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A nationwide survey of mortality in acromegaly.

CONTEXT: Increased mortality in acromegaly has been confined to those with posttreatment basal GH of 2.5 microg/liter or greater, but the impact of IGF-I and pituitary radiotherapy on mortality has remained controversial. OBJECTIVE: The purpose of this nationwide survey was to examine the all-cause mortality of patients with acromegaly and evaluate the impact of treatment outcome and mode of treatment on survival. DESIGN, SETTING, AND PATIENTS: All-cause mortality of all patients with acromegaly diagnosed during January 1980 and December 1999 in the five university hospitals of Finland was followed up by the end of 2002 (12.5 +/- 5.6 yr) and compared with that of the general population by using age- and gender-adjusted standardized mortality ratios (SMRs). Logistic regression analysis was used to investigate factors related to mortality within the survey population. MAIN OUTCOME MEASURE: Mortality was the main outcome measure. RESULTS: Of the 334 patients, 56 (16.8%) had died during follow-up. SMR of the patients was 1.16 [confidence interval (CI) 0.85-1.54, not significant (NS)]. However, patients with basal serum GH concentration 2.5 microg/liter or greater (SMR 1.63, CI 1.10-2.35, P < 0.001) measured 5.2 +/- 4.4 yr after the initial treatment, and those irradiated (SMR 1.69, CI 1.05-2.58, P < 0.001) showed excess mortality. In a multivariate model, the effect of radiotherapy was of borderline significance only (P = 0.083). Posttreatment IGF-I levels, available for 72.2% of the patients, did not have impact on mortality. CONCLUSIONS: The posttreatment basal GH concentration less than 2.5 microg/liter in acromegalic patients is associated with a normal lifespan. Excess mortality is confined to poorly controlled patients and possibly those who have received conventional radiotherapy.

Acromegaly↗

Glucose homeostasis and safety in patients with acromegaly converted from long-acting octreotide to pegvisomant.

CONTEXT: In clinical practice, patients with acromegaly may be switched from therapy with long-acting somatostatin analogs to pegvisomant. The effect of changing therapies on glucose homeostasis and safety has not been reported. OBJECTIVES: The objectives of this study were to monitor changes in IGF-I levels, glycemic control, and safety, particularly liver function and tumor size. DESIGN: This was a multicenter, open-label, 32-wk trial study. SETTING: The study was performed at outpatient clinics. PATIENTS: Fifty-three patients with acromegaly previously treated with octreotide long-acting release (LAR) participated in this study. INTERVENTION: Pegvisomant (10 mg/d) was initiated 4 wk after the last dose of octreotide LAR and was adjusted based on serum IGF-I concentrations at wk 12, 20, and 28. MAIN OUTCOME MEASURES: The main outcome measures were changes in IGF-I, glycosylated hemoglobin A1c (HbA1c), fasting plasma glucose, and safety during the first 12 wk after conversion. RESULTS: At the end of pegvisomant treatment, IGF-I was normalized in 78% of patients. At wk 32, median fasting glucose concentration and HbA1c were reduced (-1.4 mmol/liter and -0.4%, respectively; both P < or = 0.0001) in the study population. Improvements in glycemic control occurred in patients with normal IGF-I concentrations at wk 4 [n = 15; fasting glucose, -1.7 mmol/liter (P < or = 0.0001); HbA1c -0.2% (P = 0.03)]. Decreases in fasting glucose and HbA1c levels were observed in patients with and without diabetes. HbA1c was reduced by more than 1.0% in patients with diabetes. Median pituitary tumor volume did not change, although tumor volume increased in two patients with macroadenomas. CONCLUSIONS: Conversion from octreotide LAR to pegvisomant was safe and well tolerated. Improved glycemic control indicates that pegvisomant should be considered in patients with acromegaly and diabetes.

Acromegaly↗

Cotreatment of acromegaly with a somatostatin analog and a growth hormone receptor antagonist.

CONTEXT: Pegvisomant is a GH receptor antagonist that blocks the peripheral actions of GH in acromegaly. Pegvisomant, in contrast to somatostatin (SMS) analogs, does not suppress the activity of the GH-producing adenoma. OBJECTIVE: We assessed the effects of cotreatment with pegvisomant and SMS in acromegaly on GH secretion, IGF-I levels, and glucose tolerance. DESIGN, PATIENTS, AND INTERVENTIONS: Eleven patients with persistent disease despite previous therapy underwent the following fixed treatment algorithm: 1) on SMS therapy, 2) off therapy for 2 months, 3) 6-wk treatment with 10 mg/d pegvisomant, 4) 6-wk treatment with 15 mg/d pegvisomant, and 5) 3-month treatment with 15 mg pegvisomant plus SMS. Blood was sampled in the fasting state and during an oral glucose tolerance test. RESULTS: Total serum IGF-I levels (micrograms per liter) decreased after pegvisomant, but the lowest levels were obtained with cotreatment [458 +/- 67 (SMS), 562 +/- 78 (active), 376 +/- 51 (10 mg), 269 (15 mg), 195 +/- 24 (combined) (P < 0.0001)]. Free and bioactive IGF-I changed in a similar pattern. Steady-state pegvisomant levels (micrograms per liter) were obtained, but SMS cotreatment increased pegvisomant levels by 20% (P = 0.02) [2631 +/- 616 (10 mg), 6536 +/- 1413 (15 mg), 8030 +/- 1914 (combined)]. Pegvisomant increased endogenous GH levels (micrograms per liter), which was countered by SMS cotreatment [5.1 +/- 1.3 (SMS), 8.9 +/- 2.9 (active), 14.6 +/- 4.9 (10 mg), 19.7 +/- 6.5 (15 mg), 11.8 +/- 2.8 (combined) (P < 0.01)]. Plasma glucose levels (millimoles per liter) were highest during SMS and lowest during pegvisomant 15 mg [2-h oral glucose tolerance test: 10.3 +/- 0.7 (SMS), 8.9 +/- 0.7 (active), 7.2 +/- 0.7 (10 mg), 6.5 +/- 0.5 (15 mg), 8.0 +/- 0.8 (combined) (P = 0.02)]. CONCLUSIONS: Dual blockade of the GH axis with pegvisomant and a SMS analog is feasible in acromegaly.

Acromegaly↗

Partial surgical removal of growth hormone-secreting pituitary tumors enhances the response to somatostatin analogs in acromegaly.

CONTEXT: Surgery is a cornerstone in the treatment of acromegaly, but its efficacy in large, invasive tumors is scant. OBJECTIVE: The objective of this study was to investigate whether partial surgical removal of GH-secreting pituitary tumors enhances the response rate to somatostatin analogs (SSA; sc octreotide, slow-release octreotide, and lanreotide). DESIGN: This was a multicenter, open, retrospective study. SETTING: The study was performed at university hospitals. SUBJECTS AND METHODS: Eighty-six patients (42 women and 44 men; age, 42 +/- 14 yr) with acromegaly were studied. INTERVENTIONS: Patients underwent two courses of octreotide, lanreotide, or slow-release octreotide treatments before and after surgery of at least 6 months. MAIN OUTCOME MEASURE: The main outcome measure was normal IGF-I levels for age. RESULTS: Presurgical SSA treatment significantly decreased GH and IGF-I levels in all patients. GH levels were less than 2.5 microg/liter in 12 patients (14%); IGF-I levels normalized in nine (10%). After surgery, GH and IGF-I levels further decreased in all patients; tumor removal was greater than 75% in 50 (58%), 50.1-75% in 21 (24%), 25.1-50% in 10 (12%), and less than 25% in five patients (6%). Preoperatively, pituitary function was impaired in 12 patients (14%). Postsurgical SSA treatment lowered GH levels to less than 2.5 microg/liter in 49 (56%) and normalized IGF-I levels in 48 patients (55%). The success rate was significantly increased compared with that before surgery (P < 0.0001). GH (r = -0.48; P < 0.0001) and IGF-I levels (r = -0.38; P = 0.0003) after postsurgery SSA treatment correlated with the amount of tumor surgically removed. After surgery, pituitary function was impaired in 28 patients (32.6%) and was improved in 12 patients (13.9%). The cumulative prevalence of pituitary deficiency did not change during the study (normal function from 40 to 42%; deficiency from 60 to 58%). CONCLUSIONS: Surgical tumor removal (>75%) enhances the response to SSAs without impairing pituitary function. Our data indicate that surgical debulking has a significant place in the treatment algorithm of acromegaly.

Acromegaly↗

Reductions of circulating matrix metalloproteinase 2 and vascular endothelial growth factor levels after treatment with pegvisomant in subjects with acromegaly.

BACKGROUND: Vascular endothelial growth factor (VEGF) is involved in activation of the matrix metalloproteinase (MMP) system; the latter is implicated in atherosclerosis and cardiovascular disease. Patients with acromegaly have reduced life expectancy primarily due to cardiac disease. AIM: This study assessed plasma MMPs and VEGF levels in patients with active acromegaly (IGF-I > 130% upper limit of normal), and on treatment with pegvisomant. SUBJECTS AND METHODS: Twenty patients [nine female, mean age 56.1 +/- 13.8 yr (mean +/- sd)] were studied at baseline and on pegvisomant therapy and compared with data from 25 healthy volunteers (12 female; 56.6 +/- 14.2 yr). Plasma MMP-2, MMP-9, and VEGF levels were measured. RESULTS: Serum IGF-I fell from a baseline (mean +/- sd) level of 620.1 +/- 209.3 ng/ml to 237.5 +/- 118.5 ng/ml on pegvisomant (doses 10-60 mg; P < 0.001). MMP-2 levels at baseline were significantly higher in patients compared with healthy controls (380.7 +/- 204.8 vs. 207.4 +/- 62.6 ng/ml; P < 0.001), but with treatment a significant reduction in MMP-2 [380.7 +/- 204.8 vs. 203.0 +/- 77.4 ng/ml; P < 0.001] and VEGF (283.4 +/- 233.6 vs. 229.1 +/- 157.4 pg/ml; P = 0.008) was noted. There was no significant difference in MMP-9 levels between patients and controls at baseline (797.5 +/- 142.1 vs. 788.3 +/- 218.0 ng/ml; P = 0.87) or between baseline and posttreatment levels (797.5 +/- 142.1 vs. 780.0 +/- 214 ng/ml; P = 0.76). CONCLUSIONS: Our novel data demonstrate that treatment of acromegaly with pegvisomant leads to reductions in MMP-2 and VEGF concentrations. Further studies are required to determine the significance of these findings with relation to cardiac disease.

Acromegaly↗

Quality of life in treated patients with acromegaly.

CONTEXT: It is not known to what extent quality of life of patients treated for acromegaly is dependent on levels of GH and IGF-I attained. OBJECTIVE: The objective of this study is to examine the health-related quality of life (HRQoL) and its dependence on treatment outcome and modality in a nationwide survey of acromegalic patients. DESIGN, SETTING, AND PATIENTS: All eligible patients with acromegaly, diagnosed from January 1980 through December 1999 in Finland, were invited to a follow-up study, carried out 11.4 +/- 5.7 (mean +/- sd) yr after initial treatment. HRQoL of the patients, measured by the generic 15D instrument, was compared with that of the general population. Factors related to HRQoL were analyzed by logistic regression. MAIN OUTCOME MEASURE: HRQoL was the main outcome measure. RESULTS: Of 277 eligible patients, 231 (83.4%) participated in the follow-up study. Of them, 51.1% were in remission according to consensus criteria. The patients reported reduced HRQoL in comparison to the age- and gender-standardized general population (P < 0.001). HRQoL was related to nadir GH in oral glucose tolerance test (GHOGTT) in an inverted U-shaped fashion (overall P = 0.021). Patients with GHOGTT nadir values between 0.3-1.0 microg/liter had a better HRQoL than those with lower or higher values. A normal IGF-I (P = 0.038) and not having had radiotherapy (P = 0.004) were also associated with a better HRQoL. CONCLUSIONS: HRQoL is reduced in treated patients with acromegaly. The best HRQoL may be achieved by normalization of IGF-I and by targeting the GHOGTT nadir to levels between 0.3 and 1.0 microg/liter. Radiotherapy is associated with adverse HRQoL.

Acromegaly↗

Acromegaly associated with a bronchial carcinoid tumor: evidence for ectopic production of growth hormone-releasing activity.

A patient with acromegaly, pituitary enlargement, and elevated plasma GH levels also had a bronchial carcinoid tumor. Signs and symptoms of active acromegaly along with elevated GH levels persisted for 11 yr after hypophysectomy and pituitary stalk section. Resection of the bronchial carcinoid reduced plasma GH to barely detectable levels. Extracts of the frozen carcinoid tumor were devoid of significant GH, but when added to isolated pituitary cells of estrogen-primed male rats in 4-day primary culture exhibited specific GH-releasing activity in vitro. These findings strongly suggest that the patient's acromegaly resulted from continual stimulation of pituitary somatotrophs by a GH-releasing factor secreted by the bronchial carcinoid.

Acromegaly↗

Bromocriptine therapy in acromegaly: use in patients resistant to conventional therapy and effect on serum levels of somatomedin C.

Seven patients with clinically active acromegaly who had not responded completely to previous surgical or radiation therapy were treated with bromocriptine. Bromocriptine was well tolerated; only one of the seven patients discontinued treatment secondary to side effects. Six of the seven patients improved during bromocriptine therapy, although GH levels were normalized in only two patients. All patients had elevated levels of somatomedin C (Sm-C) before therapy even when basal levels of GH were less than 10 ng/ml. One patient normalized both GH and Sm-C during bromocriptine therapy and had an excellent clinical response. Five patients had moderately good clinical responses; four of these patients had substantial falls in GH levels, but Sm-C levels fell minimally if at all in four and actually increased in one patient. In one patient, there was no change in clinical status, GH levels, or Sm-C levels. Thus, the clinical response did not correlate well with changes in Sm-C in most patients. The patterns of response to provocative stimuli of GH secretion in acromegaly were maintained during bromocriptine therapy, as has been previously been reported. Based on our experience, bromocriptine appears to be a useful adjunct in the therapy of acromegaly, even in patients who have had prior ablative therapy.

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Extrahypothalamic growth-hormone-releasing factor (GRF) secretion is a rare cause of acromegaly: plasma GRF levels in 177 acromegalic patients.

To assess the frequency with which acromegaly is caused by ectopic secretion of GRF, we collected plasma samples from 177 unselected acromegalic patients. The samples together with those of three acromegalic patients with previously diagnosed tumors secreting GRF and of normal subjects were assayed in 3 independent GRF RIAs. Plasma immunoreactive GRF (IR-GRF) levels in normal subjects were either undetectable or detectable at levels up to 62.5 pg/ml. In none of the 177 specimens from acromegalic patients were IR-GRF values detectable in all assays, and in the most sensitive assay, the levels were similar to those in normal subjects, with the highest level measuring 82 pg/ml. In contrast, plasma IR-GRF found in the 3 patients with tumors that secreted GRF ranged from 2.0-24.4 ng/ml. These data suggest that extrahypothalamic GRF secretion is a rare cause of acromegaly. However, it is important that this rare cause of acromegaly be diagnosed before the patient has unnecessary surgery and/or irradiation directed at the pituitary. We recommend that plasma IR-GRF be measured in each new acromegalic patient.

Acromegaly↗

Effects of growth hormone-releasing factor on growth hormone secretion in acromegaly.

Twenty-nine patients with acromegaly (8 untreated and 21 previously treated in various ways) and 16 normal men were given iv bolus doses of human pancreatic tumor GH-releasing factor (hpGRF-40). Twenty-five of the 29 patients responded to hpGRF-40 with elevations of plasma GH. The magnitude of the responses varied widely. Responses of untreated patients were generally similar to those of the normal subjects. Previously treated patients had a significantly lower response than normal individuals [change in GH, 7.5 +/- 1.8 vs. 42.0 +/- 11.0 ng/ml (mean +/- SEM); P less than 0.01], and 4 patients who had received radiation therapy failed to respond to hpGRF-40. There was no significant correlation between the magnitude of the response and patients' age, sex, baseline GH levels, GH responsiveness of TRH, or GH suppression after oral glucose administration. Patients studied both pre- and postoperatively were responsive to hpGRF-40 at all times tested, but the magnitude of the response decreased after successful surgical removal of the adenoma. Thus, most patients with treated or untreated acromegaly respond to hpGRF-40, but their responses do not clearly distinguish them from normal subjects. GH-releasing hormone testing is unlikely to replace other endocrine tests available for the diagnosis and evaluation of acromegaly.

Acromegaly↗

Failure to respond to growth hormone releasing hormone (GHRH) in acromegaly due to a GHRH secreting pancreatic tumor: dynamics of multiple endocrine testing.

Growth hormone releasing hormone (GHRH) has recently been isolated and sequenced from pancreatic tumors secreting GHRH. Patients with untreated acromegaly due to a pituitary tumor respond to exogenous administration of GHRH with a further rise of their elevated basal growth hormone (GH) levels. For the first time, we report the effects of exogenously administered synthetic GHRH in a patient with acromegaly due to a GHRH secreting pancreatic tumor. The diagnosis was established by high peripheral IR-GHRH levels (1100 pg/ml) and an arterio- venous tumor gradient of IR-GHRH. In this patient GH failed to respond to 1 microgram/kg of exogenous GHRH with the pancreatic tumor in situ; however, further increase of serum GH levels occurred after TRH administration, hypoglycemia and oral glucose administration. After removal of the tumor, serum GH levels decreased and a normal response to GHRH and TRH were demonstrated. The extract of the tumor contained 1.7 micrograms IR-GHRH per g wet tissue. Thus, lack of response to exogenous GHRH in untreated acromegaly may indicate the presence of an ectopic GHRH producing tumor.

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Acromegaly: biochemical assessment of cure after long term follow-up of transsphenoidal selective adenomectomy.

This study reports the clinical and biological follow-up 5-11 yr after transsphenoidal selective adenomectomy in 25 patients with acromegaly. Eight patients had microadenomas, and 17 had macroadenomas. Initial normalization of plasma GH levels (basal values, less than 5 ng/ml; glucose-suppressed concentrations, less than 2.5 ng/ml) was achieved in all 8 patients with microadenomas and in 13 patients with macroadenomas. Of these, 3 patients with normal GH levels and dynamics had relapse of GH hypersecretion after intervals between 1-6 yr after microadenoma removal. Recurrence of pituitary adenoma was documented by surgery in 1 patient and by computed tomographic scanning in 2 others. Normal basal and glucose-suppressed plasma GH concentrations were maintained 7.4 +/- 0.5 (+/- SEM) yr after adenomectomy in 7 patients with microadenomas and in all 10 patients with macroadenomas. Thus, 88% of the patients with microadenomas and 59% of the patients with macroadenomas were cured, and the overall cure rate was 68%. We conclude that recurrence of acromegaly after successful surgery may occur late after adenoma removal and that it cannot be predicted by normal postoperative GH levels and dynamics. However, in view of the overall cure rate, transsphenoidal adenomectomy remains a most valuable treatment for acromegaly.

Acromegaly↗

Acromegaly due to ectopic growth hormone (GH)-releasing hormone (GHRH) production: dynamic studies of GH and ectopic GHRH secretion.

Dynamic studies of GH and GH-releasing hormone (GHRH) secretion were performed in a man with a GHRH-producing carcinoid tumor and acromegaly. Insulin hypoglycemia stimulated and metoclopramide inhibited both GH and GHRH acutely. Bromocriptine suppressed GH both acutely and chronically without altering circulating GHRH levels and also blunted the GH response to exogenous GHRH. TRH acutely stimulated GH, but not GHRH, secretion, and iv bolus doses of synthetic GHRH-(1-40) stimulated GH release acutely. Somatostatin infusion decreased both GH and GHRH concentrations and blunted the GH responses to TRH and GHRH-(1-40). We conclude that prolonged exposure of the pituitary gland to high concentrations of GHRH is associated with chronic GH hypersecretion and may be accompanied by a preserved acute GH response to exogenous GHRH; a paradoxical response of GH to TRH may be mediated at the pituitary level, consequent to prolonged pituitary exposure to GHRH; bromocriptine suppression of GH in acromegaly is due to a direct pituitary effect of the drug; and somatostatin inhibits both ectopic GHRH secretion as well as GH responsiveness to GHRH in vivo. Since GH secretory responses in patients with somatotroph adenomas are similar to those in this patient, augmented GHRH secretion may play a role in development of the "classic" form of acromegaly.

Acromegaly↗

Acromegaly and pheochromocytoma: a multiple endocrine syndrome caused by a plurihormonal adrenal medullary tumor.

A 42-yr-old man with congestive heart failure and diabetes mellitus was found to have acromegaly and a pheochromocytoma. Serum GH-releasing hormone (GHRH) levels were elevated (2.34 ng/dl; normal, less than 0.02 ng/dl), suggesting that the acromegaly was caused by ectopic secretion of GHRH. Postmortem examination revealed that the right adrenal gland contained a pheochromocytoma in which GHRH was demonstrated by immunohistochemical studies. Gel permeation chromatography combined with the use of two GHRH antisera showed that GHRH-(1-44)-NH2 was a predominant form of the hormone. When the RNA from the tumor was extracted and analyzed by Northern gel blotting, two mRNA species were identified, with transcripts corresponding to 1600 and 780 base pairs. The pituitary gland was enlarged, but no distinct adenoma was found. Diffuse and nodular hyperplasia of somatotrophs in some areas resembling adenoma was identified on histological examination. These findings indicate that GH excess accompanied by somatotroph hyperplasia and acromegaly were secondary to a pheochromocytoma which secreted not only catecholamines but also GHRH.

Acromegaly↗

Growth hormone inhibitory and stimulatory actions of L-dopa in patients with acromegaly.

It is not clear whether dopamine (DA) has a central stimulating activity on GH secretion in patients with acromegaly, as it does in normal subjects. To clarify this, we compared the GH inhibitory potencies of DA, which does not cross the blood-brain barrier (BBB), and L-dopa or bromocriptine, which do cross the BBB, in 23 patients with acromegaly. Further, we examined the central effects of L-dopa after selectively blocking peripheral (median eminence and pituitary) DA receptors with domperidone (a DA D2 receptor blocker which does not cross the BBB). After the administration of DA (5 micrograms/kg X min, iv, for 90 min), L-dopa (500 mg, orally), or bromocriptine (2.5 mg, orally), the mean plasma GH decrease was greatest after DA [maximum decrement, 71.9 +/- 3.8% (+/- SEM); n = 21] compared to L-dopa (44.1 +/- 5.6%; n = 23; p less than 0.001) or bromocriptine (58.9 +/- 5.0%; n = 20; p less than 0.02). Eleven of these patients received a single infusion of domperidone (0.22 mg/min, iv, for 180 min) or a combination of domperidone and L-dopa. Mean plasma GH levels did not change during domperidone alone. However, plasma GH levels in these patients increased significantly when L-dopa was administered 30 min after the start of domperidone infusion (vs. control study: at 90 min, 137.3 +/- 10.8% vs. 100.2 +/- 3.9%, p less than 0.01; at 120 min, 138.8 +/- 19.7% vs. 106.5 +/- 3.1%, p less than 0.05). In contrast, one patient who had a distinct plasma GH increase in response to the domperidone-L-dopa test had no increase in plasma GH when given L-dopa 30 min after the start of a sulpiride infusion (DA D2 receptor blocker which crosses the BBB; 1.1 mg/min, iv, for 180 min). Unlike GH, plasma PRL responses to domperidone infusion were not modified by the additional administration of L-dopa. These results suggest that in acromegaly, DA has not only direct suppressive effects on the pituitary tumor somatotrophs, but also indirect stimulatory effects via the hypothalamus; therefore, the hypothalamic GH-releasing system is not entirely suppressed by excessive tumor GH secretion.

Acromegaly↗

Acromegaly due to a growth hormone-releasing hormone-secreting bronchial carcinoid tumor: further information on the abnormal responsiveness of the somatotroph cells and their recovery after successful treatment.

UNLABELLED: We studied GH secretion in a patient with acromegaly and a bronchial carcinoid tumor before and again after surgical removal of this tumor. Before removal of the carcinoid tumor, plasma GH increased slightly after glucose loading (OGTT) and markedly after TRH (650%) and insulin (440%) treatment. Plasma GH did not change after GH-releasing hormone (GHRH), LHRH, or L-dopa administration. Somatostatin (SRIH) infusion lowered plasma GH. No change in plasma immunoreactive GHRH (IR-GHRH) occurred after TRH, glucose, insulin, or SRIH administration. Two weeks after removal of the carcinoid tumor, TRH induced GH secretion (250%) when the IR-GHRH level was undetectable and somatomedin-C was within normal limits. Fifteen weeks after surgery, the patient had normal GH secretion. IN CONCLUSION: no pattern of GH secretion is diagnostic of acromegaly due to ectopic GHRH secretion, but the lack of GH response to exogenous GHRH and a large response during hypoglycemia may be features of this condition. When acromegaly and abnormal GH responsiveness are induced by a GHRH-secreting tumor, the increases in plasma GH after TRH, glucose, and insulin administration are not mediated by GHRH. After removal of the GHRH-secreting tumor, persistent paradoxical GH response to TRH does not require abnormally high IR-GHRH levels and does not preclude complete recovery.

Acromegaly↗

Pituitary-adrenocortical response to metoclopramide in patients with acromegaly and prolactinoma: a clinical evaluation of catecholamine-mediated adrenocorticotropin secretion.

We have demonstrated that metoclopramide stimulates cortisol secretion at least in part by a stress-mediated effect in normal men. To examine further the effect of the drug on the hypothalamo-pituitary adrenal system, we studied the cortisol response to 20 mg metoclopramide in patients with acromegaly, prolactinomas, and functional hyperprolactinemia and compared the results with the responses to insulin-induced hypoglycemia. In some patients, the effects of metoclopramide on CRH-induced ACTH and cortisol increase were studied to determine whether a change in dopaminergic (catecholaminergic) activity altered CRH stimulation of pituitary-adrenal function. No cortisol response to 20 mg metoclopramide occurred in 13 tests on 8 of 9 patients with prolactinoma or acromegaly with hyperprolactinemia, whereas both acromegalic patients without hyperprolactinemia had a response. All of the patients had a normal cortisol response to insulin-induced hypoglycemia. Pretreatment with metoclopramide enhanced the CRH-induced cortisol increase from 30-120 min after CRH in normal men, but only at 15 and 30 min in 5 agromegalic patients. The results suggest that metoclopramide acts in the hypothalamus to release ACTH through a dopamine antagonist-mediated (catecholaminergic) mechanism, and that metoclopramide may act additively with CRH to stimulate ACTH secretion in normal men. The absence of a metoclopramide-induced cortisol response in patients with acromegaly or prolactinomas and the absence of a normal cortisol response to metoclopramide-CRH in acromegalic patients could be due to endogenous catecholamine deficiency in these patients.

Acromegaly↗

Treatment of acromegaly with the long-acting somatostatin analog SMS 201-995.

Current treatment of acromegaly (surgery, radiation, and bromocriptine) is often unsatisfactory, and a sizeable proportion of patients with this disease continue to have GH hypersecretion after all therapeutic modalities have been exhausted. Fifteen patients with active acromegaly (8 previously treated and 7 newly diagnosed) were treated with the long-acting somatostatin analog SMS 201-995 (Sandoz; 50-250 micrograms, sc, every 6-8 h for up to 21 months). The mean daily plasma GH concentration was significantly suppressed in 13 patients, and it became normal in 10. Two patients, however, did not have GH suppression by SMS 201-995 treatment alone; in 1, a significant decline in mean daily GH was achieved after the addition of bromocriptine. As expected, suppression of GH secretion was associated with normalization of plasma somatomedin-C values and significant clinical improvement. Plasma GH responses to synthetic GHRH-(1-44) and TRH were either abolished or blunted by SMS 201-995. Thyroid function remained normal, and glucose tolerance did not change. Significant shrinkage of pituitary tumors occurred in 7 previously untreated and 2 previously treated patients. Side-effects were minimal. SMS 201-995 is an effective agent for the treatment of acromegaly. Further studies are necessary to establish guidelines for identification of non-responders and to examine the effect of preoperative tumor shrinkage on subsequent surgical outcome.

Acromegaly↗