women, and subjects with untreated primary hypothyroidism. Gonadotropin pulse properties in euthyroid men and women were similar to those previously reported, and hypothyroid subjects had normal gonadotropin pulse patterns. TSH release was pulsatile in all groups; hypothyroid subjects had increased pulse amplitude, but loss of the usual nocturnal increases in pulse amplitude. alpha-Subunit concentrations were pulsatile in all groups, with minimal circadian variation; postmenopausal and hypothyroid subjects had increased alpha-subunit pulse amplitude. We then tested pulse concordance among the four simultaneous hormone series. alpha-Subunit and the gonadotropins were significantly coreleased (triple coincidence), suggesting that all three hormones are closely linked to processes that regulate GnRH secretion. alpha-Subunit bursts were also significantly coincident with those of TSH in men, postmenopausal women, and hypothyroid subjects. Interestingly, TSH pulses were significantly concordant with those of LH and FSH, and all four hormones were significantly concordant in men, postmenopausal women, and hypothyroid subjects. In conclusion, the present findings imply that an underlying unified signal coordinates pulsatile hormone secretion from both gonadotrophs and thyrotrophs.

Adult↗

Ectopic pituitary adenoma of the third ventricle. Case report.

Ectopic pituitary adenomas without associated intrasellar adenomas are rare and are usually located in the sphenoid sinus. Most have been reported without modern radiological, endocrinological, or electron microscopic (EM) documentation. The case of a 47-year-old man with a third ventricular, ectopic, clinically nonsecretory pituitary adenoma, which was shown to be a gonadotrophic adenoma by immunohistochemical and EM study, is reported. Neurological examination, extensive neurodiagnostic imaging, surgical anatomical observation, and endocrinological evaluation showed no evidence of neoplasia outside the third ventricle.

Adenoma↗

The effect of altered thyroid status on pituitary hormone messenger ribonucleic acid concentrations in the rat.

To study the effects of altered thyroid status on pretranslational control of pituitary hormones, adult male rats were given propylthiouracil for 6 weeks and underwent the following studies. 1) Rats were injected with T3 at 10 micrograms/100 g BW daily for 10 days. 2) Rats were given T3 injections at 0, 0.01, 0.1, 1.0, or 10 micrograms/100 g BW for 10 days. 3) Rats were killed 0, 1, 6, or 24 h after a single injection of T3 at 10 micrograms/100 g BW or after 5 or 10 days of daily T3 injections. Pituitary mRNA concentrations of TSH beta, alpha-subunit, PRL, GH, POMC, FSH beta, and LH beta were determined for individual animals. Marked increases in TSH beta and alpha-subunit mRNAs occurred after PTU treatment, and these changes were reversed by 1.0 microgram/100 g BW T3 and within 24 h of a single T3 injection of 10 micrograms/100 g BW. Further increases in the dose or time course of T3 administration led to a relatively greater suppression of TSH beta mRNA levels than alpha-subunit mRNA levels. In contrast, GH and PRL mRNA levels were low in hypothyroid animals, and both rose toward control levels with 0.1 microgram/100 g BW T3 and by 24 h after a single T3 dose. Induction of hyperthyroidism did not further increase GH mRNA levels above control, but increased PRL mRNA levels 2-fold over control. No changes were seen in FSH beta, LH beta, or POMC mRNA levels with any treatment. Thus, studies of altered thyroid status in the rat reveal dose-response and time-course variability in the pretranslational control of TSH beta, alpha-subunit, GH, and PRL by thyroid hormone.

Animals↗

Clinical and molecular studies of a thyrotropin-secreting pituitary adenoma.

A 40-year-old woman, who had previously received radioactive iodine for hyperthyroidism, presumably due to Graves' disease, subsequently was found to have inappropriately elevated serum TSH and alpha-subunit levels and a pituitary adenoma. Detailed clinical studies revealed marked serum TSH elevations (approximately 100 mU/L) with no circadian variation, but with 7 pulses/24 h. Serum alpha-subunit levels averaged 2.5 micrograms/L, with 13 pulses/24 h. Neither serum TSH nor alpha-subunit responded to TRH stimulation, nor did serum TSH change during dopamine infusion, but alpha-subunit levels did decline slightly. In contrast, during somatostatin infusion, serum TSH declined to 30% of baseline levels, while alpha-subunit levels did not change. Pituitary adenoma tissue obtained at the time of transsphenoidal surgery immunostained weakly with anti-TSH beta serum and strongly with anti-alpha-subunit serum. Northern blot analysis of RNA isolated from the tumor revealed TSH beta and alpha-subunit mRNA levels of normal length, while primer extension analysis showed a major initiation site for the TSH beta gene that appeared to be identical in the tumor and normal pituitary tissue. A second minor upstream start site was detected in the tumor, but it represented less than 1% of transcription compared to the major downstream start site. We conclude that the tumor secreted TSH and alpha-subunit in an abnormal and discordant fashion, but that the TSH gene initiation site appeared to be normal and, therefore, did not explain the observed secretory abnormalities.

Adenoma↗

Massive insulin overdose: detailed studies of free insulin levels and glucose requirements.

The course of a diabetic patient who self-administered 2500 U of NPH insulin subcutaneously was examined in detail. Despite resumption of oral intake on day 3, she required iv glucose for 6 days, during which time serum free insulin levels remained elevated. Glucose requirements closely matched those calculated from published euglycemic clamp data on maximal glucose disposal rates during insulin infusion. We postulate that her prolonged course was due to delayed absorption of the subcutaneous insulin. This is the first case of massive insulin overdose studied in such detail, and the results may facilitate management of future cases.

Adult↗

Plasma prolactin concentrations in parental male and female rats: effects of exposure to rat young.

The effects of pup presentation on the PRL responses in parental male rats were measured and compared with those in parental virgin and lactating female rats. Blood samples were collected from rats through indwelling intraatrial cannulas after a suckling challenge, i.e. presentation of rat young. Lactating rats showed full parental behavior and characteristic large surges in plasma PRL levels within the first 5-10 min on each day that rat young were presented (days 4, 8, and 12 of lactation). When pups were not presented, PRL rises did not occur. In contrast to the pattern of PRL responses shown by lactating mothers, parental ovariectomized nulliparous female and parental intact male rats failed to show specific increases in PRL in response to pup presentation. Plasma PRL levels in these groups, as in nonparental female and male rats, occasionally rose in response to blood collection rather than to pup presentation alone. Treatment of nulliparous female as well as male rats with estradiol and progesterone Silastic implants for 21 days before the initiation of behavioral testing significantly reduced the latencies of both nulliparous females and males to respond to foster young from about 5 to 2 days. The PRL responses of these steroid-primed groups were quite different. The steroid-primed females exhibited a pattern of PRL responses to pups identical to that found in lactating rats. The steroid-primed parental males, in contrast, failed to show specific increases in plasma PRL levels in response to young. These data demonstrate a sex difference in the hormonal, but not behavioral, responses of male and female rats to young and are suggestive of possible sex differences in the hypothalamic and/or peripheral regulation of pup-induced PRL secretion.

Animals↗

Cocaine impairs follicular phase pulsatile gonadotropin secretion in rhesus monkeys.

OBJECTIVE: To assess cocaine's effect on follicular phase pulsatile gonadotropin secretion in normally cycling rhesus monkeys. METHODS: Sixteen monkeys were paired by body weight and randomized to receive intravenous saline (n = 8) or cocaine (4 mg/kg, n = 8) daily on cycle days 2 to 14. Monkeys were chronically cannulated to allow frequent blood collections without anesthesia. Blood samples were obtained every 15 minutes for 8 hours in early (EFP; cycle days 1 to 5), mid-(MFP; cycle days 6 to 10), and late (LFP; cycle days 11 to 15) follicular phase. Plasma concentrations of LH, FSH, and estradiol-17 beta (E2) were determined by radioimmunoassay. Pulses were identified by cluster analysis. Statistical differences were determined by analysis of variance (ANOVA) and Sidak's multiple comparison test. RESULTS: Seven out of eight monkeys in the control group demonstrated timely ovulation. Only one monkey in the cocaine-treated group ovulated. Similar gonadotropin pulse intervals (70 to 90 minutes) were observed throughout the follicular phase in both the controls and cocaine-treated monkeys. LH and FSH pulse amplitudes increased significantly from the EFP/MFP to the LFP in controls. In cocaine-treated monkeys, gonadotropin pulse amplitudes remained at EFP/MFP levels throughout the study period. The mean gonadotropin pulse amplitude and the mean E2 levels in the LFP were significantly greater in controls as compared with cocaine-treated monkeys (P < .001). CONCLUSION: These findings demonstrate that cocaine suppresses the normal increase in LH and FSH pulse amplitude seen in the LFP. Further studies are in progress to determine the mechanism of cocaine's disruption of the hypothalamic-pituitary-ovarian axis.

Animals↗

Effects of cocaine on basal and pulsatile prolactin levels in rhesus monkeys.

OBJECTIVES: Cocaine abuse is often associated with reproductive cycle dysfunction including altered menstrual cyclicity and decreased ovulation rates. Cocaine might also alter prolactin (PRL) secretion, presumably through the effects of this drug on hypothalamic dopamine, the primary factor regulating pituitary PRL secretion. We assessed basal and pulsatile PRL levels to determine whether hyperprolactinemia is associated with cocaine-induced disruption of menstrual cyclicity in rhesus monkeys. METHODS: Normally cycling, drug-naïve monkeys were studied. Cocaine-treated animals were pair-fed with controls to minimize cocaine-related differences in caloric intake. Twenty-eight monkeys were randomized to receive daily intravenous (iv) infusion of saline or cocaine (1, 2, or 4 mg/kg) on cycle days 2-14. Daily blood samples were obtained through indwelling catheters for measurement of ovarian steroids, gonadotropins, and PRL. Laparoscopy was performed 2 days after the midcycle estradiol surge to document ovulation. Sixteen other monkeys were randomized to receive daily iv infusion of saline or cocaine (4 mg/kg). Blood samples were obtained every 15 minutes for 8 hours in the early (cycle day 1-5), mid- (cycle day 6-10), and late (cycle day 11-15) follicular phase. Plasma was assayed for PRL, and pulses were identified by cluster analysis. RESULTS: All seven control monkeys had laparoscopically confirmed ovulation compared to two of seven monkeys receiving 1 mg/kg, three of seven monkeys receiving 2 mg/kg, and one of seven receiving 4 mg/kg of cocaine hydrochloride. Cycle length was normal in six of seven controls, and in one of seven, two of seven, and two of seven monkeys receiving the 1, 2, and 4 mg/kg of cocaine, respectively. Estradiol levels were significantly higher in controls versus cocaine-treated monkeys, but there was no difference in basal gonadotropin levels during treatment. Mean PRL levels during treatment were significantly lower (P <.05) in controls (4.6 +/- 0.2 ng/mL) as compared to monkeys receiving 1 (6.5 +/- 0.6 ng/mL), 2 (6.1 +/- 0.4 ng/mL), and 4 mg/kg (7.2 +/- 0.6 ng/mL) of cocaine. There was no significant difference in PRL pulse amplitude or frequency between controls and cocaine-treated monkeys during each cycle phase. CONCLUSIONS: Circulating PRL levels were slightly higher in monkeys receiving cocaine during the follicular phase. Although this increase was statistically significant, PRL levels remained well within the euprolactinemic range in cocaine-treated monkeys.

Animals↗