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J Weeke

Publications and source records attributed to J Weeke.

At least 19 recordsLinked to original sources

[Laparoscopic adrenalectomy. An alternative to open surgery of minor adrenal tumors].

In the period February 1994 to November 1995 11 laparoscopic adrenalectomies were performed at our institution (seven women, four men). A transperitoneal approach was used in both right- and left-sided operations. Results were collected retrospectively. Indications for surgery were: Conn's syndrome (four), Cushing's syndrome (two), phaecromocytoma (four), and incidentaloma (one). The operations took median 170 minutes (range 105-250 minutes). Median size of the tumour was 4 cm range 1(1/2)-5 cm). No significant peri- or postoperative complications were recorded. The patients were discharged from the surgical unit median two days after surgery. Laparoscopic operation emerges as an alternative to open operation when dealing with smaller adrenal tumours. Because of the small number of patients, these operations have to be restricted to a few centres where both internists, anaesthesiologists and surgeons with expertise in this field are found.

Adrenal Gland Neoplasms

[Substrate metabolism in untreated and treated thyrotoxicosis].

Accelerated metabolism is a hallmark of thyrotoxicosis, but the underlying biochemical mechanisms are incompletely understood. In order to elucidate these metabolic events further, we studied 12 patients with newly diagnosed diffuse (10 patients) or nodular (two patients) toxic goitre (ten women, two men; age 42.8 +/- 3.2 yr; BMI: 21.6 +/- 0.7 kg/m2) before ("TOX") and after ("TRE") 11.2 +/- 1.0 weeks treatment with methimazole and compared these patients to a control group ("CTR") of 11 subjects (nine women, two men; age 40.5 +/- 3.9 yr; BMI 22.5 +/- 1.0 kg/m2). All were studied for three hours in the basal state, using indirect calorimetry, isotope dilution for measurement of glucose turnover and the forearm technique for assessment of muscle metabolism. Prior to treatment patients with thyrotoxicosis were characterized by: Increased (p < 0.05) levels of T3 (3.75 +/- 0.23 [TOX], 1.89 +/- 0.08 [TRE] and 1.75 +/- 0.11 [CTR] nmol/l), resting energy expenditure (130.5 +/- 3.5 [TOX], 107.7 +/- 2.7 [TRE] and 106.3 +/- 3.1 [CTR] percent of predicted), protein oxidation (0.67 +/- 0.03 [TOX], 0.54 +/- 0.06 [TRE] and 0.46 +/- 0.05 [CTR] mg/kg/min), lipid oxidation (1.34 +/- 0.08 [TOX], 1.00 +/- 0.06 [TRE] and 1.02 +/- 0.04 [CTR] mg/kg/min), endogenous glucose production (2.51 +/- 0.13 [TOX], 1.86 +/- 0.12 [TRE] and 1.85 +/- 0.12 [CTR] mg/kg/min), non-oxidative glucose turnover (1.28 +/- 0.16 [TOX], 0.75 +/- 0.18 [TRE] and 0.71 +/- 0.11 [CTR] mg/kg/min) and a 50% increase in total forearm blood flow. Glucose oxidation (1.23 +/- 0.09 [TOX], 1.13 +/- 0.10 [TRE] and 1.13 +/- 0.09 [CTR] mg/kg/min), exchange of substrates in the muscles of the forearm and circulating levels of insulin, C-peptide, growth hormone or glucagon were not influenced by hyperthyroidism. Propranolol (20 mg thrice daily) given to seven of the patients for two days did not affect circulating levels of thyroid hormones, energy expenditure or glucose turnover rates. These results suggest that all major fuel sources contribute to the hypermetabolism of thyrotoxicosis and that augmented non-oxidative glucose metabolism may further aggravate the condition. All abnormalities recede with medical treatment of the disease.

Adult

No effect of growth hormone on serum insulin-like growth factor binding protein-3 proteolysis.

Increased proteolysis of insulin-like growth factor binding protein (IGFBP)-3 is seen in several pathophysiological conditions and may represent an important mechanism for the regulation of insulin-like growth factor bioavailability. It has previously been suggested that proteolysis of IGFBP-3 is dependent on the GH status. To investigate this, IGFBP-3 proteolysis was measured in three groups of subjects: 1) GH-deficient patients before and after GH replacement (n = 14); 2) healthy subjects before and after 14 days of GH administration (n = 7); and 3) acromegalic patients before and after treatment with a long-acting SRIH analogue (octreotide; n = 14). In vivo IGFBP-3 proteolysis was investigated by Western immunoblotting. No difference was detected in pretreatment samples, and GH treatment in GH-deficient subjects or octreotide treatment in acromegalic subjects had no impact on in vivo proteolysis. In contrast, GH administration to healthy subjects caused a 21% increase in in vivo proteolysis (P = 0.0008). In vitro IGFBP-3 proteolysis was investigated by incubation of serum with 125I-rhIGFBP-3, followed by SDS-PAGE. In pretreatment samples, the percentage of proteolyzed 125I-rhIGFBP-3 was 13 +/- 1% (acromegalic subjects), 11 +/- 1% (healthy subjects), and 9 +/- 1% (GH-deficient subjects) (P < 0.009, GH-deficient vs. acromegalic subjects). Treatment had no effect on in vitro proteolysis. We conclude that GH status has no major impact on IGFBP-3 protease activity in serum.

Acromegaly

Gene transcription of receptors for growth hormone-releasing peptide and somatostatin in human pituitary adenomas.

Growth hormone (GH)-releasing peptides (GHRP) or secretagogs (GHS) constitute a family of synthetic compounds with potent and specific GH releasing activity. The receptor (GHS-R) has recently been cloned even though the endogenous ligand remains to be identified. GHRPs act both at the hypothalamic and the pituitary level through mechanisms involving amplification of GH-releasing hormone activity and functional somatostatin antagonism. In the present study we examined the co-expression of messenger RNA (mRNA) for GHS-R and all 5 somatostatin receptor subtypes (sstr 1-5) in 28 human pituitary tumors by RT-PCR. GHS-R transcription was detected in 11 out of 12 somatotroph adenomas and in 2 out of 2 prolactinomas, whereas GHS-R expression was detected in only 2 out of 14 clinically nonfunctioning adenomas (NFPA), and no expression was seen in the only ACTH secreting adenoma. Almost all tumors expressed sstr 2 mRNA (n = 24), whereas only 1 tumor expressed sstr 4 mRNA. The expression of sstr 3 mRNA was inversely associated with GHS-R expression (P < 0.001), which could be attributed to a high prevalence of sstr 3 expression in NFPA. This study suggests that GHS-R expression is predominantly observed in somatotroph adenomas and much less so in NFPA. Moreover, the presence of a distinct pattern of somatostatin receptor subtype co-expression is suggested, which may provide a molecular basis for the complex interaction between GHRPs and somatostatin.

Acromegaly

Is skeletal responsiveness to thyroid hormone altered in primary osteoporosis or following estrogen replacement therapy?

Hyperthyroidism is characterized by increased bone turnover and resorptive activity. Similar changes in remodeling are seen in osteoporosis. To study the pathogenetic role of thyroid hormone in osteoporosis, we measured concentrations of free and total thyroid hormones and investigated the sensitivity of the skeleton toward thyroid hormones in 14 osteoporotic, 16 estrogen-treated, and 15 normal postmenopausal women with comparable thyroid status. Triiodothyronine (T3, 60 microg/day for 7 days) was administered to the three groups. The skeletal response was assessed by monitoring bone alkaline phosphatase (BAP), osteocalcin (BGP), and pyridinium cross-linked telopeptide domain of type I collagen (ICTP) in serum and urinary excretion of hydroxyproline (OHP), pyridinoline (PYR), and deoxypyridinoline (DPR) at days 0, 8, 15, and 57. Women on estrogen replacement therapy exhibited lower bone turnover than the normal postmenopausal women. Markers of bone formation were reduced by 19-43% and markers of resorption by 22-48%. The osteoporotic women displayed lower bone mass at the lumbar spine and the distal forearm (p < 0.01-0.001), but the levels of biochemical markers of bone formation and resorption were comparable to values obtained in the normal postmenopausal women. T3 stimulation caused significant increases (p values ranging between 0.05-0.001) in all three groups of the resorptive markers: ICTP (47%, 47%, 45%), OHP (29%, 30%, 33%), PYR (43%, 27%, 51%), and DPR (42%, 24%, 59%). Of the formative markers, only BGP increased significantly (32%, 40%, 47%) (p < 0.001). At day 57, however, all three formative markers increased compared with day 15 (p < 0.05-0.001). No significant differences in bone markers were demonstrated between groups. In the osteoporotic group, as the only group, serum calcium increased (p < 0.05) and serum PTH fell (p < 0.05). In conclusion, osteoporosis and estrogen substitution are not characterized by altered concentrations of thyroid hormones or responsiveness to thyroid hormones at the level of individual bone cells; however, altered responses pertaining to PTH and calcium were detected.

Absorptiometry, Photon

Skeletal responsiveness to thyroid hormone is not altered at menopause.

Hyperthyroidism is characterized by increased bone turnover and resorptive activity. Similar changes in remodeling are seen after menopause. To study the role of thyroid hormone in the menopause-related changes in bone metabolism, we investigated thyroid status and the sensitivity of bone to thyroid hormone in 14 premenopausal and 15 early postmenopausal women. Triiodothyronine (T3) was administered to the two groups as 20 micrograms doses three times daily for 7 days. The skeletal response was assessed by monitoring bone alkaline phosphatase (BAP), osteocalcin (BGP), pyridinium crosslinked telopeptide domain of type I collagen (ICTP) in serum and urinary excretion of hydroxyproline (OHP), pyridinoline (PYR), and deoxypyridinoline (DPR) at days 0, 8, 15, and 57. The early postmenopausal women had increased bone turnover as reflected in sBAP (p < 0.05), sBGP (p < 0.05), and uOHP (p < 0.01) when compared with premenopausal controls. T3 stimulation of early postmenopausal and premenopausal women significantly increased the markers of bone resorption: sICTP (56% vs. 44%), uOHP (45% in both groups), and UPYR (83% vs. 17%) without any significant differences between groups. Of the formative markers, only sBGP increased significantly after stimulation (34% vs. 41%), but both sBGP and sBAP displayed significant increases from days 15 to 57. Thus, stimulation with thyroid hormone results in an immediate stimulation of ongoing bone formation and bone resorption, but also initiation of new remodeling which, after 8 weeks, reached the formative phase. PTH decreased (p < 0.01) in both groups but serum calcium and serum phosphate were unaltered. In conclusion, menopause is not characterized by altered levels of thyroid hormones or altered skeletal responsiveness to thyroid hormones.

Alkaline Phosphatase

Glucose turnover, fuel oxidation and forearm substrate exchange in patients with thyrotoxicosis before and after medical treatment.

OBJECTIVE: Accelerated metabolism is a hallmark of thyrotoxicosis, but the underlying biochemical mechanisms are incompletely understood and the majority of studies have investigated normal subjects rendered only modestly hyperthyroid for a brief period of time. We have therefore studied a group of thyrotoxic patients using several different techniques. DESIGN: Twelve patients with newly diagnosed diffuse (10 patients) or nodular (2 patients) toxic goitre (10 women, 2 men; age 42.8 +/- 3.2 years; BMI 21.6 +/- 0.7 kg/m2) before ('pretreatment') and after ('treated') 11.2 +/- 1.0 weeks treatment with methimazole and compared these patients to a control group ('control') of 11 subjects (9 women, 2 men; age 40.5 +/- 3.9 years; BMI 22.5 +/- 1.0 kg/m2). All were studied for 3 hours in the basal state, using indirect calorimetry, isotope dilution for the measurement of glucose turnover and the forearm technique for assessment of muscle metabolism. RESULTS: Prior to treatment patients with thyrotoxicosis were characterized by increased (P < 0.05) levels of T3 (3.75 +/- 0.23 nmol/l (pretreatment), 1.89 +/- 0.08 (treated) and 1.75 +/- 0.11 (control)), resting energy expenditure (130.5 +/- 3.5 (pretreatment), 107.7 +/- 2.7 (treated) and 106.3 +/- 3.1 (control), % of predicted), protein oxidation (0.67 +/- 0.03 (pretreatment), 0.54 +/- 0.06 (treated) and 0.46 +/- 0.05 (control), mg/kg/min), lipid oxidation (1.34 +/- 0.08 (pretreatment), 1.00 +/- 0.06 (treated) and 1.02 +/- 0.04 (control), mg/kg/min), endogenous glucose production (2.51 +/- 0.13 (pretreatment), 1.86 +/- 0.12 (treated) and 1.85 +/- 0.12 (control), mg/kg/min), non-oxidative glucose turnover (1.28 +/- 0.16 (pretreatment), 0.75 +/- 0.18 (treated) and 0.71 +/- 0.11 (control), mg/kg/min) and a 50% increase in total forearm blood flow. Glucose oxidation (1.23 +/- 0.09 (pretreatment), 1.13 +/- 0.10 (treated) and 1.21 +/- 0.11 (control) mg/kg/min), exchange of substrates in the muscles of the forearm and circulating levels of insulin, C-peptide, growth hormone or glucagon were not influenced by hyperthyroidism. Propranolol (20 mg thrice daily) given to 7 of the patients for 2 days did not affect circulating levels of thyroid hormones, energy expenditure or glucose turnover rates. CONCLUSIONS: These results suggest that all major fuel sources contribute to the hypermetabolism of thyrotoxicosis and that augmented non-oxidative glucose metabolism may further aggravate the condition. All abnormalities diminish with medical treatment of the disease.

Adrenergic beta-Antagonists

Calorigenic effects of growth hormone: the role of thyroid hormones.

GH administration increases energy expenditure, independent of changes in lean body mass, in healthy, obese, and GH-deficient subjects. This may be causally linked to the well known GH-induced increase in peripheral T4 to T3 generation, but experimental data are sparse. In this study we have addressed whether 1) the calorigenic effects of GH administration could be reproduced by oral supplementation of T3 in a dose selected to mimic the GH-induced increase in peripheral T3 levels; and 2) combined GH and T3 administration have a synergistic effect on resting energy expenditure (REE). Eight normal male subjects (aged 21-27 yr; body mass index, 21.11-27.17 kg/m2) were randomly studied during four 10-day treatment periods with 1) daily sc placebo injections and placebo tablets, 2) daily sc GH injections (0.1 IU/kg x day) and placebo tablets, 3) daily T3 administration (40 microg on even dates, 20 microg on uneven dates) plus placebo injections, and 4) daily GH injections plus T3 administration. GH administration increased both free T3 (FT3) levels [mean +/- SE, 6.2 +/- 0.3 (control) vs. 7.3 +/- 0.5 (GH) pmol/L; P < 0.05] and REE [mean +/- SE, 1959 +/- 67 (control) vs. 2164 +/- 55 (GH) Cal/24 h; P < 0.01]. T3 administration yielded comparable levels of FT3 (7.7 +/- 0.5 pmol/L; T3 vs. GH, P = 0.37), but did not increase REE (2015 +/- 48 Cal/24 h; T3 vs. control, P = 0.23). Combined GH and T3 administration increased REE to a level higher than that seen with T3 alone (2279 +/- 68 Cal/24 h; T3 vs. GH plus T3, P < 0.01). Significant increments in serum levels of insulin-like growth factor I and insulin were recorded with GH administration, but not with T3 alone. Resting heart rate increased to a similar degree after GH administration and T3 supplementation, respectively. Tympanic temperature remained unaltered in all four studies. The results suggest that the calorigenic effect of GH is not mediated solely through increased conversion of T4 to T3.

Adult

Insulin-like growth factor I alters peripheral thyroid hormone metabolism in humans: comparison with growth hormone.

Insulin-like growth factor I (IGF-I) is considered to mediate some of the growth-promoting and metabolic effects of growth hormone (GH). Growth hormone treatment of healthy and GH-deficient subjects is accompanied by increased conversion of thyroxine (T4) to triiodothyronine (T3) in peripheral tissues. Whether these effects are mediated by IGF-I is unknown. To assess the respective roles of these hormones on thyroid hormone metabolism we have treated two groups of subjects. The first group consisted of eight healthy subjects who were treated with IGF-I (10 micrograms.kg-1.h-1 sc for 5 days). The second group consisted of eight subjects with combined GH and thyrotropin (TSH) deficiency due to acquired pituitary disease. They were treated with IGF-I (10 micrograms.kg-1.h-1 sc for 7 days), GH (2 IU m-2 sc q.i.d.) or both hormones together. The IGF-I treatment in healthy subjects led to an increase in free T3 (FT3) and a reduction in TSH levels, whereas FT4 and total T4 (TT4) levels remained unchanged. In the second group-in which all subjects were substituted with oral L-thyroxine-treatment with IGF-I led to an elevation of FT3 in the face of unchanged T4 levels. Growth hormone alone and GH plus IGF-I resulted in a more pronounced elevation in T3 level. The results suggest that IGF-I partially mediates the well-known effects of GH on peripheral conversion of T4 to T3. However, GH has more pronounced effects on thyroid hormones that apparently are not mediated by IGF-I.

Adult

Insulin-like growth factors (IGF)-I and -II and IGF binding protein-1, -2, and -3 in patients with acromegaly before and after adenomectomy.

The interrelationship between insulin-like growth factors (IGFs) and their major binding proteins (IGFBPs) as a function of disease activity in acromegaly has not previously been prospectively evaluated. We studied basal and insulin-stimulated serum levels of IGF-I and -II and IGFBP-1, -2, and -3 in six acromegalic patients before and 2 months after successful adenomectomy compared with a group of sex- and age-matched healthy, untreated subjects. All were studied postabsorptively (11 AM) and at the end of a 2-hour euglycemic glucose clamp (0.4 mU insulin/kg x min). Serum IGF-I levels (mean +/- SE) were elevated in acromegaly but were normalized following therapy (basal state IGF-I [micrograms/L], 857 +/- 119 [active] v 255 +/- 65 [postoperative] v 190 +/- 20 [control]). Serum IGF-II levels did not change following therapy and were similar to those of the control group. IGF levels did not change during the clamp. Serum IGFBP-3 levels were elevated in active acromegaly, but were normalized after therapy (basal state IGFBP-3 [micrograms/L] 6,983 +/- 612 [active] v 3,939 +/- 504 [postop] v 3,358 +/- 125 [control]). The molar ratio of (IGF-I+IGF-II): IGFBP-3 was similar in all studies. Serum IGFBP-1 interacted significantly with time in all studies, exhibiting a gradual decrease in the basal state and ensued by further suppression during the clamp. Insulin and IGFBP-1 correlated inversely in the pooled data and in the acromegalic patients.(ABSTRACT TRUNCATED AT 250 WORDS)

Acromegaly

Growth hormone administration stimulates energy expenditure and extrathyroidal conversion of thyroxine to triiodothyronine in a dose-dependent manner and suppresses circadian thyrotrophin levels: studies in GH-deficient adults.

OBJECTIVE: The impact of exogenous GH on thyroid function remains controversial although most data add support to a stimulation of peripheral T4 to T3 conversion. For further elucidation we evaluated iodothyronine and circadian TSH levels in GH-deficient patients as part of a GH dose-response study. PATIENTS: Eight GH-deficient adults, who received stable T4 substitution due to central hypothyroidism; two patients, who were euthyroid without T4 supplementation were studied separately. DESIGN: All patients were initially studied after at least 4 weeks without GH followed by 3 consecutive 4-week periods in fixed order during which they received daily doses of 1, 2 and 4 IU of GH/m2 body surface area. The patients were hospitalized for 24 hours at the end of each period. MEASUREMENTS: Circulating total and free concentrations of T4 and T3, total rT3 and TSH were measured once at the end of each study period. Circadian TSH levels were recorded during the period without GH and during GH treatment with 2 IU GH. RESULTS: Highly significant GH dose-dependent increases in total and free T3 and a reduction in rT3 were observed. The T3/T4 ratio also increased with increasing GH dosages (P < 0.001). In seven patients subnormal T3 levels were recorded in the period off GH, despite T4 levels well within the normal range. Resting energy expenditure also increased and correlated with free T3 levels (r = 0.47, P < 0.05). The circadian TSH levels exhibited a significant nocturnal increase during the period without GH, whereas GH therapy significantly suppressed the TSH levels and blunted the circadian rhythm (mean TSH levels (mU/l) 0.546 +/- 0.246 (no GH) vs 0.066 +/- 0.031 (2 IU GH) (P < 0.05)). The two euthyroid non-T4 substituted patients exhibited qualitatively similar changes in all parameters. CONCLUSIONS: GH administration stimulated peripheral T4 to T3 conversion in a dose-dependent manner. Serum T3 levels were subnormal despite T4 substitution when the patients were off GH but normalized with GH therapy. Energy expenditure increased with GH and correlated with free T3 levels. GH caused a significant blunting of serum TSH. These findings suggest that GH plays a distinct role in the physiological regulation of thyroid function in general, and of peripheral T4 metabolism in particular.

Adult

[Long-term treatment with octreotide of patients with acromegaly].

We bring our experiences with and results of octreotide treatment for 0.5 to seven years in 26 highly selected acromegalic patients, i.e. they had almost all been operated upon before or were for other reasons not first-choice neurosurgical candidates. Sixteen patients responded immediately to octreotide and achieved good control of symptoms and average serum growth hormone levels below 5 micrograms/l. Five additional patients responded adequately to octreotide after a renewed neurosurgical attempt, and two other patients achieved satisfactory control after successful neurosurgery. Thus we had to resort to radiation therapy in three out of these 26 patients. We should like to emphasize the fact that acromegalic patients, who initially do not respond adequately to octreotide therapy, may often do so after a renewed partial adenomectomy. Octreotide therapy has in our hands been practically without side effects, apart from gastrointestinal symptoms during the initial days of treatment. All 26 patients had an ultrasound-scan of the gallbladder and biliary tracts before and during long-term octreotide administration, and with the exception of one patient with gallbladder sediment, in whom no pretreatment scanning had been performed, we had no development of biliary tract abnormalities in these up to 65 year old patients. This may be due to composition and timing of meal intake in relation to that of octreotide. Fecal fat excretion, D-vitamin metabolites in serum and prothrombin time were similar in octreotide-treated and untreated acromegalic patients.(ABSTRACT TRUNCATED AT 250 WORDS)

Acromegaly

Effects of growth hormone and thyroxine on kidney insulin-like growth factor-I and renal growth in hypophysectomized rats.

The effects of treatment for 11 days with human growth hormone (hGH; 140 micrograms/day), thyroxine (T4; micrograms/day) and hGH+T4 on renal growth and content of insulin-like growth factor-I (IGF-I) in hypophysectomized rats have been compared with saline-treated hypophysectomized animals and intact control animals. Right kidney weight and kidney weight/body weight ratio remained low in the saline-treated group (313 +/- 9 mg vs 694 +/- 28 mg in controls on day 11, P < 0.001 and 3.4 +/- 0.12 x 10(-3) vs 4.2 +/- 0.10 x 10(-3), P < 0.005 respectively). In T4- and hGH-treated animals, kidney weight gain was similar (to 420 +/- 14 and 450 +/- 22 mg on day 11 respectively, P > 0.05), whilst the increase was greater in the group given hGH+T4 (to 572 +/- 34 mg, P < 0.001 compared with hGH- and T4-treated groups). The kidney weight/body weight ratio became normal in the T4- and hGH+T4-treated animals but remained low in the hGH-treated group. The renal content of IGF-I was low in the saline-treated animals throughout the study (92 +/- 10 ng/g on day 11 vs 219 +/- 8 ng/g in control animals, P < 0.001), but increased to a maximum of 88% above baseline on day 1 in the group given T4.(ABSTRACT TRUNCATED AT 250 WORDS)

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

Preliminary results with Sandostatin nasal powder in acromegalic patients.

This report details the first half of a double-blind, crossover sequence (Latin square) study of local and hormonal effects of nasally insufflated Sandostatin compared with those of subcutaneously injected Sandostatin. Nine of the planned 16 patients have been studied. They received a single application of 0.5, 1.0, and 2.0 mg Sandostatin as nasal powder and 0.1 mg by subcutaneous (SC) injection. The results indicate that absorption from the nasal epithelium occurs after approximately 10 minutes and comprises approximately 20% of the dose administered. This indicates that peak serum Sandostatin values occur very rapidly, ie, 10 minutes after application. After approximately 2 hours, the serum disappearance rates are similar to those obtained after SC injection. The suppressive effect on serum growth hormone (GH) levels is equal with the two forms of application and suggests that future clinical treatment with an intranasal application of 0.5 mg thrice daily is feasible. No side effects were noted apart from an immediate swelling of nasal mucosa, which receded gradually over the following 2 hours. This was either unnoticed or considered insignificant by the patients and will probably be deemed harmless by the rhinologist in eventual long-term clinical trials.

Absorption

Effects of growth hormone administration on fuel oxidation and thyroid function in normal man.

In a randomized, double-blind, placebo-controlled, cross-over study, we examined the effects of 14 days of growth hormone (GH) administration (12 IU/d subcutaneously) on energy expenditure (EE), respiratory exchange ratio (RER), and thyroid function in 14 normal adults of normal weight (eight men and six women). EE (kcal/24 h) was significantly elevated after GH administration (2,073 +/- 392, [GH], 1,900 +/- 310, [placebo], P = .01). RER was significantly lowered during GH administration (0.73 +/- 0.04 v 0.78 +/- 0.06, P = .02), reflecting increased oxidation of lipids. Total triiodothyronine (TT3) (nmol/L) and free T3 (FT3) (pmol/L) increased significantly during GH (TT3: 1.73 +/- 0.06 [GH], 1.48 +/- 0.08 [placebo], P = .01; FT3: 6.19 +/- 0.56 [GH], 5.49 +/- 0.56 [placebo], P = .01). Concomitantly, an insignificant decrease in reverse T3 (rT3) (nmol/L) was observed (0.07 +/- 0.01 [GH], 0.15 +/- 0.01 [placebo], P = .08). GH caused a highly significant increase in T3/thyroxine (T4) (x 100) ratio (1.84 +/- 0.12 [GH], 1.37 +/- 0.06 [placebo]). Serum thyrotropin (TSH) was not significantly changed by GH. No changes in total thyroxine (TT4) (nmol/L) (98 +/- 6 [GH], 111 +/- 8 [placebo], P = .40) and free thyroxine (FT4) (pmol/L) (17.4 +/- 1.3 [GH], 18.6 +/- 1.1 [placebo], P = .37) after 14 days of GH administration were observed. In conclusion, 2 weeks of GH administration increases EE and lipidoxidation. This finding may partly be mediated by an increase in peripheral T4 to T3 conversion.

Adult

SMS 201-995 and thyroid function in acromegaly: acute, intermediate and long-term effects.

The acute (TRH-stimulation test), intermediate (0-6 days administration), and long-term (0-30 months administration) effects of SMS 201-995 (octreotide) treatment on thyroid function were studied. Subcutaneous injection of 100 micrograms SMS 201-995 one hour before 200 micrograms TRH intravenously reduced serum TSH response area by more than 50% in 8 healthy volunteers. After 3 days of continuous subcutaneous infusion (CSI) of SMS 201-995 in 9 acromegalic patients (100 micrograms/24 h) a slight but significant decrease in serum total triiodothyronine (TT3) and a concomitant increase in serum TSH were demonstrated, indicating an initial inhibitory effect on peripheral deiodination of thyroxine. After a further 3 days treatment serum T3 and TSH had returned to prevalues. Six of the nine acromegalics were treated with SMS 201-995 (100-1500 micrograms/24 h) and admitted for diurnal hormone profiles on 13 occasions over 30 months. Apart from a barely significant increase in serum TSH, no changes in thyroid function were noted. The study was especially designed to detect minute changes over time in thyroid hormones. The only long-term effect of SMS 201-995 was the barely significant clinically irrelevant increase in serum TSH, possibly caused by a slight inhibition of peripheral deiodination of thyroxine.

Acromegaly