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Plasma insulin-like growth factor-I/somatomedin-C in acromegaly: correlation with the degree of growth hormone hypersecretion.

We measured plasma insulin-like growth factor I/somatomedin-C (IGF-I/SmC) concentrations and mean 24-h GH secretion serially before and during therapy with the long-acting somatostatin analog SMS 201-995 in 21 patients with acromegaly. When mean plasma GH was elevated above 12.0 +/- 0.6 (+/- SE) micrograms/L, plasma IGF-I/SmC concentrations were uniformly high, but a decline of mean plasma GH below this value was accompanied by a linear decrease in IGF-I/SmC concentrations (r = 0.89; P less than 0.001). Even mildly abnormal mean GH concentrations (greater than 4.6 but less than 10 micrograms/L) were accompanied by high plasma IGF-I/SmC values. The log dose-response interrelation between mean 24-h plasma GH and IGF-I/SmC concentrations was linear (r = 0.86; P less than 0.001). We conclude that 1) an excellent log dose-response correlation between mean 24-h plasma GH and IGF-I/SmC concentrations is present in patients with acromegaly; 2) normalization of plasma IGF-I/SmC occurs only in patients with mean daily GH output within the normal range; and 3) determination of plasma IGF-I/SmC is an accurate indicator of normalcy of GH secretion and should be used in the diagnosis of active acromegaly as well as in monitoring the progress of therapy.

Acromegaly↗

Comparison of the sensitivity of growth hormone secretion to somatostatin in vivo and in vitro in acromegaly.

Somatostatin (SRIH) sensitivity in acromegaly was evaluated in vivo by comparing the inhibition of GHRH (1 microgram/kg, iv)-stimulated GH secretion in eight acromegalic and six normal subjects. A SRIH infusion (50 micrograms/h) that inhibited the mean plasma GH response to GHRH by 74 +/- 5% (+/- SE) in normal subjects had no significant effect in the acromegalic patients. However, when two acromegalic patients in whom SRIH had no suppressive effect were excluded from the analysis, the effect of SRIH in the other six (82 +/- 7%) was comparable to that in the normal subjects. Within the acromegalic group, the percent suppression of basal and GHRH-stimulated GH secretion was inversely correlated with both basal plasma GH (r = -0.751; P = 0.03 and r = -0.727; P = 0.04, respectively) and insulin-like growth factor I (r = -0.800; P = 0.02 and r = -0.727; P = 0.04, respectively) concentrations. The in vitro sensitivity to SRIH was studied in pituitary adenomas from five of the acromegalic patients in 3- to 4-day monolayer cultures of dispersed cells. The SRIH IC50 values were lowest in the tumors (8.6-44 pmol/L) from the three patients who had in vivo SRIH sensitivity (suppression of GHRH-stimulated GH secretion) comparable to that in the normal subjects. The IC50 values were higher in the tumors (150 and 21,000 pmol/L) from the two patients that were least responsive to SRIH in vivo. These results indicate that there is considerable variability of SRIH sensitivity in patients with acromegaly. Although the role of this defect in the pathogenesis of acromegaly is uncertain, it may be an important determinant in the degree of elevation of plasma GH levels.

Acromegaly↗

Thyroid volume and serum thyroglobulin levels in patients with acromegaly: correlation with plasma insulin-like growth factor I levels.

The pathogenesis of the goiter that is frequently found in patients with acromegaly is not known. Using ultrasonic scanning, we measured thyroid volume in 17 euthyroid patients with acromegaly and examined the relationships among thyroid size, plasma GH and insulin-like growth factor (IGF-I) levels, and serum thyroglobulin (TG) levels. The mean estimated thyroid volume in these 17 patients was 32.8 +/- 15.5 (+/- SD) mL, significantly larger than that in normal subjects (15.4 +/- 3.1 mL), and 64.7% of the patients had multinodular goiter, as identified by ultrasonography. Thyroid volume was positively correlated with plasma GH and IGF-I levels and heel-pad thickness, but not with the serum TSH level. In 7 patients, thyroid volume decreased in association with a decline in plasma GH and IGF-I levels after surgical treatment. The serum TG level was elevated in 7 of the 15 patients in whom it was measured, and the mean value was 51.7 +/- 62.7 (+/- SD) micrograms/L (normal, 12.6 +/- 6.4 micrograms/L). We found no correlations among the serum TG and TSH levels, plasma GH and IGF-I concentrations, and/or thyroid volume. However, serum TG decreased after surgical treatment, just as did plasma IGF-I. These observations together with the results of recent in vitro studies by others suggest that IGF-I is one of the factors involved in goiter formation, but the elevated serum TG levels in acromegaly are controlled not only by IGF-I but also by other factors.

Acromegaly↗

Octreotide stimulates insulin-like growth factor binding protein-1 (IGFBP-1) levels in acromegaly.

Insulin-like growth factors (IGFs) circulate in a complexed state with several binding proteins (BPs). Of these, IGFBP-1 is regulated by hormonal and nutritional factors. The somatostatin analogue, octreotide, has been used to effectively control hypersomaototropism in acromegaly. IGFBP-1 levels were measured by RIA in 17 acromegalic patients receiving octreotide. Serum hormone sampling was conducted hourly for 8 hr periods. Among 13 octreotide responders, mean pre-treatment basal GH, IGF-1, and IGFBP-1 levels were 19 +/- 5 micrograms/L, 1021 +/- 168 micrograms/L, and 36 +/- 8 micrograms/L respectively. One month following octreotide treatment, an acute subcutaneous injection (100 micrograms) maximally attenuated GH to 3 +/- 0.6 microgram/L (18% of control, P less than 0.03) and IGF-1 to 467 +/- 75 micrograms/L (46% of control, P less than 0.008) after 4 hrs. IGFBP-1 levels, however, were stimulated to 95 +/- 16 micrograms/L (297% of control, P less than 0.003) during the same time period. A significant increase in IGFBP-1 levels occurred within 2 hrs (158% of baseline, P less than 0.03), and was sustained until the 7th hr following injection. Insulin, a known suppressor of IGFBP-1, did not change during this time. Among the 4 octreotide non-responders, mean basal IGFBP-1 levels were 42 +/- 4 micrograms/L, and 4 hrs following octreotide administration IGFBP-1 was 40 +/- 7 micrograms/L. Octreotide induced a dynamic inverse relationship between circulating GH and IGFBP-1 levels (r = -0.73, P less than 0.001). The absence of IGFBP-1 changes in octreotide non-responders and the non-suppression of insulin in octreotide responsive patients, suggest a direct GH-mediated mechanism of IGFBP-1 regulation in octreotide treated patients with acromegaly. IGFBP-1 may be another useful marker in evaluating the response of acromegaly to octreotide treatment in patients who experience clinical benefit but equivocal GH and IGF-1 attenuation.

Acromegaly↗

Biochemical assessment of bone formation and resorption in acromegaly.

The effects of chronic GH and insulin-like growth factor-I (IGF-I) excess on bone metabolism were examined by measuring serum markers of bone formation and urine markers of bone resorption as well as vertebral bone densities in patients with active acromegaly. Fasting serum GH levels were elevated in all 27 patients (31 +/- 11 micrograms/L). Serum calcium levels were within the normal range, except in 3 of 27 (10%) patients with mild hypercalcemia. Urinary calcium excretion, however, was increased in 6 (22%) patients despite mainly normal serum PTH and 1,25-dihydroxyvitamin D levels, suggesting a direct renal GH and/or IGF-I-mediated calciuric effect. Urinary hydroxyproline/creatinine excretion was increased in all except 1 patient and correlated with plasma IGF-I levels (r = 0.49; P < 0.02; n = 22). A more specific indicator of bone collagen turnover, urinary type I collagen cross-linked N-telopeptide, was elevated in all except 1 patient and correlated with serum GH (r = 0.47; P < 0.02), IGF-I (r = 0.60; P < 0.005), and urinary hydroxyproline/creatinine excretion (r = 0.62; P < 0.001). Serum bone Gla protein (osteocalcin), a specific marker of osteoblastic activity, was also increased in 50% of the patients and correlated with urinary N-telopeptide (r = 0.47; P < 0.02), but not with serum GH or IGF-I concentrations. Trabecular bone density, as determined by quantitative computerized tomography of the lumbar spine, was increased in only 1 patient; 13 others had subnormal bone density. The results suggest that in long-standing acromegaly, osteoblastic and osteoclastic activities are increased. Vertebral trabecular bone mass is usually reduced. Urinary collagen cross-links may serve as a more specific marker of bone resorption in acromegaly.

Acromegaly↗

The growth hormone (GH) response to GH-releasing peptide (His-DTrp-Ala-Trp-DPhe-Lys-NH2), GH-releasing hormone, and thyrotropin-releasing hormone in acromegaly.

In patients with acromegaly, GH-producing pituitary tumors release GH in response to specific stimuli such as GH-releasing hormone (GHRH) and are also responsive to a variety of nonspecific stimuli, such as TRH or GnRH, and may exhibit paradoxical responses to glucose and dopamine. In healthy humans, the synthetic peptide GH-releasing peptide (GHRP) (His-D-Trp-Ala-Trp-D-Phe-Lys-NH2) releases GH by a putative mechanism of action that is independent of GHRH. How these tumors respond to GHRP is not well characterized. We studied the GH responses to GHRH, GHRP, and TRH stimulation in 11 patients with active acromegaly. The peak GH responses to GHRP and GHRH were not correlated (r = 0.57; P = 0.066). In contrast, the peak GH responses to GHRP and TRH were highly correlated (r = 0.95; P < 0.001). In conclusion, in patients with acromegaly, the GH response to GHRP is qualitatively normal and does not appear to depend on GHRH.

Acromegaly↗

Depot long-acting somatostatin analog (Sandostatin-LAR) is an effective treatment for acromegaly.

Octreotide (Sandostatin) is a synthetic analog of somatostatin, an endogenous GH inhibitory peptide that has been used as an adjunct to surgery and radiotherapy in the treatment of acromegaly. When given sc in divided daily doses, it lowers serum GH to less than 5 micrograms/L in approximately 50% of cases. Data suggest that continuous infusions of somatostatin analogs may be more effective in lowering GH. We have evaluated Sandostatin-LAR, a new long-acting preparation of Sandostatin, in eight patients with acromegaly. After an initial pharmacokinetic study, patients received a minimum of 10 im injections of Sandostatin-LAR (20, 30, or 40 mg) at 28- or 42-day intervals. Serum GH levels decreased from 10.7 +/- 2.8 micrograms/L (mean +/- SE) at baseline to a nadir of 2.6 +/- 0.4 micrograms/L after the tenth injection, and to less than 5 micrograms/L in every patient. Serum insulin-like growth factor-I decreased from 927 +/- 108 ng/mL at baseline to 472 +/- 59 ng/mL at the end of the sixth injection and returned to normal (< 500 ng/mL) in seven of the eight patients. This was associated with significant improvements in headache, arthralgia, and sweating. There was no evidence of octreotide accumulation, and the drug was well tolerated. To date, no gallstones have occurred, and serial pituitary imaging has revealed no increase in the size of the initial pituitary tumor. In particular, two previously untreated patients have shown complete regression of the initial microadenoma and have serum GH values of less than 2.5 micrograms/L. Sandostatin-LAR is an effective and well-tolerated treatment for patients with acromegaly. Undoubtedly the initial indication for Sandostatin-LAR will be in the patient who is not cured after surgery and radiotherapy, but our experience suggests that it may be used as a primary treatment in some acromegalics.

Acromegaly↗

Mutation analysis of the MEN1 gene in multiple endocrine neoplasia type 1, familial acromegaly and familial isolated hyperparathyroidism.

Multiple endocrine neoplasia type 1 (MEN 1) is an autosomal dominant disease characterized by neoplasia of the parathyroid glands, the endocrine pancreas, and the anterior pituitary gland. In addition, families with isolated endocrine neoplasia, notably familial isolated hyperparathyroidism (FIHP) and familial acromegaly, have also been reported. However, whether these families constitute MEN 1 variants or separate entities remains speculative as the genetic bases for these diseases are unclear. The gene for MEN 1 has recently been cloned and characterized. Using single strand conformation analysis (SSCA) and sequencing, we performed mutation analysis in: a) a total of 55 MEN 1 families from 7 countries, b) 13 isolated MEN 1 cases without family history of the disease, c) 8 acromegaly families, and d) 4 FIHP families. Mutations were identified in 27 MEN 1 families and 9 isolated cases. The 22 different mutations spread across most of the 9 translated exons and included frameshift (11), nonsense (6), splice (2), missense mutations (2), and in-frame deletions (1). Among the 19 Finnish MEN 1 probands, a 1466del12 mutation was identified in 6 families with identical 11q13 haplotypes and in 2 isolated cases indicating a common founder. One frameshift mutation caused by 359del4 (GTCT) was found in 1 isolated case and 4 kindreds of different origin and haplotypes; this mutation therefore represents a common "warm" spot in the MEN1 gene. By analyzing the DNA of the parents of an isolated case one mutation was confirmed to be de novo. No mutation was found in any of the acromegaly and small FIHP families, suggesting that genetic defects other than the MEN1 gene might be involved and that additional such families need to be analyzed.

Acromegaly↗

The control on growth hormone release by free fatty acids is maintained in acromegaly.

Free fatty acids (FFA) physiologically regulate GH release via a negative feedback. The aim of this study was to examine whether such feedback is preserved in acromegaly, a condition in which alterations in other regulatory mechanisms of GH release occur. Eight acromegalic patients (group 1: five women and three men, 43.0 +/- 4.2 yr old, mean +/- SE) received per os on two different days, at a 3 day-interval, in a random order, placebo or 250 mg of acipimox, an inhibitor of lipolysis analogous to nicotinic acid, at 0700 and 1100 h. In both tests GHRH (1-29 NH2), 50 microg, was administered i.v. at 1300 h. Blood samples for GH, FFA, immunoreactive insulin (IRI), and glucose were taken from 0900 to 1500 h, and the time period considered for statistical analysis was 1200-1500 h, representative of steady-state condition for FFA, IRI, and glucose. Mean plasma FFA levels (1200-1500 h) were significantly lower after acipimox than after placebo (0.05 +/- 0.01 vs. 0.17 +/- 0.01 g/L, P < 0.01). In contrast, both mean basal GH levels (1200-1300 h) and the mean GH response to GHRH (GH delta area, 1300-1500 h) were significantly higher after acipimox than after placebo (12.0 +/- 1.9 vs. 7.8 +/- 1.2 microg/L, P < 0.01; 2937 +/- 959 vs. 1154 +/- 432 microg/L x 120 min, P < 0.01). The increase in both basal GH levels and GH delta area occurred in all eight patients. Acipimox also reduced mean serum IRI (83 +/- 12 vs. 112 +/- 14 pmol/L) and blood glucose (5.1 +/- 0.1 vs. 5.7 +/- 0.1 mmol/L) levels, as compared with placebo (P < 0.03 or less). Eight acromegalic patients (group 2: six women and two men, 46.6 +/- 5.7 yr old) underwent a constant i.v. 10% lipid infusion (150 mL/h), started at 0900 h and continued until 1500 h. Mean plasma FFA levels (1200-1500 h) were significantly higher during lipid infusion than after placebo (0.27 +/- 0.01 vs. 0.16 +/- 0.01 g/L, P < 0.02); in contrast, mean basal GH levels (1200-1300 h) were reduced by lipid infusion, as compared with placebo (9.9 +/- 3.1 vs. 16.6 +/- 4.4 microg/L, P < 0.01), and the same occurred for the GH delta area after GHRH (2498 +/- 1643 vs. 4512 +/- 1988 microg/L x 120 min, P < 0.01). Serum IRI and blood glucose levels were similar after placebo and during lipid infusion. These data indicate that, in acromegaly, the acute reduction of circulating FFA levels results in increased GH release, whereas the increase in circulating FFA levels is accompanied by a reduced GH release. Taken together, these findings suggest that, in acromegaly, the control of FFA on GH release is preserved.

Acromegaly↗

Morphologic study of microcirculation in acromegaly by capillaroscopy.

Although wide range investigations on the heart and great vessels have been reported in acromegaly, the field of microcirculation is still largely vacant. The nailfold is a window through which we can observe in vivo the vascular bed. This study investigates through nailfold capillaroscopy the morphology of cutaneous microcirculation in acromegaly in relationship with the usual hormonal parameters of disease activity. Twenty-five acromegalic patients and 26 normal subjects, age and sex matched, were studied. A subgroup of acromegalics (8 patients) was considered in stable remission, and the remaining 17 had active disease. Capillaroscopy was performed in each subject by in vivo computer aided stereomicroscopy (magnification, x400). The following morphological parameters were calculated: the number of tortuous loops, meandering capillaries, and capillaries per millimeter; avascular areas; visibility of subpapillary plexus; the capillary length; and intercapillary distance. We were unable to perform the exam in 4 of 25 patients because visibility was poor. The capillary number and length were significantly reduced in acromegalics compared to controls [8.9 +/- 1.5 vs. 10.3 +/- 1.2 no./mm (P = 0.0010) and 174 +/- 49 vs. 255 +/- 24 microm (P < 0.0001)]. Moreover, in acromegalics, the numbers of tortuous loops and meandering capillaries were significantly increased [19 +/- 8 vs. 13 +/- 5 (P = 0.0027) and 10 +/- 12 vs. 0.7 +/- 1.1 (P < 0.0001)]. The capillaroscopic alterations were still observed in a smaller group of 8 nondiabetic and nonhypertensive acromegalics. We found branch-like capillaries in 4 acromegalic patients, but not in the control group. Finally, we observed a meaningful different and ameliorated capillaroscopic morphology in acromegalic patients in stable remission compared to active disease patients as far as the total number (density) and meandering capillaries were concerned. In conclusion, our study shows that in acromegaly, morphological alterations also affect the peripheral microcirculation, which seems to be influenced by the activity of the disease. We believe that nailfold capillaroscopy may represent an additional useful tool in the follow-up of acromegalic patients.

Acromegaly↗

Hormonal and metabolic effects of radiotherapy in acromegaly: long-term results in 128 patients followed in a single center.

Conventional radiotherapy is usually indicated in acromegaly when surgery fails to normalize GH secretion. However, the benefits of radiotherapy are delayed. This has raised questions about the potency of this treatment for reaching the safe GH level of 2.5 microg/L and for normalizing insulin-like growth factor I (IGF-I) levels, both of which are currently recommended as the therapeutic goal. To evaluate the long-term hormonal and metabolic effects of radiotherapy in acromegaly, a retrospective analysis was undertaken studying 128 patients followed for 11.5+/-8.5 yr (mean +/- SD) in a single center. The preradiation GH levels decreased as a function of time to 50% at 2 yr, 20% at 5 yr, and 10% at 10 yr. Basal GH levels below 2.5 microg/L were obtained in 7% of the patients at 2 yr, 35% at 5 yr, 53% at 10 yr, and 66% at 15 yr. A basal GH level below 2.5 microg/L was associated with suppression of GH below 2 microg/L during an oral glucose tolerance test and normalization of IGF-I levels in 9 of 10 patients. Preradiation GH levels was the sole factor that could predict the delay in GH fall to below 2.5 microg/L (P = 0.008). At the last follow-up, IGF-I levels were normalized in 79% of the patients (37 of 47; mean follow-up, 15.0+/-11.3 yr). In the 32 patients presenting with diabetes mellitus, improvement of glucose tolerance was associated with lower GH levels after treatment (35+/-78 microg/L in the group of 13 patients still presenting diabetes; 9+/-12 microg/L in the group of 4 patients with glucose intolerance; 5+/-8 microg/L in the 14 patients with normal glucose tolerance; P = 0.04). Ten years after termination of radiotherapy gonadotroph, thyreotroph and corticotroph deficiencies were observed in 80%, 78%, and 82% of the patients, respectively. In conclusion, conventional radiotherapy can reduce GH levels below the optimal level of 2.5 microg/L and normalize IGF-I levels in acromegaly. However, the incidence of late hypopituitarism is high, and the delay to obtain this safe GH secretory status can be long, depending on the preradiation GH level. These parameters should be considered when adjuvant therapy is needed after surgery.

Acromegaly↗

Long-term follow-up results of postoperative radiotherapy in 36 patients with acromegaly.

In acromegaly, pituitary irradiation is a slow, but effective, intervention in decreasing GH concentration. Few studies addressing the outcome of radiotherapy have used the currently accepted strict criteria for remission in the analysis of data. These studies report a low percentage of remission after radiotherapy. Doubt has especially been raised as to whether radiotherapy is effective in normalizing serum insulin-like growth factor (IGF)-I concentration. We analyzed the long-term follow-up data of postoperatively administered radiotherapy in 36 patients with postoperative persistent acromegaly, using both the normalization of GH suppression during oral glucose loading (GTT) and the normalization of IGF-I concentration as criteria for remission. Before radiotherapy, mean suppressed GH was 9.8 +/- 1.9 mU/L (n = 31), and mean IGF-I concentration was 44.3 +/- 3.9 nmol/L, equivalent to + 4.76 +/- 0.78 age-related IGF-I SD score (n = 13). The median radiation dose was 40 Gray (range, 25-50 Gray). At 5, 10, and 15 yr follow-up, 18 out of 30 patients (60%), 23 out of 31 patients (74%), and 16 out of 19 patients (84%), respectively, achieved normal serum IGF-I concentration. At the last assessment of all patients, after a mean follow-up period of 139 +/- 12 months, 27 out of 36 (75%) patients had a normal IGF-I concentration without additional medication, whereas 5 patients still required treatment with octreotide. Remission, as judged by normalization of GH suppression during GTT, was documented in 65% of patients from 2-5 yr after radiotherapy (n = 34); in 69% of patients, up to 10 yr after radiotherapy (n = 29); and in 71% of patients, up to 15 yr post irradiation (n = 17). At the latest assessment, a mean of 125 +/- 11 months after radiotherapy, 71% of patients (n = 35) were in remission, as defined by normal suppression of serum GH during GTT. Remission, as judged by normalization of both GTT and IGF-I, was found in 40% of patients 3-5 yr after radiotherapy (n = 30); in 61% of patients, 6-10 yr after radiotherapy (n = 28); in 65%, after 11-15 yr after radiotherapy (n = 17); and in 63% of patients, at the end of the follow-up period (n = 35). Substitution of one or more pituitary hormone deficiencies was required in 11% of patients postoperatively; in 29%, 5 yr after radiotherapy; in 54%, 10 yr after radiotherapy; and in 58%, more than 15 yr after radiotherapy. Our findings support the use of radiotherapy as an effective intervention in the treatment of residual clinical activity of disease after surgery for acromegaly.

Acromegaly↗

Study of the multiple endocrine neoplasia type 1, growth hormone-releasing hormone receptor, Gs alpha, and Gi2 alpha genes in isolated familial acromegaly.

Familial acromegaly may occur as an isolated pituitary disorder or as a feature of hereditary syndromes, such as multiple endocrine neoplasia type 1 (MEN1) or the Carney complex. Herein, we characterized a newly identified kindred with isolated acromegaly and searched for germline mutation in genes that have been associated with endocrine tumors [i.e. MEN1, Gs alpha (GNAS1), and Gi2 alpha (GNAI2)], as well as the GHRH receptor (GHRH-R) gene. Genomic DNA was used to amplify exons 2-10 of MEN1, followed by dideoxy fingerprinting mutation analysis and direct sequencing. The GHRH-R gene was analyzed via direct sequencing of PCR-amplified fragments representing the coding exons and intron-exon junctions. To exclude mutation at hot spot areas of GNAS1 and GNAI2, exons 8 and 9 of GNAS1 and exons 5 and 6 of GNAI2 were amplified and screened for mutation via denaturing gradient gel electrophoresis. No mutations were detected in any of the four genes. The present data extend prior reports of the absence of mutation in MEN1, GHRH-R, and GNAS1 and describe the first family with isolated acromegaly in which germline mutation in GNAI2 has been searched.

Acromegaly↗

Diagnostic value of the acid-labile subunit in acromegaly: evaluation in comparison with insulin-like growth factor (IGF) I, and IGF-binding protein-1, -2, and -3.

In normal subjects the main form of circulating insulin-like growth factor (IGF) is the 150-kDa complex. This complex is formed by the IGF peptide, the acid-stable IGF-binding protein-3 (IGFBP-3), and the acid-labile subunit (ALS). Experimental and clinical data have demonstrated that ALS is primarily under the control of GH and plays a critical role in maintaining constant levels of circulating IGF-I. In this study we evaluated ALS, IGF-I, and IGFBP-1, -2, and -3 in 45 acromegalic patients in basal conditions and, in 37 of these, twice after surgical therapy compared with 100 age- and sex-matched control subjects to estimate their value as parameter of GH secretory state. The results demonstrated that in acromegaly before treatment all parameters (ALS, 523 +/- 26; IGF-I, 129 +/- 6; IGFBP-1, 0.7 +/- 0.1; IGFBP-3, 234 +/- 21; nmol/L; mean +/- SEM) but IGFBP-2 were significantly different (P<0.0001) from those in healthy subjects (ALS, 281 +/- 4; IGF-I, 22 +/- 1; IGFBP-1, 1.6 +/- 0.1; IGFBP-3, 91 +/- 3). IGF-I was more sensitive (100%) than ALS (89%), and both were more predictive of disease status than IGFBP-3, in that 27% of the patients had IGFBP-3 levels within the normal range. Considering the ALS/IGFBP-3 molar ratio, almost 55% of ALS circulated in a free form in active acromegaly. Before treatment, the IGF-I/IGFBPs (-1 + -2 + -3) molar ratio, which can be regarded as free, biologically active, IGF-I, was greatly increased (0.77 +/- 0.06; P<0.0001) compared with that in control subjects (0.23 +/- 0.01). After surgery, all 10 patients with controlled disease showed normalization of ALS (100% sensitivity), whereas 9 of them had normal IGFBP-3; reevaluation after varying lengths of time showed all these parameters within the normal range. In the 27 patients with active disease, IGF-I and ALS were more predictive of disease status (91% and 83% negative predictive values, respectively) than IGFBP-3 (53%). The basal ALS concentration correlated only with IGFBP-3 (r = 0.70; P<0.001). In postsurgery samples (first control) a statistically significant (P<0.001) correlation was found between mean GH values as well as minimum GH after oral glucose tolerance test and ALS (r = 0.72 and 0.83, respectively), IGF-I (r = 0.69 and 0.77), IGFBP-3 (r = 0.50 and 0.72), and IGFBP-2 (r = -0.36 and -0.63). Similarly, IGF-I, IGFBP-3, and ALS were positively correlated among themselves and negatively correlated with IGFBP-2 (P<0.001). In conclusion, in the diagnosis of acromegaly, the measurement of total IGF-I appears to be the most sensitive parameter among the subunits of the 150K complex, and IGFBP-3 the least sensitive. For ALS, this subunit is quite sensitive and appears to be a useful parameter in reassessment after surgical treatment.

Acromegaly↗

Spontaneous postoperative normalization of growth hormone levels in two patients with acromegaly not cured by transsphenoidal surgery.

Postoperative persistence of elevated growth hormone (GH) levels in patients with acromegaly usually suggests residual adenoma tissue secreting GH and is an indication for further treatment. In rare cases, spontaneous normalization of serum GH levels in patients with acromegaly has been reported to occur as a consequence of intratumoral hemorrhage (pituitary apoplexy). We report two patients in whom persisting acromegaly was documented 1 and 2 weeks, respectively, after transsphenoidal operation and who experienced spontaneous normalization of GH levels. In one patient, this favorable outcome was found 1.5 years after the operation and followed a pregnancy. The other patient, whose GH values normalized 3 months after operation, had received preoperative treatment with a new, long-acting somatostatin analog.

Acromegaly↗

Diagnosis of acromegaly in orofacial pain: two case reports.

Acromegaly is an uncommon condition, with an annual incidence in the UK of three per million. The gradual onset of the clinical features mean that often friends and relatives are unaware of the underlying pathology. In view of the morbidity, and indeed mortality, arising from undiagnosed cases, general dental practitioners and other healthcare workers should routinely take note of systemic as well as intra-oral changes occurring in their patients when seen on review. The association of paraesthesia, anaesthesia and pain with acromegaly is well documented. However, there appear to be few reports linking acromegaly with orofacial pain or dysaesthesia. This paper describes two such cases.

Acromegaly↗

Somatostatin analogs as primary medical therapy for acromegaly.

Acromegaly is a debilitating disease usually caused by a growth-hormone secreting pituitary adenoma. Therapeutic goals include improvement of symptoms, reduction in tumor mass, biochemical normalization, and preservation of pituitary function. Treatment options include transsphenoidal surgery, radiation, and pharmacotherapy. In view of the good cure rate, surgery remains the therapeutic modality of choice for most patients with microadenomas or well-circumscribed macroadenomas. In contrast, >40% of patients with invasive macroadenomas (who make up the majority of patients with acromegaly) will have residual disease following surgery, and require additional therapeutic intervention. Somatostatin analogs result in biochemical normalization in >60% of non-operated patients, and are well tolerated. Therefore, somatostatin analogs have emerged as a rational first-line treatment for the appropriately selected patient with acromegaly.

Acromegaly↗

Comparison of efficacy and tolerability of somatostatin analogs and other therapies for acromegaly.

Medical therapy plays an important role in the management of acromegaly. Dopamine agonists and somatostatin analogs are two classes of drugs approved for this purpose worldwide. Pegvisomant, a growth hormone receptor antagonist, has recently been evaluated in clinical trials. Somatostatin analogs have been the mainstay of medical treatment during the last 10 yr with their acceptability enhanced by the development of depot preparations. Somatostatin analogs improve symptoms and signs of acromegaly in the majority, normalize IGF- 1 in up to 60%, and result in tumor shrinkage in up to half of patients. Dopamine agonists have modest efficacy and limited tolerability. They are more effective in mixed GH/prolactin-secreting tumors. Newer agonists with D2 receptor specificity have fewer side effects but are less efficacious than somatostatin analogs. The addition of a dopamine agonist to somatostatin analog therapy can result in greater biochemical control than with individual agents. Pegvisomant is the most effective drug treatment for acromegaly, but it is likely to have a major adjuvant role as its mechanism of action is not directed at the tumor. The availability of more effective and better tolerated drug therapies offers greater flexibility and individualization of therapy that will lead to improved patient care and disease control.

Acromegaly↗