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Somatostatin receptor scintigraphy with indium-111-DTPA-D-Phe-1-octreotide in man: metabolism, dosimetry and comparison with iodine-123-Tyr-3-octreotide.

Scintigraphy with 123I-Tyr-3-octreotide has several major drawbacks as regards its metabolic behavior, its cumbersome preparation and the short physical half-life of the radionuclide. The use of another radiolabeled analog of somatostatin, 111In-DTPA-D-Phe-1-octreotide, has consequently been proposed. DTPA-D-Phe-1-octreotide can be radiolabeled with 111In in an easy single-step procedure. DTPA-D-Phe-1-octreotide is cleared predominantly via the kidneys. Fecal excretion of radioactivity amounts to only a few percent of the administered radioactivity. For the radiation dose to normal tissues, the most important organs are the kidneys, the spleen, the urinary bladder, the liver and the remainder of the body. The calculated effective dose equivalent is 0.08 mSv/MBq. Optimal 111In-DTPA-D-Phe-1-octreotide scintigraphic imaging of various somatostatin receptor-positive tumors was obtained 24 hr after injection. In the six patients studied, tumor localization with 123I-Tyr-3-octreotide and with 111In-DTPA-D-Phe-1-octreotide were found to be similar. However, the normal pituitary is more frequently visualized with the latter radiopharmaceutical. In conclusion, 111In-DTPA-D-Phe-1-octreotide appears to be a sensitive somatostatin receptor-positive tissue-seeking radiopharmaceutical with some remarkable advantages: easy preparation, general availability, appropriate half-life and absence of major interference in the upper abdominal region, because of its renal clearance. Therefore, 111In-DTPA-D-Phe-1-octreotide may be suitable for use in SPECT of the abdomen, which is important in the localization of small endocrine gastroenteropancreatic tumors.

Adult

Invasive mixed growth hormone/prolactin secreting pituitary tumour: complete shrinking by octreotide and bromocriptine, and lack of tumour growth relapse 20 months after octreotide withdrawal.

Octreotide and bromocriptine were used to treat an acromegalic patient harbouring an invasive pituitary tumour secreting growth hormone and prolactin. Octreotide (100 micrograms, subcutaneously, three times daily) and bromocriptine (15 mg orally, daily) rapidly improved clinical signs and symptoms, including diabetes that initially required insulin. Complete control of growth hormone and prolactin secretion was obtained and maintained by this treatment protocol for 12 months without affecting the other pituitary functions. A major tumour shrinkage was apparent by magnetic resonance imaging after six months, and was considered to be complete after 12 months of treatment. Octreotide was then discontinued without any relapse in either growth hormone secretion or tumour growth over a 20-month period following withdrawal. Attempts were made to discontinue bromocriptine, but a maintenance therapy (2.5 mg daily) was required to control rebounds of prolactin hypersecretion. Two months after octreotide withdrawal, acute pancreatitis secondary to cholelithiasis required surgery; this complication was attributed to octreotide (pre-treatment ultrasonography was normal). These findings suggest that combination therapy with octreotide and bromocriptine may be considered in pituitary macroadenomas secreting growth hormone and prolactin. They also emphasize the need for a close monitoring of cholelithiasis, not only during octreotide therapy but also after the drug's withdrawal.

Adenoma

Continuous subcutaneous octreotide infusion: dose-response relationships between metabolic effects and octreotide clearance in patients with insulin-dependent (type 1) diabetes.

Octreotide (Sandostatin), a potent and long-acting octapeptide analogue of somatostatin, exhibits variable metabolic effects in type 1 diabetes. We have postulated that interindividual variability in octreotide metabolism could be responsible in part for the differences in metabolic responses reported in previous clinical studies. To this end, we determined plasma levels and MCR of octreotide during 24-hour continuous SC infusion (low dose, 200 micrograms; high dose, 400 micrograms) in nine female, C peptide-negative patients with type 1 diabetes. The metabolic effects of the analogue were assessed by measuring serum glucose, free insulin, glucagon, GH, and PP levels before and at 1- to 2-hour intervals during each dose of the analogue or control (0.9% saline solution) infusion in a single-blind randomized manner. Mean daytime (0800-0000 hours) and bedtime (0000-0800 hours) serum glucose levels decreased significantly (p less than 0.05 to 0.02) during analogue therapy compared with control. Mean serum free insulin levels were significantly (p less than 0.02) greater during octreotide infusion compared with control, despite the similar daily insulin requirements. Both doses of the analogue effectively suppressed 24-hour GH by 50%, glucagon by 50%, and PP by 80%. Steady-state octreotide levels varied considerably among patients (low, mean +/- SEM), 1000 +/- 101, range 638 to 1375 pg/ml; high, mean 1940 +/- 147, range 1032 to 2462 pg/ml). Although mean MCR values were similar with both doses, we observed greater interindividual variability (low, mean 2.45 +/- 0.30, range 1.31 to 3.78 ml/kg/min; high, mean 2.36 +/- 0.19, range 1.68 to 3.48 ml/kg/min).(ABSTRACT TRUNCATED AT 250 WORDS)

Blood Glucose

Octreotide, a new somatostatin analogue.

The chemistry, pharmacology, pharmacokinetics, clinical uses, adverse effects and drug interactions, dosage, availability and cost, and indications for use of octreotide, a new synthetic analogue of the peptide hormone somatostatin (SS), are reviewed. Like SS, octreotide suppresses secretion of pituitary growth hormone (GH) and thyrotropin and decreases release of a variety of pancreatic islet cell hormones including insulin, glucagon, and vasoactive intestinal peptide (VIP). Octreotide also reduces splanchnic blood flow, gastric acid secretion, GI motility, and pancreatic exocrine function and alters the absorption of water, electrolytes, and nutrients from the GI tract. The elimination half-life of i.v. octreotide is 72-98 minutes, compared with 2-3 minutes for i.v. SS. Usual administration of octreotide is by the i.v. or s.c. route. Octreotide has been studied in the treatment of hormone-secreting pituitary tumors and pancreatic islet cell tumors. Octreotide therapy lowers GH secretion and improves clinical symptoms in patients with acromegaly and may suppress clinical symptoms to a greater degree than bromocriptine. Patients with carcinoid syndrome and VIP-secreting tumors (vipomas) have had substantial improvement in clinical symptoms with administration of octreotide. This agent does not appear to be effective in the treatment of nonvariceal upper GI bleeding and acute pancreatitis; its relative usefulness in the treatment of variceal bleeding is not established. Adverse effects associated with octreotide therapy generally have been mild, including pain or burning at the injection site, abdominal pain, and diarrhea. Octreotide has been shown to interfere with absorption of oral cyclosporine. Standard initial therapy is octreotide acetate 50-100 micrograms s.c. every 8-12 hours, with titration based on clinical and biochemical effects. Up to 3000 micrograms/day of octreotide acetate has been administered to patients with acromegaly without serious adverse effect. Octreotide is marketed under the brand name Sandostatin and is available in 1-mL ampuls containing 50, 100, and 500 micrograms of octreotide acetate. Because the conditions for which octreotide appears to be most effective are uncommon, the drug should be considered for addition to the formulary in tertiary-care institutions only; addition of octreotide to the formulary of a community hospital is probably unnecessary. The synthetic analogue octreotide is longer acting and more specific in pharmacologic action than SS.(ABSTRACT TRUNCATED AT 400 WORDS)

Animals

Dissociation of antiproliferative and antihormonal effects of the somatostatin analog octreotide on 7315b pituitary tumor cells.

The somatostatin (SS) analog octreotide has been successfully used in the treatment of (neuro)endocrine tumors. The mechanism of action of the tumor (growth) inhibitory action by octreotide is not fully understood. We have investigated the effect of octreotide on 7315b rat pituitary tumor cell growth, PRL release, and intracellular PRL concentrations in vitro. When cultured in medium with 10% fetal calf serum, the number of high affinity SS receptors increased with increasing culture time. On days 7, 14, and 21 of culture, the number of SS receptors amounted to 978 +/- 217, 3588 +/- 705, and 5865 +/- 3332 fmol/mg protein, respectively, whereas they were not measurable on day 0. From days 0-7, 7-14, and 14-21 of culture, octreotide (1 pM to 1 microM) inhibited PRL release and the intracellular PRL concentration, with IC50 values in the nanomolar range. However, no inhibition of cell growth was observed by these octreotide concentrations from day 0-7 of culture, while octreotide inhibited cell growth in a dose-dependent fashion from days 7-14 and 14-21 of culture (maximal inhibition by 25% and 26%, respectively). In a series of nine consecutive experiments we found a significant positive correlation between the percent inhibition of cell growth induced by 1 microM octreotide and the number of SS receptors on 7315b cells (r = 0.7865; P = 0.012). Inhibition of PRL release did not correlate with SS receptor numbers. Octreotide (1 microM) inhibited forskolin (0.5 microM)-stimulated cell growth and intracellular PRL concentrations, while in the presence of a high concentration of forskolin (10 microM), octreotide had no effect on forskolin-stimulated cell growth and intracellular PRL concentrations. In addition, its PRL release inhibitory effect was significantly lower in forskolin-stimulated cultures. Pretreatment of the cells with pertussis toxin (10 micrograms/liter) completely prevented the inhibition of cell growth by octreotide and diminished the inhibitory effect of octreotide on PRL release. Finally, 1 microM octreotide significantly inhibited forskolin-stimulated cAMP production (by 29% and 53% on days 7 and 14 of culture, respectively). We conclude that 1) octreotide inhibits 7315b rat pituitary tumor cell proliferation via a pertussis toxin-sensitive GTP-binding protein- and adenylate cyclase-dependent mechanism; and 2) the number of SS receptors on 7315b pituitary tumor cells may determine whether octreotide exerts a direct antiproliferative effect, whereas its antihormonal effect occurs in the presence of relatively low numbers of SS receptors. This suggests a dissociation of the antiproliferative and antihormonal effects induced by octreotide.

Adenylate Cyclase Toxin

[111In-DTPA-D-Phe1]-octreotide, a potential radiopharmaceutical for imaging of somatostatin receptor-positive tumors: synthesis, radiolabeling and in vitro validation.

Somatostatin receptor-positive human tumors can be detected using radioiodinated analogues of somatostatin, both in vitro and in vivo. [123I-Tyr3]-octreotide has been successfully used in the visualization of somatostatin receptor-positive tumors by gamma camera scintigraphy, but this radiopharmaceutical has some major drawbacks, which can be overcome with other radionuclides such as 111In. As starting material for a potentially convenient radiopharmaceutical, a diethylenetriaminopentaacetic acid (DTPA) conjugated derivative of octreotide (SMS 201-995) was prepared. This peptide, [DTPA-D-Phe1]-octreotide (SDZ 215-811) binds more than 95% of added 111In in an easy, single-step labeling procedure without necessity of further purification. The specific somatostatin-like biologic effect of these analogues was proven by the inhibition of growth hormone secretion by cultured rat pituitary cells in a dose-dependent fashion by octreotide, [DTPA-D-Phe1]-octreotide and non-radioactive [115In-DTPA-D-Phe1]-octreotide. The binding of [111In-DTPA-D-Phe1]-octreotide to rat brain cortex membranes proved to be displaced similarly by natural somatostatin as well as by octreotide, suggesting specific binding of [111In-DTPA-D-Phe1]-octreotide to somatostatin receptors. The binding of the indium-labeled compound showed a somewhat lower affinity when compared with the iodinated [Tyr3]-octreotide, but indium-labeled [DTPA-D-Phe1]-octreotide still binds with nanomolar affinity. In conjunction with in vivo studies, these results suggest that [111In-DTPA-D-Phe1]-octreotide is a promising radiopharmaceutical for scintigraphic imaging of somatostatin receptor-positive tumors.

Amino Acid Sequence

Octreotide inhibits insulin-like growth factor-I hepatic gene expression in the hypophysectomized rat: evidence for a direct and indirect mechanism of action.

Somatostatin and somatostatin analogs are known to interact with the GH-insulin-like growth factor (IGF)-I axis by inhibiting GH secretion and consequently hepatic IGF-I production. Indirect evidence suggests that octreotide, a somatostatin analog, reduces serum IGF-I levels relatively more than expected from GH reduction, implying a GH-independent pathway of action. To study the role of octreotide in the regulation of IGF-I production, independently of endogenous GH, we used the hypophysectomized (hypox) rat to measure hepatic IGF-I expression and also employed cultured rat hepatocytes to examine whether octreotide has any direct effect on the production of IGF-I. Forty male hypox Sprague-Dawley rats were randomized into 4 groups to receive daily injections for 3 days of either saline, human GH (hGH) (100 g), octreotide (100 g twice), or both hGH (100 g) and octreotide (100 g twice). GH stimulated serum IGF-I levels to 104 +/- 10 micrograms/liter as compared to saline (26 +/- 2 micrograms/liter). Octreotide alone had no effect, but combining octreotide and hGH significantly reduced the hGH-induced rise in the IGF-I levels (52 +/- 6 micrograms/liter). The relative expression of hepatic IGF-I in the rats treated with hGH increased by 4-fold compared to that in the saline-treated rats. Octreotide administered simultaneously with hGH potently blocked the hGH-induced IGF-I expression to control levels. In cultured hepatocytes, IGF-I mRNA levels maximally stimulated by combining bGH and glucagon were significantly inhibited in the presence of octreotide at low concentrations (0.3 and 3 ng/ml) by 25% and 45%, respectively. In contrast, high concentrations of octreotide (30 and 300 ng/ml) had no significant effect on IGF-I mRNA abundance. We conclude that: 1) octreotide inhibits IGF-I serum levels and hepatic gene expression in the hypox rat; and 2) octreotide can inhibit partially the direct effects of GH and glucagon on hepatic IGF-I production.

Animals

Long-term efficacy and tolerability of octreotide treatment in acromegaly.

Twenty-five acromegalic patients were studied during 6 years of treatment with octreotide, with a particular focus on the following parameters: (1) Administration schedule: in 10 patients, continuous subcutaneous (SC) octreotide infusion was compared with injections of octreotide at three dose levels (100, 250, and 1,500 micrograms/24 h) and was found to induce a greater and less-fluctuating 24-hour growth hormone (GH) suppression. (2) Carbohydrate tolerance: average 24-hour blood glucose levels were unaffected by octreotide, regardless of administration schedule. Oral carbohydrate tolerance and intravenous (IV) glucose tolerance were unaffected by continuous octreotide infusion. However, octreotide injection given shortly before the tests reduced carbohydrate tolerance. (3) Thyroid function: octreotide and somatostatin acutely reduce the response of thyroid-stimulating hormone (TSH) to thyrotropin-releasing hormone (TRH). After a few days of treatment, it was demonstrated that octreotide slightly inhibits iodothyronine deiodination and induces a transient reduction in serum triiodothyronine (T3), rapidly compensated for by a persistent slight elevation of serum TSH. (4) Fat absorption was estimated as 24-hour fecal fat content and found to be in the same high-normal range before and after octreotide treatment. Vitamin K and D absorption were unaffected by octreotide. The incidence of gallstone formation was not greater than in the general Danish population, possibly due to the schedule used for octreotide injections. (5) Foot volume was regularly estimated and found to decrease with time, on average by 12% during the first 18 months.(ABSTRACT TRUNCATED AT 250 WORDS)

Acromegaly

Long-term in-vitro treatment of human growth hormone (GH)-secreting pituitary adenoma cells with octreotide causes accumulation of intracellular GH and GH mRNA levels.

OBJECTIVE: We studied the effects of long-term in-vitro exposure of human GH secreting pituitary adenoma cells to octreotide on GH release, intracellular GH concentrations and GH messenger ribonucleic acid (mRNA) levels. DESIGN: Human GH-secreting pituitary adenoma cells were cultured for periods from 4 days up to 3 weeks without or with octreotide (10 nM) and/or bromocriptine (10 nM). The effects of these drugs were measured on GH release, intracellular GH concentrations and intracellular GH mRNA levels. PATIENTS: Thirteen patients with GH-secreting pituitary adenomas were studied. Twelve patients were untreated, one had been pretreated with octreotide (12 weeks, 3 x 100 micrograms daily). MEASUREMENTS: GH, PRL, alpha-subunit and IGF-I concentrations in plasma, media and cell extracts were determined by immunoradiometric or radioimmuno-assays. GH mRNA levels were determined by automatic quantification of grain numbers in individual adenoma cells. RESULTS: Incubation of the adenoma cells for 4 days with 10 nM octreotide induced a dose-dependent inhibition of GH release and a parallel increase (increase varying between 124 and 617% of control) in the intracellular GH levels was observed in six of seven adenomas. In addition, bromocriptine, when effective in inhibiting GH release by the adenomas, also induced an increase in intracellular GH levels. Even after 3 weeks of exposure to 10 nM octreotide in vitro there was a statistically significant increase in intracellular GH levels (between 191 and 923% of control). Withdrawal of octreotide after 6 days of incubation resulted in a lowering of intracellular GH levels to control values, showing that the octreotide-induced increase in intracellular GH is reversible. In a 96-hour incubation with 10 nM octreotide, GH mRNA levels were increased in two, and slightly decreased in one of the three adenomas tested. This effect was time dependent in that there was no significant effect of 10 nM octreotide on GH mRNA levels in a 24-hour incubation. CONCLUSIONS: (1) Long-term in-vitro exposure of GH-adenoma cells to octreotide causes an increase in intracellular GH levels in the majority of the adenomas, probably because of an increase in GH mRNA levels in the adenoma cells; and (2) this considerable increase in intracellular GH levels may be one of the explanations for the relatively poor effect of octreotide on tumour shrinkage in patients with GH-secreting pituitary adenomas.

Adenoma

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

Octreotide stimulates insulin-like growth factor-binding protein-1: a potential pituitary-independent mechanism for drug action.

As the long-acting somatostatin analog octreotide attenuates polypeptide hormone hypersecretion, it has recently been used to effectively treat acromegaly and gastrointestinal carcinoid tumors. Most growth-promoting actions of GH are mediated by insulin-like growth factor-I (IGF-I), which circulates complexed with multiple binding proteins (IGFBPs). IGFBP-1, a nonglycosylated peptide, competes with the IGF-I receptor for ligand binding and also regulates IGF action. To examine GH-independent mechanisms for octreotide regulation of the GH axis, circulating levels of IGFBP-1 were measured hourly after sc octreotide or saline administration in normal and GH-deficient adults. As IGFBP-1 is inhibited by insulin and GH, the dynamic pattern of alterations in GH and insulin levels was also assessed. After octreotide (100 micrograms) administration to 10 normal subjects, mean IGFBP-1 concentrations were stimulated from 23 +/- 4 to 72 +/- 18 micrograms/L (P < 0.007 vs. saline) after 2 h. Maximal induction of IGFBP-1 levels occurred after 3 h (325 +/- 115 micrograms/L; P < 0.02 vs. saline) and remained elevated (P < 0.005) for 6 h. IGFBP-1 was induced by octreotide in all subjects and was confirmed by Western ligand blotting. Insulin and GH levels preceding the rise in IGFBP-1 were unaltered by octreotide. Octreotide stimulated IGFBP-1 5-fold during a sustained fast in 4 normal subjects, despite equally suppressed insulin levels in both saline- and octreotide-treated groups. In 4 GH-deficient adults, IGFBP-1 levels were stimulated by octreotide from 16 +/- 3 to 146 +/- 36 and 154 +/- 28 micrograms/L after 3 and 4 h, respectively. In conclusion, the somatostatin analog octreotide induces IGFBP-1 independently of GH and insulin. As IGFBP-1 regulates the action of IGF-I, octreotide stimulation of IGFBPs may represent an additional pharmacological mechanism for attenuating the GH-IGF-I axis.

Adolescent

Octreotide. A review of its pharmacodynamic and pharmacokinetic properties, and therapeutic potential in conditions associated with excessive peptide secretion.

Octreotide is an analogue of somatostatin. Like endogenous somatostatin, it exerts a potent inhibitory effect on the release of anterior pituitary growth hormone and thyroid-stimulating hormone, and peptides of the gastroenteropancreatic endocrine system, while overcoming some of the shortcomings of exogenously administered somatostatin, namely a short duration of action, a need for intravenous administration and postinfusion rebound hypersecretion of hormone. Clinical studies have shown that octreotide is effective in the treatment of acromegaly and thyrotrophinomas. In comparative trials octreotide was significantly superior to bromocriptine in patients with acromegaly. Octreotide also appears to provide a significant advantage over existing therapies in the management of the carcinoid syndrome and offers considerable therapeutic potential in reversing carcinoid crises which may be life-threatening. Trials in patients with tumours producing vasoactive intestinal peptide demonstrated that octreotide may be an effective first-line choice for this condition, which has usually metastasised and become refractory to traditional symptomatic therapy. In limited studies in patients with high-output secretory diarrhoea, including cryptosporidium-related diarrhoea associated with AIDS and in patients with small bowel fistulas, octreotide has been shown to be effective in reducing stool/fistula output. However, well-designed clinical trials are still required to confirm its long term usefulness in these disorders. Similarly, although the use of octreotide in other conditions such as neonatal hypoglycaemia caused by nesidioblastosis, reactive pancreatitis, insulin-dependent diabetes mellitus, postprandial hypotension and the dumping syndrome has provided encouraging preliminary results, more studies are needed to clarify the place of octreotide in their treatment. Overall, octreotide appears to be well tolerated with the most frequently reported reactions being pain at the site of injection and gastrointestinal symptoms such as abdominal cramps, nausea, bloating, flatulence, diarrhoea and steatorrhoea. These adverse effects usually abate with time. Additionally, octreotide, like endogenous somatostatin, may also result in cholelithiasis, presumably by altering fat absorption and possibly by decreasing motility of the gallbladder. Thus, octreotide represents a new departure from traditional therapies in the treatment of various pathophysiological states associated with excessive peptide production and secretion. It offers a significant advantage over existing therapies in the medical management of patients with acromegaly, thyrotrophinomas, the carcinoid syndrome, tumours producing vasoactive intestinal peptide and severe secretory diarrhoea in whom conventional management options have either become exhausted or have provided suboptimal symptomatic relief.

Animals

The use of the long-acting somatostatin analogue, octreotide acetate, in patients with islet cell tumors.

Octreotide lowers plasma concentrations of the marker peptide in the majority of patients with islet cell tumors. However, as described above the effect of octreotide on plasma concentrations of marker peptides is not necessarily related to the effect on symptoms. Nevertheless octreotide is capable of producing symptomatic relief in a large proportion of patients with islet cell tumor syndromes. The data on the effect of octreotide on the symptoms due to VIPoma and due to the carcinoid syndrome (presumably including some who have islet cell tumors) are strong and the drug has been approved for these indications by the Food and Drug Administration. With respect to the other islet cell tumor syndromes, the published data suggest that the utility of octreotide differs in the different syndromes. Insulinomas are usually single, benign, and can and should be removed surgically, resulting in cure. Octreotide therefore has no role to play in such patients, particularly since the response of insulinomas is variable. However in the 10 per cent of insulinomas that are malignant octreotide is certainly effective in at least a portion of cases, although as yet the true response rate and efficacy compared with diazoxide is not clear. Although octreotide is effective at reducing acid output, and thus improving symptoms in patients with Zollinger-Ellison syndrome, because of the effectiveness of histamine H2-receptor antagonists and omeprazole, there is no need for octreotide in this syndrome. For patients with glucagonoma, GHRHoma, Cushing's syndrome, and other rare islet cell tumor syndromes octreotide may well be of benefit and should be considered. The current data do not support the use of octreotide for an antitumor effect.

Adenoma, Islet Cell

The effect of the somatostatin analogue octreotide on growth hormone secretion in insulin-dependent diabetics without residual insulin secretion.

Growth hormone (GH) hypersecretion is well documented in insulin-dependent diabetes mellitus (IDDM). Somatostatin inhibits GH in acromegalics and healthy subjects although data on its inhibitory effects on high GH levels in IDDM patients are controversial. The effect of treatment with the somatostatin analogue octreotide ("Sandostatin") on GH secretion, IGF1 levels and metabolic control was investigated in insulin-dependent diabetics. Growth hormone and blood glucose were measured at hourly intervals whilst IGF-I was measured every 6 hours during the 24-h period before and after 7 days' treatment with octreotide (200 micrograms subcutaneously three times daily) in 10 C-peptide negative diabetics. Octreotide significantly reduced mean 24 h GH profile (7.2 +/- 0.7 mU/L before; 5.2 +/- 0.5 mU/L on octreotide, p less than 0.01), IGF-I levels (0.62 +/- 0.06 before; 0.47 +/- 0.05 on octreotide, p less than 0.005) mean 24 h blood glucose (14.4 +/- 0.5 mmol/L before; 12.6 +/- 0.4 mmol/L on octreotide, p less than 0.001) and daily insulin requirements (44.8 +/- 3.0 IU before; 37.2 +/- 3.0 IU on octreotide, p less than 0.02). The shape of 24 h GH profile curve changed significantly on octreotide treatment (p less than 0.05) when it consisted of three nadirs and three peaks closely linked with the time of octreotide administration. Moderate (abdominal discomfort) to severe hypoglycaemia) transient side effects have been observed in all treated patients. The results of this study showed that short-term treatment with octreotide given s. c. every eight hours modulates the pattern of GH secretion in C-peptide negative insulin-dependent patients.(ABSTRACT TRUNCATED AT 250 WORDS)

Adult

Effect of octreotide on intestinal motility and bacterial overgrowth in scleroderma.

BACKGROUND: Patients with scleroderma may have abnormal motility of the small intestine, with pseudoobstruction and bacterial overgrowth. Standard stimulatory agents are often ineffective in such patients. Because the somatostatin analogue octreotide evokes intestinal motor activity in normal subjects, we hypothesized that it might increase motility in patients with scleroderma. METHODS: We studied the effects of octreotide on intestinal motility and plasma motilin concentrations in five fasting patients with scleroderma who had bacterial overgrowth and in six fasting normal subjects. The motor effects of octreotide were correlated with its effects on abdominal symptoms and bacterial overgrowth as determined by the level of breath hydrogen excretion. RESULTS: In the normal subjects, octreotide (10 micrograms subcutaneously) increased the mean (+/- SD) frequency of intestinal migrating complexes, which reflect intestinal motility, from 1.5 +/- 1.0 to 4.1 +/- 1.1 every three hours. In the patients with scleroderma, who had no spontaneous migrating complexes, octreotide (100 micrograms) induced 3.6 +/- 2.3 complexes every three hours. These complexes propagated at the same velocity and had two-thirds the amplitude of the spontaneous complexes in normal subjects. Plasma motilin concentrations, which were higher in the patients with scleroderma (229 +/- 74 pmol per liter) than in the normal subjects (112 +/- 37 pmol per liter), were inhibited by octreotide, suggesting that intestinal activity evoked by octreotide is independent of motilin. Treatment of the patients with scleroderma with octreotide (50 micrograms every evening) for three weeks reduced breath hydrogen excretion while they were fasting from 25 +/- 5 to 4 +/- 2 ppm (P = 0.001) and breath hydrogen excretion after they ingested 50 g of glucose from 46 +/- 24 to 8 +/- 7 ppm (P = 0.015); these reductions were accompanied by a significant decrease in nausea, bloating, and abdominal pain and by less frequent emesis. CONCLUSIONS: Octreotide stimulates intestinal motility in normal subjects and in patients with scleroderma. In such patients, the short-term administration of octreotide reduces bacterial overgrowth and improves abdominal symptoms. This agent may be useful for the treatment of intestinal dysmotility in patients with scleroderma.

Adult

Octreotide: a long-acting somatostatin analog.

One of the exciting recent developments in endocrinology research has been the introduction of the somatostatin analog, octreotide into clinical practice. Octreotide provides a new therapeutic tool for diseases in which somatostatin or somatostatin-like products are secreted abnormally. Unfortunately, early experience was obtained largely with uncontrolled, compassionate drug use. When clinical information regarding octreotide is critically reviewed, evaluation is hampered by the lack of long-term studies with adequate numbers of patients and controls. Nevertheless, the information available does indicate that octreotide is promising in the acute treatment of some of the manifestations of the carcinoid syndrome, including carcinoid crisis. Similarly, octreotide ameliorates symptoms of other gut neuroendocrine tumors, particularly vasoactive intestinal peptide (VIP)-secreting tumors. Octreotide also has potential in the management of growth-hormone-secreting tumors. Long-term treatment with octreotide for these diseases requires more information regarding alterations in disease progression and development of adverse effects including variable effects on blood sugar regulation and steatorrhoea. Octreotide also has been used in nonmalignant gastrointestinal disorders, but larger studies are necessary before recommendations regarding these applications can be made. The cost of octreotide, as may be expected, is high but is justified for patients with the specific indications outlined in this review. These indications may change as understanding of the drug increases. Octreotide offers promise, particularly as acute treatment for the troublesome symptoms of several neuroendocrine disorders.(ABSTRACT TRUNCATED AT 250 WORDS)

Drug Interactions

The growth hormone responses to octreotide in acromegaly correlate with adenoma somatostatin receptor status.

We studied the correlation between the presence of somatostatin (SRIH) receptors in GH secreting tumors and the in vivo GH responsiveness to the SRIH analog octreotide in 11 acromegalic patients. To test in vivo octreotide (SMS 201-995) responsiveness, the patients were given a single dose (100 micrograms, sc) and their plasma GH levels were measured for several hours. Somatostatin receptor content was measured by receptor autoradiography on frozen tumor tissue sections using either a somatostatin-28 analog or a SRIH octapeptide analog (Tyr3-octreotide) as iodinated radioligands. In eight acromegalic patients, who had complete and long lasting GH inhibition after octreotide administration, SRIH receptors with high affinity for octreotide were distributed homogeneously in the tumor tissue. Two patients had moderate, short duration, and incomplete inhibition of GH secretion after octreotide administration, and their tumors had very low capacity and/or affinity SRIH receptors. A further patient who had a moderate response to octreotide had SRIH receptors that were nonhomogeneously distributed throughout the tumor. These data suggest that the therapeutic efficacy of octreotide may be related to tumor SRIH receptor levels; the best in vivo responses to octreotide occurred in patients whose tumors contained a high density of homogeneously distributed receptors which had a high affinity for octreotide.

Acromegaly

Clinically nonfunctioning pituitary adenoma and octreotide response to long term high dose treatment, and studies in vitro.

We have studied seven patients with a clinically nonfunctioning or alpha-subunit-secreting pituitary macroadenoma, four of whom received long term, high dose octreotide treatment. We have attempted to correlate the presence of somatostatin receptors (SS-R) in the adenomas and the outcome of octreotide treatment, as measured by tumor size, improvements in visual field defects, and hormonal response. The presence of SS-R in the pituitary adenomas was demonstrated in vivo using [111indium]octreotide scintigraphy and in vitro by autoradiography of tissue fragments obtained after transsphenoidal surgery. Adenomas from six of the seven subjects were SS-R positive. High dose (1200 micrograms, sc, daily) octreotide treatment was given to four subjects, three of whom were SS-R positive. Improvement of the visual field defects was observed in three of four patients (including the SS-R-negative subject), although no computed tomographic scan-assessed tumor size reduction was found. Two of four patients showed small but significant reductions in serum FSH concentrations (to 83% and 93% of initial values) with treatment. These in vivo responses to high dose octreotide treatment could not be predicted by pretreatment responses to 200 micrograms TRH or 100 micrograms octreotide. Tissue fragments for cell culture were obtained from six patients, and in vitro release of gonadotropins and/or alpha-subunit could be demonstrated in five cultures. In vitro, octreotide (10 nmol/L) significantly decreased gonadotropiin or subunit release in three of five cultures, whereas bromocriptine (10 nmol/L) significantly reduced the release in four of five cultures and to a significantly greater extent than octreotide. In conclusion, in six of seven patients with a clinically nonfunctioning or alpha-subunit-secreting pituitary adenoma, SS-R were demonstrated in the tumor. In vitro incubation of adenoma cells with octreotide resulted in mild inhibition of gonadotropin or alpha-subunit release. Although in vivo long term treatment with high doses of octreotide did not result in substantial tumor size reduction, improvement of visual field defects was observed in three of four subjects.

Adenoma