Clinical implications of somatostatin-receptor scintigraphy in ophthalmic Graves' disease.
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In recent years important progress has been made in the management of acromegaly due to the availability of effective and well tolerated drugs and to improved surgical techniques, resulting in a broader choice of therapeutic interventions. Although surgery in the hands of an experienced surgeon still represents the primary option for the majority of patients, the new formulations of somatostatin analogues and dopamine agonists have partially modified the primary therapeutic approach to this severe and disabling chronic disease. Therapy with somatostatin analogues has been shown to reduce morbidity and the mortality rate in patients with acromegaly, and currently in some patients this medical approach may be preferable to surgery. Although in selected patients individualised pharmacotherapy might represent the primary therapy, trans-sphenoidal surgery of microadenomas and noninvasive macroadenomas remains the primary option, since the remission rate is very high and the costs are relatively low in comparison with lifelong therapy with somatostatin analogues. However, the treatment schedule in acromegaly should consider criteria additional to tumour size and invasiveness, such as the age and the general clinical condition of the patient. Presurgical treatment with somatostatin analogues has been reported to reduce surgical complications and time of hospitalisation after the operation. Moreover, a multidisciplinary team of well trained specialists is needed in order to guarantee the most optimal quality of life and life expectancy for patients with acromegaly.
The aim of this study was to compare the pituitary (111)In-DTPA-D-Phe1-octreotide uptake measured in 49 patients subjected to the scintigraphy for SS-R expressing tumors not located in the sellar region with that measured in 38 patients with pituitary adenomas. The 87 subjects enrolled in this study were divided into two groups: the first included SSR-expressing tumors (SS-ET), 10 thymomas, 13 differentiated thyroid carcinomas, 4 carcinoids, 5 neuroendocrine tumors, 5 insulinomas, 6 melanomas, 2 renal carcinomas, 2 pheocromocytomas, and 2 parathyroid tumors, while the second included pituitary adenomas, 25 GH-secreting, 4 GH/PRL-mixed and 9 clinically nonfunctioning adenomas (NFA). Planar and single-photon-emission tomography images of the head were obtained 2-4 and 24 hours after the injection of 77-103 MBq of (111)In-DTPA-D-Phe1-octreotide and pituitary uptake was measured by the region of interest method. A 4 point score was used to grade the pituitary-to-blood (T-to-B) ratios: 0=negative; 1 =faint (T-to-B=<1.5); 2=moderate (T-to-B=1.6-3.5); 3=intense (T-to-B=>3.5). In patients with pituitary adenomas, the percent suppression of GH and alpha-subunit levels after 6-12 months of octreotide treatment (0.3-0.6 mg/day) was correlated to T-to-B ratios. After 2-4 hr from injection, pituitary (111)In-DTPA-D-Phe1-octreotide uptake was moderate/intense in 2 out of 49 SS-ET (4%), 18 out of 29 acromegalics (62%) and 6 NFA (66.6%), while a faint uptake was detected in 4 SS-ET (8%), 8 GH-secreting adenomas (27.5%) and 3 NFA (33.3%). Negative scan was detected in the remaining 43 SS-ET (87.7%) and 3 GH-secreting microadenomas (10.3%). 24 hr after injection, pituitary (111)In-DTPA-D-Phe1-octreotide uptake was moderate/intense in SS-ET (10.2%), 21 GH-secreting adenomas (72.4%), and 9 NFA (100%) while a faint uptake was detectable in 15 SS-ET (30.6%), and 6 GH-secreting adenomas (20.7%). No uptake was visualized in 29 SS-ET, and 2 GH-secreting adenomas. By MRI a pituitary tumor was shown in the 2 SS-ET with early moderate tracer uptake. Normalization of circulating GH/IGF-I levels and suppression of alpha-subunit levels was achieved in 16 of 18 acromegalics (88.9%) and 5 of 6 NFA-bearing patients, respectively, with scan scored 2-3 at early images. Eleven acromegalics (37.9%) and 2 NFA (22.2%) displayed significant tumor shrinkage (> or =30% of baseline size) during long-term octreotide therapy. Both in GH-secreting and in NFA, a significant correlation was found between percent GH or alpha-subunit suppression after 6-12 months of octreotide therapy and T-to-B ratios both in early (r=0.626; p<0.0001 and r=0.738, p=0.003, respectively) and late images (r=0.569; p=0.002 and r=0.8, p=0.01, respectively). In conclusion, the (111)In-DTPA-D-Phe1-octreotide uptake in pituitary adenomas was significantly correlated to octreotide treatment. However, since pituitary (111)In-DTPA-D-Phe1-octreotide uptake was clearly detectable in 40% of patients with SS-ET not located in the pituitary region at 24 hr post-injection, (111)In-DTPA-D-Phe1-octreotide scintigraphy with late pituitary images can not be considered an useful method to predict the chronic responsiveness to octreotide in individual patients. Caution should also be taken in evaluating the results of the scintigraphy with early images in patients with scant uptake before excluding them from treatment.
This single-center open sequential study aimed at comparing the efficacy of a 6-month treatment with lanreotide (LAN) (60-90 mg/month i.m.), to that of octreotide (OCT) (0.3-0.6 mg/day s.c.) in 45 patients with active acromegaly (GH, 63.2+/-12.1 ng/ml, IGF-I, 757+/-67.1 ng/ml). After 6 months of OCT treatment, safe GH (fasting <2.5, glucose suppressed <1 ng/ml) and IGF-I (normalized for age) levels were achieved in 23 patients. After treatment withdrawal, GH levels significantly increased in all patients, though remaining slightly lower than pre-OCT therapy (39.2+/-5.8 ng/ml) while plasma IGF-I levels were unchanged (654+/-59.4 ng/ml). After 6 months of LAN treatment, safe GH and IGF-I levels were achieved in 26 patients (57.7%). After OCT or LAN treatments, no significant difference was found between nadir GH (6+/-1 vs 5.9+/-1.1 ng/ml) and IGF-I levels (281+/-23.3 vs 262+/-20.6 ng/ml). Four out of the 20 patients poorly responsive to OCT achieved safe GH and IGF-I levels after LAN treatment. Among the 20 non-operated patients, a significant tumor shrinkage was documented by CT and/or MRI in 5 patients after OCT and in 1 patient after LAN treatment. All patients referred a notable improvement of soft tissue swelling, arthralgia, headache and weakness, both after OCT and LAN treatments. During the first days of OCT treatment, abdominal discomfort was referred by 12 patients and steatorrhea by 5 patients: side effects disappeared spontaneously in 6 cases while during treatment with pancreatic enzymes in the remaining ones. After the first injections of LAN, abdominal discomfort was referred by 10 patients and steatorrhea by 2 of them. No difference in the prevalence of both early and late side effects was noted after treatment with OCT and LAN (chi2, 0.49). The majority of these poorly tolerant patients had side effects with both compounds. During LAN treatment, side effects were mild and spontaneously disappeared but recurred after the injection of the drug in six patients. Gallstones were detected in one patient during OCT and in another during LAN, sludge was noted in 6 patients after OCT and in 2 after LAN treatment. In conclusion, the treatment with LAN allowed to achieve safe GH and IGF-I levels in 57.7% of acromegalics with an excellent patients' compliance. LAN treatment possessed similar efficacy and caused side effects with a similar incidence of OCT treatment. The recurrence of side effects after LAN injection suggests the necessity of a careful monitoring of adverse reactions.
The aim of this study was to evaluate the efficacy of a 6-month treatment with lanreotide (LAN) (60-90 mg/month) alone and combined with cabergoline (CAB) (1.5-3 mg/week) in 10 acromegalic patients previously demonstrated to be poor responders to octreotide (OCT) (0.6 mg/day) alone and combined with quinagolide (CV) (0.6 mg/day). All patients had previously undergone unsuccessful surgery and none of them received radiotherapy. Immunohistochemistry showed intense positive GH staining in all adenomas, positive PRL staining in 5 adenomas and faint ACTH or FSH/LH positive staining in other 2 adenomas. Moderately elevated serum PRL levels (35 and 47 ng/ml) were recorded in two patients. Fasting plasma IGF-I and serum GH levels were assayed at baseline and 30, 60, 90 and 120 days after each treatment. Gallbladder ultrasonography and sellar MRI were performed before and after 6 months of OCT and LAN treatments. After OCT treatment circulating GH and IGF-I levels remained elevated in all patients, while after 3 months of combined OCT + CV treatment, serum GH levels were suppressed (below 2.5 ng/ml) in only 1 patient. Significant increase of the percent GH (83.9 +/- 4.3 vs. 70.3 +/- 5.6%, p < 0.01) and IGF-I suppression (54 +/- 4.4 vs. 45.3 +/- 5.7, p < 0.01) and decrease of the nadir of GH (8.5 +/- 1.2 vs. 14.6 +/- 1.9 ng/ml, p < 0.01) and IGF-I (400.9 +/- 32.8 vs. 462.1 +/- 45.1 ng/ml) were obtained with the combined treatment when compared to OCT treatment alone. After a 15-30 days wash-out, circulating GH and IGF-I levels significantly increased up to pretreatment level in all patients. After 6 months of treatment with LAN, suppression of serum GH was achieved in 1 patient, but no difference in GH (66.3 +/- 6.3%) and IGF-I (43.9 +/- 4.6%) suppression was recorded in comparison to OCT treatment. After 3 months of treatment with LAN combined with CAB, suppression of serum GH and normalization of plasma IGF-I levels was achieved in 4 and 5 patients, respectively. Percent suppression of GH (88.1 +/- 2.1%) and IGF-I (57.5 +/- 2.8%) was significantly greater with the combined treatment than with LAN treatment alone. In the 7 patients with evident residual mass no change was documented by magnetic resonance imaging (MRI). None of the patients withdrew LAN + CAB treatment for poor tolerance, one patient had mild hypotension. Sludge was shown after 6 months of LAN treatment in one patient without notable change after 3 months of LAN + CAB treatment. In conclusion, the treatment with dopaminergic drugs such as CV and CAB, significantly increased the efficacy of somatostatin analogs, and can be used in combined therapy in poorly responsive patients.
OBJECTIVE: We analysed the effects of 6-months' treatment with octreotide s.c. and lanreotide-SR on circulating GH and IGF-I levels in acromegaly. DESIGN: Open retrospective study. PATIENTS: Thirty-eight patients with active acromegaly (plasma IGF-I levels greater than 2 standard deviations for age-matched controls and increased serum GH levels not suppressible by oral glucose load) were studied. All patients received s.c. octreotide at a dose of 150-600 microg/day for six months as first therapy and subsequently, lanreotide i.m., 30-60 mg either at 14 or 10 day intervals, for 6 months. A 3 months' washout was applied before starting lanreotide treatment. MEASUREMENTS: Mean serum GH levels (from three samples), IGF-I, and clinical examination were performed before and 30, 60, 90 and 180 days after octreotide and lanreotide treatments. Safety tests, HbA1c and, thyroid function were evaluated every three months. RESULTS: Circulating GH and IGF-I levels were significantly reduced (P < 0.001) after one, three and six months of both octreotide and lanreotide treatment. The absolute values were lower and the percent decrease in serum GH levels obtained after octreotide treatment was significantly greater, at all scheduled assessments, than after lanreotide (P < 0.01). Serum IGF-I levels during octreotide were significantly lower only after the first month of therapy (P < 0.01). CONCLUSIONS: Our study shows that octreotide s.c. is able to induce an earlier reduction in IGF-I levels and a more marked reduction in GH levels than lanreotide. However, after six months of therapy the number of patients with safe GH levels and normal IGF-I age-matched levels, was similar with both drugs. Therefore we suggest that octreotide treatment be preferentially used in the short-term presurgical treatment, while lanreotide can be used in chronic therapy when better compliance is necessary.
BACKGROUND: A major cause of morbidity and functional disability in acromegaly is represented by axial and peripheral arthropathy. OBJECTIVE: The effect of a 12-month treatment with lanreotide (LAN) on arthropathy in 12 untreated acromegalic patients has been evaluated. Twelve healthy subjects served as controls. STUDY DESIGN: Open prospective. STUDY PROTOCOL: Articular cartilage thickness of shoulder, wrist and knee, as well as the size of the heel tendons, was measured by ultrasonic (USG) examination before, monthly for the first 3 months and quarterly thereafter, during treatment with 60-90 mg/month of LAN. The achievement of safe GH and IGF-I levels was considered when fasting GH was below 5 mU/l and IGF-I levels were normalized for age. RESULTS: Before treatment, thickening of shoulder, wrist and knee cartilages, and of heel tendons, was found in all patients compared with controls (P < 0.01). During the first 3 months of LAN treatment, a significant decrease in circulating GH (from 86.8 +/- 19.8 to 25.6 +/- 9.8 mU/l) and IGF-I levels (from 624 +/- 47.8 to 412.2 +/- 44.5 microg/l) was observed. Overall, a slight decrease was noted in all the articular sites examined, but it reached statistical significance only at the right shoulder (P < 0. 001). However, a notable improvement of joint pain and active and passive articular mobility were recorded in all patients, as well as of weakness, soft tissue swelling, hyperhydrosis and headache. After 6 months of LAN treatment, a further significant decrease was observed at the level of the right shoulder (P < 0.01) and the right knee (P < 0.01). Eight patients achieved safe GH and IGF-I levels. After 12 months of LAN treatment, a significant decrease was observed at the level of all the articular sites examined (P < 0.01), as well as at the level of both heel tendons (P < 0.01). Safe GH and IGF-I levels were achieved in all but one of the patients who, similarly, had a significant decrease in shoulder, wrist and both heel tendon thicknesses. The thickness reduction of right shoulder cartilage, a non-weight-bearing joint, was significantly greater than that observed at the level of the right and left knee cartilages and heel tendons (37.4 +/- 4.4% vs. 18 +/- 6.1%, 19.3 +/- 4.4%, 16.5 +/- 4.2%, and 13.7 +/- 5.5%, respectively, P < 0.01). No difference was found in thickness decrease of all sites examined between the eight patients achieving safe GH levels after 3-6 months, and the remaining four patients, or between patients with estimated disease duration below (n = 6) or above 10 years (n = 6). CONCLUSIONS: Improvement in articular and periarticular soft tissue hypertrophy of the shoulder and wrist, two non-weight-bearing joints, but also of the knees, two weight-bearing joints, and heel tendons, was obtained by suppressing GH and IGF-I levels for 12 months with LAN treatment, although complete reversal of joint thickening was not achieved. Since no difference in the response to treatment, in terms of joint size decrease, was found between patients with short or long disease duration, treatment longer than 12 months may be needed to reverse the acromegalic arthropathy completely.
Somatostatin (SS) and its analogs exert inhibitory effects on secretive and proliferative processes of various cells via high affinity SS receptors (SS-R). SS analogs bind with different affinity to the five cloned SS-R subtypes. Octreotide, an octapeptide SS analog, binds with high affinity to the SS-R subtype 2 (sst2). SS-R have been demonstrated in vivo and in vitro on cells from endocrine and immune systems. Among the lymphatic tissues, the thymus has been shown to contain the highest amount of SS, suggesting a local functional role of the peptide. We investigated the SS distribution and SS-R expression pattern in the normal human thymus using autoradiography, membrane homogenate binding studies, and RT-PCR. In addition, the effect of SS and octreotide on growth of cultured thymic epithelial cells (TEC) was studied. By autoradiography, binding of [125I-Tyr0]-SS-28 and [125I-Tyr3]-octreotide was detected in all seven thymuses studied. Specific [125I-Tyr3]-octreotide binding was shown on membrane preparations from thymuses, while not from cultured thymocytes. RT-PCR showed the expression of sst1, sst2A and sst3 messenger RNA (mRNA) in the thymic tissue, whereas sst1 and sst2A mRNAs were found in isolated TEC. SS mRNA was present in thymic tissue and in isolated TEC. SS and octreotide significantly inhibited 3H-thymidine incorporation in 3 of 3 and 6 of 6 TEC cultures, respectively. The percent inhibition ranged from 38.8 to 66.8% for SS and from 19.1 to 59.5% for octreotide. In conclusion, SS mRNA and sst1, sst2A, and sst3 mRNAs are expressed in the normal human thymus. Cultured TEC selectively express sst1 and sst2A mRNA and respond in vitro to SS and octreotide administration with an inhibition of cell proliferation. These data suggest a paracrine/autocrine role of SS and its receptors in the regulation of cell growth in thymic microenvironment.
The aim of the study was to investigate the effects of 1-yr treatment with octreotide (OCT) on left ventricular diastolic and systolic function, assessed at rest and during physical exercise by gated blood pool cardiac scintigraphy, in 30 patients with active acromegaly. OCT was initially given at a dose of 0.05-0.1 mg, 3 times daily, and the dose was subsequently increased to achieve GH/insulin-like growth factor I (IGF-I) normalization. Hormone normalization after treatment was considered when basal and/or oral glucose test-suppressed GH values were below 2.5 and 1 microg/L, respectively, and IGF-I values were within the normal range for age. To evaluate the response to OCT treatment in terms of cardiac performance, the 30 patients were divided into 2 groups on the basis of normalized (in 13 patients) or nonnormalized (in 17 patients) circulating GH and IGF-I levels. At study entry, hypertension was found in 6 patients (20%), abnormal left ventricular diastolic filling was found in 12 patients (40%), and impaired left ventricular ejection fraction was found in 2 patients at rest (6.6%) and in 18 patients at peak exercise (60%). Before OCT treatment, exercise duration ranged from 6-10 min, and exercise workload ranged from 50-125 watts. After 1-yr treatment with OCT, a significant decrease in circulating GH and IGF-I levels was achieved in all patients, but normalization was obtained only in 13 of 30 patients. In patients achieving circulating GH and IGF-I normalization after OCT treatment but not in those with persistently elevated hormone levels, a significant decrease in heart rate, both at rest (from 75.7 +/- 3.3 to 66.5 +/- 2.9 beats/min; P < 0.01) and after exercise (from 137.5 +/- 4.9 to 123.7 +/- 4.1 beats/min; P < 0.01), and a significant increase in left ventricular ejection fraction, both at rest (from 56.5 +/- 1.8% to 66.5 +/- 2.2%; P < 0.01) and after exercise (from 52.6 +/- 2.4% to 67.1 +/- 1.7%; P < 0.01), were found. In the 17 patients who had persistently high circulating GH and IGF-I levels after 1 yr of OCT treatment, left ventricular ejection fraction was unchanged at rest but was significantly reduced after exercise compared to the basal value (from 64.9 +/- 2.4% to 57.2 +/- 2.6%, P < 0.01); systolic blood pressure at rest was significantly increased (from 128.5 +/- 4.9 to 141.2 +/- 5.4 mm Hg; P < 0.05). In these 17 patients, the ejection fraction response to exercise was significantly impaired, mostly in those less than 40 yr of age (from 11.6 +/- 3.2% to -0.3 +/- 5.6%; P < 0.05). In particular, among 9 patients who had a normal response to exercise at study entry, 6 developed an abnormal response after 1 yr. Left ventricular diastolic filling was unchanged by OCT treatment in all patients. Exercise duration (only in young patients from 7.5 +/- 0.5 to 9.3 +/- 0.7 min; P < 0.05) and exercise workload (in all 13 patients from 80.8 +/- 6.4 to 92.3 +/- 5.9 watts; P < 0.05) were significantly increased in the group of patients with normalized GH and IGF levels, but not in the remaining 17 (from 7.6 +/- 0.4 to 7.5 +/- 0.4 min and from 89.9 +/- 5.5 to 84.4 +/- 4.5 watts, respectively). In conclusion, the results of the present study indicate that suppression of basal or glucose-suppressed GH levels below 2.5 or 1 microg/L, respectively, together with normalization of plasma IGF-I levels for 1 yr are followed by a significant improvement, but not complete normalization, of left ventricular ejection fraction either at rest or at peak exercise without significant changes in diastolic filling. By contrast, the persistence for 1 yr of elevated hormone levels caused a significant increase in systolic blood pressure and impaired cardiac performance. These data suggest that prolonged suppression of circulating GH and IGF-I levels could normalize cardiac performance and probably reverse the poor prognosis for cardiovascular disease in acromegaly.
The aim of this study was to evaluate the impact of age and disease duration on cardiac performance in acromegaly. To address these issues, the left ventricular function at rest and during physical exercise was assessed by equilibrium radionuclide angiography in 40 rigorously selected patients with active acromegaly but without evidence of other complications able to affect heart function and in 32 healthy controls. Patients and controls were divided in two groups, on the basis of age below and above 40 yr. Circulating GH and insulin-like growth factor-I levels were significantly increased in patients, compared with controls, but were similar in the two groups of patients. At peak exercise, the systolic blood pressure was significantly higher in elderly patients (P < 0.001), whereas diastolic blood pressure was significantly higher in young patients than in age-matched controls (P < 0.01). Heart rate at peak exercise was significantly higher in young than in elderly patients and controls (P < 0.01), without any evidence of arrhythmia in both groups. The left ventricular ejection fraction at rest was normal (>50%) in all but 2 patients and in all controls. The left ventricular ejection fraction at peak exercise was significantly decreased in elderly, compared with young, patients (P < 0.01) and in age-matched controls (P < 0.001). A normal response of the left ventricular ejection fraction to exercise was found in 12 of 40 patients (30%) and in 28 of 32 controls (87.5%) (chi2, 5.764; P < 0.01). Exercise-induced changes in left ventricular ejection fraction were significantly decreased in young (+5.2 +/- 4.4% vs. +21.3 +/- 3.4%, P < 0.005) and elderly patients (-10.2 +/- 2.8% vs. +13.7 +/- 2.7%, P < 0.0001), as compared with age-matched controls. The peak rate of left ventricular filling was significantly higher in young, than in elderly, patients whether peak filling rate was normalized to end-diastolic volume (P < 0.001), or stroke volume (P < 0.0001), or expressed as the ratio of peak filling rate to peak ejection rate (P < 0.001). The peak rate of left ventricular filling was significantly decreased in elderly patients, compared with young patients and age-matched controls, whether peak filling rate was normalized to end-diastolic volume (P < 0.01), or stroke volume (P < 0.005), or expressed as the ratio of peak filling rate to peak ejection rate (P < 0.001). In the patient group, the left ventricular ejection fraction at peak exercise was significantly correlated with age (r = -0.33, P < 0.05), estimated disease duration (r = -0.34, P < 0.05), exercise-induced changes of the left ventricular ejection fraction (r = 0.34, P < 0.05), and the peak rate of left ventricular filling, whether peak filling rate was normalized to end-diastolic volume (r = 0.33, P < 0.05). Age and estimated disease duration were both significantly correlated with the peak rate of left ventricular filling, whether peak filling rate was normalized to end-diastolic volume (r = 0.55, P < 0.001 and r = -0.49, P < 0.001, respectively), or stroke volume (r = 0.5, P < 0.001 and r = -0.57, P < 0.001, respectively), or expressed as the ratio of peak filling rate to peak ejection rate (r = 0.56, P < 0.0001 and r = -0.52, P < 0.001, respectively). In the control group, the left ventricular ejection fraction at peak exercise was significantly correlated with the left ventricular ejection fraction at rest (r = 0.54, P < 0.01), exercise-induced changes of the left ventricular ejection fraction (r = 0.57, P < 0.001), but neither with age nor peak rate of left ventricular filling at all measurements. In conclusion, left ventricular performance is more frequently preserved in young patients with a short disease duration, although the left ventricular response to exercise was already reduced, as compared with controls. (ABSTRACT TRUNCATED)
The role of insulin-like growth factor I (IGF-I) in prostate development is currently under thorough investigation because it has been claimed that IGF-I is a positive predictor of prostate cancer. To assess the effect of GH and IGF-I levels on prostate pathophysiology, 46 acromegalic (30 in active disease, 10 cured from acromegaly, and 6 affected from GH deficiency) and 30 age-matched male controls, free from previous or concomitant prostate disorders, underwent pituitary, androgen, and prostate hormonal assessments and transrectal ultrasonography. Compared to control values, GH (P < 0.0001), IGF-I (P < 0.0001), and IGFBP-3 (P < 0.001) levels were increased, whereas testosterone (P < 0.0001) and dihydrotestosterone levels (P < 0.0001) were reduced in active acromegalic patients. Hypogonadism was present in 28 of the 46 acromegalic patients (60.8%). The anteroposterior (P < 0.05), and transverse (P < 0.0001) prostate diameters and the transitional zone volume (P < 0.05) were increased in acromegalic patients compared to those in controls. Prostate volume (PV) was significantly higher in untreated acromegalic patients than in controls (41.7 +/- 3.2 vs. 21.9 +/- 1.4 mL; P < 0.0001), cured patients (23.6 +/- 1.6 mL; P < 0.0001), and GH-deficient patients (17.5 +/- 1.1 mL; P < 0.0001). In the patients, PV was correlated with disease duration (r = 0.606; P < 0.0001) and age (r = 0.496; P < 0.0001), whereas in controls it was correlated with age (r = 0.476; P < 0.01) and IGF-I levels (r = -0.448; P < 0.05). Benign prostate hyperplasia (PV > or = 30 mL) was found in 58% of the acromegalics and 26.6% of the controls. When grouped by age (<40, 40-60, and >60 yr), PV was increased in elderly patients compared to younger patients (P < 0.05) and to controls (P < 0.01). The prevalence of structural abnormalities, including calcifications, nodules, cysts, and vesicle inflammation, was significantly increased in patients compared to controls (78.2% vs. 23.3%; chi2 = 5.856; P < 0.05). No clinical, transrectal ultrasonography, or cytological evidence of prostate cancer was detected in acromegalic or control subjects. In conclusion, chronic excess of GH and IGF-I cause prostate overgrowth and further phenomena of rearrangement, but not prostate cancer.
Patients with Cushing's disease (CD) mainly die because of cardiovascular accidents. The aim of this study was to evaluate whether patients with CD still have increased cardiovascular risk and suffer from premature atherosclerosis once cured. Fifteen patients cured from CD for a long term period (5 yr), 30 sex-and age-matched controls, and 30 body mass index (BMI)-matched controls were included in this study. BMI; waist to hip ratio (WHR); systolic (SBP) and diastolic (DBP) blood pressures; serum total, low density lipoprotein (LDL), and high density lipoprotein (HDL) cholesterol; serum triglycerides, fibrinogen, and lipoprotein(a) levels; prothrombin time; activated partial thromboplastine time; and basal and glucose load-stimulated insulin and glucose levels were measured in patients and controls. By echo-Doppler ultrasonography, the intima media thickness (IMT), systolic and diastolic media-media distances, blood systolic (SPV) and diastolic (DPV) peak velocity, systolic (SLD) and diastolic (DLD) lumen diameter, and distensibility coefficient (DC) were measured at both common carotid arteries where the presence, size, and location of atherosclerotic plaques were also evaluated. Compared with a sex- and age-matched control population, CD patients had BMI (P < 0.001), WHR (P < 0.001), SBP (P < 0.005), DBP (P < 0.05), fasting glucose (P < 0.001) and insulin (P < 0.05), glucose load-stimulated glucose and insulin levels (P < 0.05), total cholesterol (P < 0.05), LDL cholesterol (P < 0.01), fibrinogen (P < 0.01), and lipoprotein(a) (P < 0.05) levels higher and HDL cholesterol levels (P < 0.05) lower than controls. At ultrasonography, in the patients, IMT (P < 0.05), SPV (P < 0.05) and DPV (P < 0.001) were significantly increased whereas SLD (P < 0.001), DLD (P < 0.001), and DC (P < 0.05) were significantly decreased compared to controls. In addition, CD patients had higher WHR (P < 0.05), DBP (P < 0.05), glucose load-stimulated glucose and insulin levels (P < 0.05), and fibrinogen levels (P < 0.01) and lower HDL cholesterol (P < 0.05) levels than BMI-matched controls. At ultrasonography, increased common carotid arteries IMT (P < 0.05) and DPV (P < 0.05) and decreased DLD (P < 0.05) and DC (P < 0.05) were measured in patients compared to those in BMI-matched controls. Atherosclerotic plaques were found in 26.7% of patients, in none of the sex- and age-matched controls, and in 3.3% of the BMI-matched controls. In CD patients, a significant correlation was found between both WHR and fasting serum insulin levels and DBP (r = 0.52 and r = 0.55; P < 0.05), triglycerides levels (r = 0.56 and r = 0.77; P < 0.05), and IMT (r = 0.64 and r = 0.56; P < 0.05). Right (r = -0.70; P < 0.005) and left (r = -0.65; P < 0.01) DC were inversely correlated to the duration of CD in the patient group. At the multiple regression analysis, WHR was the best predictor of fasting insulin levels (beta = 0.77; P < 0.05), and vice versa, fasting insulin level was the best predictor of WHR (beta = 1.20; P < 0.05). In conclusion, patients cured from CD for a long term period have a high prevalence of atherosclerosis and maintain increased several cardiovascular risk factors of the active disease, probably due to a residual abdominal obesity and/or insulin resistance syndrome.
Neuropeptides and their receptors are produced and expressed by neuroendocrine tissues and function as neurotransmitters and/or mediators of well-defined hormonal activities in specific tissues and cells. However, neuropeptides and their receptors are also found in the immune system, and various neuropeptides are involved in both systems. In this review we discuss the role of two of these neuropeptides, somatostatin and substance P, with regard to their receptor expression in the human immune system and their role in the diagnosis and treatment of immune-mediated diseases.
The thymus is the primary lymphoid organ where different factors participate in regulating the proliferation and differentiation of T cells. The thymic epithelium is the main cellular component in driving the maturation of thymocytes through cell-to-cell and extracellular matrix-mediated interactions. Thymic hormones and cytokines play a critical role in the proliferation, differentiation and selection of precursor cells along the T-cell lineage. However, other locally produced hormones and neuropeptides participate in thymic functions in an autocrine and paracrine manner. Some of them have well-characterized actions, whereas somatostatin (SS), although it has been identified, has not been investigated in detail. SS inhibits hormone and exocrine secretion, modulates neurotransmission and inhibits cell proliferation. The biological effects of SS are mediated through five G protein-coupled membrane receptor subtypes (sst1-5). SS receptors (SS-R) have been demonstrated in normal tissues and tumours at the protein and mRNA levels. Sst2 mRNA has been detected in the murine thymus, whereas sst3 and sst4 mRNAs are expressed in the rat immune system. The significance of the presence of specific SS-R subtypes remains to be clarified. Moreover, the activation of lymphoid cells seems to modify their SS-R expression pattern. SS, sst1, sst2A and sst3 mRNAs have been found in normal human thymic tissue, whereas enriched cultured thymic epithelial cells (TEC) selectively express SS, sst1 and sst2A mRNAs. Furthermore, TEC respond in vitro to SS and octreotide by inhibiting cell proliferation. Immunoreactivity for sst2A has been detected primarily in the medulla, where TEC, dendritic cells and macrophages are the major components, in line with the predominant binding of the sst2 receptor-preferring ligand [125I-Tyr3]-octreotide in this region. The heterogeneous distribution of SS-R subtypes on specific cell subsets indicates that SS may play a paracrine and/or autocrine role in regulating cell activities in the thymus.
Aim of this study was to plot height, weight and height velocity values of primary school civic population of Portici and Ercolano, Campania towns, on Tanner's charts in order to verify the overlapping of percentile distribution. On May 1994 height and weight were measured in 3504 children (1735 boys and 1769 girls, aged 5.4-16.1 years, mean age = 8.6 years) from the 1st, 2nd and 5th year of primary schools in Portici and Ercolano. One year later, on May 1995, we remeasured and reweighed 1583 (781 boys and 802 girls, aged 6.4-14.2 years, mean age = 9.6 years) out of total children and we calculated height velocity (HV). The height and weight profiles of our population sample show that children in Portici and Ercolano are taller and fatter than those measured by Tanner and Whitehouse 25-30 years ago. The calculation of body mass index (BMI) confirmed that 30% of total children were obese. Furthermore, the evaluation of one-year HV revealed a clear improvement of linear growth. Our data suggest that Tanner and Whitehouse charts should be updated, and it should be useful to elaborate also height, weight and HV standards derived from present-day population.
Atrial natriuretic factor (ANF) was suggested to be involved as neurohormone in the modulation of hypothalamus-pituitary-adrenal axis in humans. However, this role is still controversial and widely discussed. In order to evaluate whether ANF is secreted in the hypothalamus-pituitary system in humans, plasma ANF concentrations were assayed in samples collected in the inferior petrosal sinus (IPS) blood of patients subjected to IPS sampling for diagnostic purposes or neurosurgical indications. In this retrospective study were included 22 patients: 10 with Cushing's disease (CD) and 12 patients with GH or PRL-secreting pituitary adenoma, used as control group. In the patients with CD, plasma ANF concentration was also assayed after CRH test (hCRH 100 micrograms as i.v. bolus with blood samples after 5, 10 and 15 min). Both in patients with CD and in patients with GH- or PRL-secreting pituitary adenoma, no significant difference was found in plasma ANF levels between IPS ipsilateral (13.0 +/- 1.5 and 12.2 +/- 1.2 pmol/l) or controlateral (13.0 +/- 1.6 and 12.2 +/- 1.4 pmol/l) to the adenoma and peripheral blood (14.2 +/- 2.0 and 13.7 +/- 1.5 pmol/l, respectively). Similarly, no difference was found between the IPS ipsilateral and controlateral to the adenoma in both groups of patients. In patients with CD, CRH administration induced a significant increase of ACTH levels (periphery: 34.9 +/- 6.2 vs 11.5 +/- 2.3 pmol/l, p < 0.05) but it did not induce any significant change of plasma ANF levels (14.0 +/- 2.0 vs 13.4 +/- 1.4 pmol/l in the ipsilateral IPS and 13.4 +/- 1.6 vs 13.4 +/- 1.5 pmol/l in the ipsilateral IPS and 13.4 +/- 1.6 vs 13.4 +/- 1.5 pmol/l in the contralateral IPS). In conclusion, the lack of ANF concentration gradient between IPS and peripheral blood, the lack of any difference in ANF concentrations between patients with CD and acromegalics or hyperprolactinemics and the absence of ANF response to CRH administration do not support the hypothesis of a role for ANF as neurohormone involved in the hypothalamus-pituitary control and particularly in the hypothalamus-pituitary-adrenal axis modulation in humans.
The effect of surgery alone or followed by radiotherapy in recovering visual abnormalities, debulking tumor mass and restoring hormone impairments was evaluated in 84 patients with clinical nonfunctioning pituitary adenomas (NFPA) subjected to 1-10 yr follow-up. All patients underwent surgery via transsphenoidal (in 69) or transcranic-pterional approach (in 15). Radiotherapy was performed after surgery in 59 of 72 patients with incomplete tumor removal. The assessment of pituitary function was performed in all patients before and every 1-2 yr after surgery and/or radiotherapy. Radiological and ophthalmologic assessment was performed before and 3, 6 and 12 months after surgery, then yearly. At diagnosis, headache and visual disturbances occurred in 63 and 58 patients, respectively, while deficiency of GH, TSH, ACTH, FSH, LH and ADH was documented in 55, 7, 19 47 and 6 patients, respectively. After surgery, gonadal function recovered in 12 women, visual disturbances improved in 43 patients (15 regained normal vision), pituitary function improved in 8 of 62 patients, worsened in 34 patients. At MRI, complete tumor removal was documented in 12 of 84 patients. After surgery alone, tumor regrowth was observed in 7 patients between 3-7 yr. After radiotherapy, vision improved in 9, remained unchanged in 49 and worsened in 1 of 59 patients. After radiotherapy, tumor regrowth was documented in 9 patients between 2-12 yr and the prevalence of hypopituitarism raised from 28.8% to 92% after 1 and 10 yr. In conclusion, surgery alone is effective only in a minority of patients (14.3%) and radiotherapy causes hypopituitarism in rather the totality of patients after 10 yr. The prevalence of tumor regrowth was similar in irradiated ones (15%) and non irradiated patients (28%; chi(2), p = 0.4). Therefore, a careful radiological followup is suggested after surgery so that radiotherapy can be performed promptly on the basis of clinical data, tumor regrowth and/or invasiveness documented at histology.
Acromegalic patients present an increase of osteoblastic and osteoclastic activity, showing a different effect on the axial and appendicular skeletal structures. At this regard controversial data about bone mineral density (BMD) have been published in literature. In fact an increase of BMD levels in femoral neck and Ward's triangle without any difference in lumbar spine has been described. On the other hand normal BMD levels at forearm and reduced BMD levels at lumbar spine were found. These patients seem to have a reduction of trabecular BMD similar to postmenopausal osteoporotic patients despite normal or slightly elevated cortical BMD. Recently, it has been described that cytokines, in particular tumor necrosis factor-alpha (TNF-alpha) and interleukin-1 (IL-1), are implicated in the pathogenetic mechanism of postmenopausal osteoporosis. Taking into account that growth hormone (GH) can increase TNF-alpha and IL-1 secretion by mononuclear blood cells, the evaluation of possible relationship between the reduced BMD at lumbar spine and circulating cytokines levels was carried out in acromegalic patients. In addition we evaluated the effect of acute octreotide administration on serum TNF-alpha and IL-I concentrations. Eleven patients with active acromegaly and eleven healthy age-, sex-, weight- and heightmatched subjects were enrolled in this study. BMD was significantly reduced at lumbar spine (0.80 +/- 0.29 g/cm2 vs 1.02 +/- 0.11 g/cm2; p < 0.01), but not at femoral neck level or at Ward's triangle level (0.92 + 0.15 g/cm2 vs 0.97 + 0.11 g/cm2, p = NS; and 0.74 +/- 0.16 g/cm2 vs 0.85 +/- 0.1 g/cm2, p = NS) when compared to controls. Baseline serum levels of TNF-alpha and IL-1 were in the normal range both in patients and controls. After acute octreotide administration, no differences in circulating TNF-alpha and IL-1 levels were found. In conclusion, acromegalic patients present a reduced BMD at lumbar spine but not at femoral neck level and Ward's triangle. Circulating cytokines such as TNF-alpha and IL-1 are in the normal range. These data suggest that cytokines are not involved in the pathogenesis of GH-excess induced osteoporosis. The possibility that the GH excess might affect bone turnover inducing an increase of cytokines acting by a paracrine/autocrine mechanism cannot be ruled out.