A pilot study of growth hormone therapy in dilated cardiomyopathy.
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Publications and source records attributed to H Frisch.
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OBJECTIVE: To evaluate the effect of growth hormone treatment on growth, levels of insulin-like growth factor I (IGF-I) and lymphocyte subsets in immunosuppressed renal allograft recipients. METHODS: 18 children (aged 8.0-16.6 years) received growth hormone 1 IU/Kg/week daily for two years. Height, IGF-I levels and in 11/18 patients, lymphocyte subsets were evaluated serially. RESULTS: Standardized growth velocity increased from -1.0+1.5 to +1.2+2.2 and standardized IGF-I levels from +0.8+1.5 to +3.1+1.1 (1 year) and to +1.4+1.7 (2 years). The total lymphocyte count and the number of T lymphocytes (CD3+) decreased. The decrease was more marked in CD8+ (from 1.5+0.3 x10(9)/L to 0.9+0.3 x10(9)/L, 1 year and to 0.8+0.1 x10(9)/L, 2 years) compared to CD4+ (from 1.5+0.3 x10(9)/L to 1.0+0.2 x10(9)/L, 1 year and to 1.3+0.2 x10(9)/L, 2 years), resulting in an increment of the CD4+/CD8+ index. CONCLUSIONS: The differential effect of growth hormone treatment on CD4+ and CD8+ lymphocytes might be explained by different expression of the IGF-I receptor in these distinct subsets.
The anabolic properties of growth hormone (GH) have been investigated extensively. The effects of GH on normal, hypertrophied and atrophied muscles have been studied previously in animal experiments that demonstrated an increase in muscle weight and size, but no comparable increase in performance or tension. In adults with GH deficiency, the changes in body composition can be corrected by GH treatment; lean body mass and strength increase within a few months. In children with GH deficiency, Turner's syndrome or intrauterine growth retardation, an increase in muscle tissue is seen after treatment with GH. In acromegalics with long-standing GH hypersecretion, the muscle volume is increased, but muscle strength and performance are not improved. These observations gave rise to the interest shown by healthy subjects and athletes in using GH to increase their muscle mass and strength. The improvements in muscle strength obtained by resistance exercise training in healthy older men or young men were not enhanced by additional administration of GH. The larger increases in fat-free mass observed in the GH-treated groups were obviously not due to accretion of contractile protein, but rather to fluid retention or accumulation of connective tissue. In experienced weightlifters, the incorporation of amino acids into skeletal muscle protein was not increased and the rate of whole body protein breakdown was not decreased by short-term administration of GH. The results of a study in power athletes confirm the results of these investigations. The study used GH treatment in power athletes compared with a placebo-control group, and the results indicated no increase in maximal strength during concentric contraction of the biceps and quadriceps muscles, although levels of insulin-like growth factor-I were doubled. In highly trained power athletes with low fat mass and high lean body mass, no additional effect of GH treatment on strength is to be expected.
OBJECTIVE: In children with idiopathic short stature (ISS) we studied the growth-promoting effect at 4 years of recombinant human growth hormone (rhGH) therapy in three dose regimens and evaluated whether increasing the dosage after the first year could prevent a decline in height velocity (HV). DESIGN: Included were 223 patients who were treated with subcutaneous administrations of rhGH 6 days per week. They were randomized to three groups: 3 IU/m2 body surface/day, 4.5 IU/m2/day, and 3 IU/m2/day during the first year and 4.5 IU/m2/day thereafter, corresponding with dosages of 0.2 and 0.3 mg/kg body weight/week, respectively. Growth was compared with a standard of 229 untreated children with ISS [ISS standard]. RESULTS: During the first year of treatment HV almost doubled and was higher with 4.5 IU/m2 than with 3 IU/m2. In the second year HV no longer differed among the groups, but increasing the dosage slowed the rate of the fall of HV. During 4 years of therapy the height SD score for age increased by a mean (SD) of 2.5 (1.0) [ISS standards], or 1.2 (0.7) (British standards), bone age increased by 4.8 (1.3) years, and predicted adult height SD score increased by 1.5 (0.7). After 4 years the results of the group with 4.5 IU/m2 were slightly better than those of the other groups. When dropouts were included in the analysis (assuming a stable height SD score after discontinuation of rhGH therapy), height gain was still significant. CONCLUSIONS: During 4 years of rhGH therapy, growth and final height prognosis improved, slightly more with 4.5 IU/m2 than with 3 IU/m2 or 3 to 4.5 IU/m2. However, bone age advanced on average 4.8 years during this period; therefore, any effect on final height will probably be modest.
Combined pituitary hormone deficiency (CPHD) in man denotes impaired production of growth hormone (GH) and one or more of the other five anterior pituitary hormones. Mutations of the pituitary transcription factor gene POU1F1 (the human homologue of mouse Pit1) are responsible for deficiencies of GH, prolactin and thyroid stimulating hormone (TSH) in Snell and Jackson dwarf mice and in man, while the production of adrenocorticotrophic hormone (ACTH), luteinizing hormone (LH) and follicle stimulating hormone (FSH) is preserved. The Ames dwarf (df) mouse displays a similar phenotype, and appears to be epistatic to Snell and Jackson dwarfism. We have recently positionally cloned the putative Ames dwarf gene Prop1, which encodes a paired-like homeodomain protein that is expressed specifically in embryonic pituitary and is necessary for Pit1 expression. In this report, we have identified four CPHD families with homozygosity or compound heterozygosity for inactivating mutations of PROP1. These mutations in the human PROP1 gene result in a gene product with reduced DNA-binding and transcriptional activation ability in comparison to the product of the murine df mutation. In contrast to individuals with POU1F1 mutations, those with PROP1 mutations cannot produce LH and FSH at a sufficient level and do not enter puberty spontaneously. Our results identify a major cause of CPHD in humans and suggest a direct or indirect role for PROP1 in the ontogenesis of pituitary gonadotropes, as well as somatotropes, lactotropes and caudomedial thyrotropes.
We report on a girl with central diabetes insipidus, growth hormone deficiency and bone lesions in multisystem Langerhans cell histiocytosis. Thickening of the pituitary stalk was detected by magnetic resonance imaging, which progressed over the course of the disease. During the observation period she developed primary hypothyroidism, which might be due to the extremely rare involvement of the thyroid gland in this disease. The girl underwent chemotherapy, which led to a regression of the Langerhans cell histiocytosis-lesion, but the hormone deficiencies persisted and substitution had to be continued. Langerhans cell histiocytosis should be included in the differential diagnosis in cases with pituitary stalk thickening and additional hypothalamic/pituitary hormone deficiencies, and in cases of acquired primary hypothyroidism, with or without enlargement of the thyroid gland and ultrasound findings similar to thyroiditis.
Auxological data, pubertal development and final height were analyzed in 25 patients with growth hormone (GH) deficiency who were treated only with pituitary GH in 3 doses/week. 15 patients had a spontaneous onset of puberty and in 10 puberty was induced. The duration of therapy was 7.5 years, the dosage was about 11 U/m2/week and was not changed during puberty. 80% of the patients with induced puberty, but only 33% of the children with spontaneous puberty reached final heights within the 2 SD range. Final height was correlated with height at the start of treatment only in patients with spontaneous puberty, which shows the necessity of early treatment initiation in this group. The lack of this correlation in patients with induced puberty might be attributed to gonadotropin deficiency. Height at the onset of puberty was related to final height only in the group with gonadotropin deficiency. A prediction model for calculation of the first year height velocity which was derived from present treatment procedures showed a too favorable prediction for our patients. The reasons for the insufficient final results may be due to impure GH preparations, suboptimal dosage, low frequency of injections and late onset of therapy.
Severe tetrahydrobiopterin (BH4) deficiency is a naturally occurring model of cerebral catecholamine and serotonin shortage. Examination of the stimulated release and physiologic secretion pattern of several hormones in affected individuals permits certain conclusions concerning the involvement of these neurotransmitters in hormone regulation. Treatment, moreover, permits the ranking of the quality of the therapeutic regimens in use according to the degree of hormonal alteration. The 24-h secretion pattern of prolactin, GH, cortisol, and melatonin and the stimulated release of prolactin, GH, TSH, and gonadotropins were studied in an affected girl. Severe hyperprolactinemia with disruption of the pulsatile and circadian secretion pattern was the prevailing feature. The GH physiologic secretion pattern was not affected, but its stimulation was impaired. Melatonin displayed a normal circadian secretion pattern; the rhythm, however, was advanced by several hours. Conventional treatment of BH4 deficiency, i.e. BH4, 5-hydroxytryptophan, and L-DOPA/carbidopa (the last named given in three doses per day), suppresses prolactin levels merely for a few hours. L-DOPA/carbidopa given at shorter intervals or, even better, as a slow release preparation, is more effective in suppressing prolactin levels. Our data indicate immense hyperprolactinemia but few other hormonal disturbances in severe BH4 deficiency. Prolactin secretion may serve as an extremely sensitive marker for the hypothalamic dopamine content under different therapeutic regimens. Treatment with an L-DOPA/carbidopa slow release preparation produces virtually normal prolactin levels.
UNLABELLED: Administration of human growth hormone (GH) has yielded conflicting results concerning its role on thyroid function in patients with Ullrich-Turner syndrome. Therefore, we investigated the course of thyroid hormone parameters and thyroxin binding globulin in relation to GH therapy, IGF-I and additional oxandrolone-(Ox) or testosterone (T) treatment in 20 patients with Ullrich-Turner syndrome. During the 1st year the patients received only GH. There was no change in T4, fT4, and TSH levels, T3 increased significantly (P < 0.01) after 6 and 12 months, resulting in a higher T3/T4 ratio. TBG (P < 0.05) and IGF-I (P < 0.01) increased after 6 months and remained elevated at 12 months. A significant positive correlation was found between the change of T4 and TBG after 6 months (r = 0.47, P < 0.05) and after 12 months (r = 0.69, P < 0.005). Thirteen patients were further investigated after addition of an anabolic compound; 7 received Ox (0.0625 mg/kg/day po) and 6 low dose T (5 mg i.m. every 14 days). Chronological age was comparable in these groups (10.7 +/- 2.7 vs 10.7 +/- 3.6 years). After 6 months of combination therapy with Ox, T4, T3 and TSH decreased. As T4 and T3 showed a parallel decrease the T3/T4 ratio remained elevated. TBG declined after 6 and 12 months (P < 0.05), while IGF-I showed a further increment (P < 0.05). There was no correlation between the changes in T4 and IGF-I, TSH and TBG, respectively. In the T-treated group only IGF-I increased (P < 0.05) to the same extent as in the Ox-treated patients, whereas the thyroid parameters did not change. CONCLUSION: The observed changes in thyroid hormone and TBG levels in the Ox group were not mediated by GH or IGF-I. The Ox-induced TBG decrease might be linked to altered pancreatic functions regulating carbohydrate metabolism.
UNLABELLED: Seventeen children with normal variant short stature and a predicted height below -2 SDS were treated with growth hormone (GH) six times a week for a period of 5 years. Patients were randomly selected to receive three different doses of GH, group 1 (n = 6) 3 IU/m2 per day, group 2 (n = 6) 4.5 IU/m2 per day and group 3 (n=5) 3 IU/m2 per day in the 1st year and 4.5 IU/m2 per day thereafter. There was a significant increase in height after 1 and 2 years for all patients and for all subgroups. However, this increase was not dependent on GH dose. The decrease in height velocity during the 2nd year was not prevented by the increase of GH dose in group 3. The change of predicted height after 2 years was +0.75 SDS (according to Tanner Whitehouse). Fourteen children have been treated for 4 years and 8 children for 5 years without a further change in height prediction. Nine patients have reached final height which was 2.4 cm (+0.41 SDS) above pretreatment height prediction. Final height was nearly identical to predicted height after 1 year of therapy. CONCLUSION: An increment in height prediction was observed during the first 2 years of GH treatment and maintained thereafter. However, there was only a minor increase in final height over predicted height which does not justify the general use of GH in children with normal variant short stature.
In 41 girls with Turner syndrome, the growth hormone (GH) peak values during stimulation tests and parameters of spontaneous nocturnal GH secretion were studied and compared with respect to different karyotypes, short-term growth response to GH therapy, and final height. 22.0% of the girls tested had a subnormal (peak < 11 ng/ml) and 9.7% a pathological (< 7 ng/ml) GH response. The spontaneous GH secretion showed a good correlation with the data of the provocation tests, providing no further information regarding GH capacity. Short-term growth response to GH treatment could not be predicted by any of the investigated parameters. Although patients with isochromosomes had frequent subnormal GH tests, their growth response to GH treatment after 1 year was comparable to that of girls with XO karyotype and mosaicism. In 18 patients who had reached final height, the height gain during treatment (calculated as final height minus projected adult height) was not different among patients with normal, subnormal, or pathological GH tests. In contrast, final height minus projected adult height in 4 girls with isochromosomes was 15.7 +/- 5.1 versus 7.6 +/- 3.3 cm in 14 patients with other karyotypes (p < 0.01). These girls had a more pronounced bone age delay (3.3 +/- 0.3 vs. 1.8 +/- 1.2 years) at the start of therapy and thus a better growth potential. We conclude that short- and long-term growth responses to GH treatment in Turner syndrome could not be predicted by GH testing. Patients with isochromosomes might represent a subpopulation which is more frequently GH deficient and shows a marked bone age delay.
A 16-year-old Brazilian girl presented with severe growth retardation (-6.3 SDS), obesity, delayed pubertal development, facial dysmorphia, dry skin, and borderline low intelligence (IQ 89). Endocrinological evaluation showed primary hypothyroidism (no uptake of iodine-131 of the right thyroid lobe). Basal and stimulated gonadotropins were increased and ultrasonography revealed hypoplastic ovaries. The karyotype of peripheral lymphocytes was 46,X,i(Xq). The GH response in euthyroid condition after stimulation with GHRH and insulin was diminished. MRI of the pituitary region showed a suprasellar mass (12 x 15 mm) which was removed by transsphenoidal surgery because of extension to the optic chiasm. Histological examinations revealed regular pituitary tissue with hyperplasia of TSH- and FSH-producing cells. Thyroxine treatment was adjusted and GH was given. We conclude that the suprasellar mass was the consequence of long-lasting hypothalamic overstimulation with TRH and LHRH, due to gonadal and thyroid insufficiency.
Hypothyroidism is a recognised complication of GH therapy in GH deficient children. The mechanisms involved include direct effects on thyroid function but also result from the close interrelationship of pituitary cell-lines that differentiate during embryonic development of the anterior pituitary gland. Among numerous pituitary transcriptionfactors that orchestrate pituitary organogenesis Pit-1 was the first to be recognised and is the most extensively studied. Mutations in the Pit-1 gene account for a form of combined pituitary hormone deficiency for GH, Prolactin (Prl) and TSH (CPHD). Despite the variability of the clinical presentation of this syndrome at the time of initial diagnosis, all forms finally result in severe retardation of growth and development due to GH-deficiency and hypothyroidism. More than half of the families with a combined pituitary hormone deficiency have not disclosed any Pit-1 abnormalities. Evidence is accumulating that Prop-1, a transcriptionfactor expressed temporarily in the fetal anterior pituitary, could be a candidate for patients with a Pit-1 phenotype without any Pit-1 gene abnormalities.
In Austria, neonatal screening for congenital hypothyreosis has been introduced since 1976 as a part of the national screening program for inborn errors of metabolism. Capillary blood spots are collected on filter paper from all newborns on day 3 to 5 and are subsequently investigated with a delayed fluorescence-immunoassay (DELFIA) for the determination of TSH. Since 1992 we have detected 105 patients with congenital hypothyreosis among 365,120 newborns. The recall rate of the primary TSH screening is about 0.35%. Only primary (thyroidal) hypothyreosis, but not secondary and tertiary (pituitary and hypothalamic) types of hypothyreosis are detected by the primary TSH newborn screening. As TSH is physiologically high during the first 2 days of life, the trend to early hospital discharge will result in a significant increase of the recall rate in future.
Bone age (BA) is usually estimated using the atlas of Greulich-Pyle (GP) or Tanner-Whitehouse (TW) and depends on the individual experience of the investigator. A computer-aided method, computer-assisted skeletal age scores (CASAS), based on the TW2-radius, ulna, short bones (RUS) method has been created to increase reliability and validity. We compared the results of the three different methods (CASAS, GP, TW2) in three groups of children with Turner s syndrome (TS), growth hormone deficiency (GHD), and familial short stature (FSS). The practicability and reliability of CASAS was investigated and the results compared with those obtained by the other methods. Each method was applied by one investigator, with up to six consecutive BA estimations per subject being carried out in 5 patients with TS, 6 with GHD and 18 with FSS. Using CASAS, individual bone evaluations had to be repeated once in 7.3 % and twice in 2.7 % of all probands on request of the computer system because of doubtful results. Manual interventions by the investigator were necessary in 12.3 % of evaluations in TS, 8.5 % in GHD and 9.0 % in FSS. The frequency of a warning insert, indicating uncertainty of CASAS, was also higher in TS than in GHD and FSS (19.0 % vs. 15.0 % and 13.0 %). The majority of external corrections for CASAS were necessary for evaluations of the fifth finger and the thumb. On three occasions with TS the progress of BA determined by CASAS demonstrated a regressive course with age. CASAS and manual TW2 BA data were comparable and generally higher than BA data obtained by GP (mean + 1.1 years). In conclusion, CASAS represents a useful method for analysing skeletal age and seems to increase reliability by rating on a continuous scale. However, difficulties with abnormally shaped bones restricts its use in some pathologic conditions.
Documenting the spontaneous growth pattern of children with idiopathic short stature (ISS) should be helpful in evaluating the effects of growth promoting treatments. Growth curves for children with ISS were constructed, based on 229 untreated children (145 boys and 84 girls) from nine European countries. The children were subdivided according to target range and onset of puberty, and the growth of these subgroups was evaluated from standard deviation scores (SDS). At birth, children with ISS were already shorter than normal (means; boys -0.8 SDS, girls -1.3 SDS). Height slowly decreased from -1.7 SDS at the age of 2 years to -2.7 SDS at the age of 16 years in boys and 13 years in girls. Final height was -1.5 SDS in boys and -1.6 SDS in girls (mean (SD): boys 164.8 (6.1) cm, girls 152.7 (5.3) cm)), which was 5-6 cm below their target height. The onset of puberty was delayed (boys 13.8 (1.3) years, girls 12.9 (1.1) years). Subclassification resulted in similar growth curves. These specific growth data may be more suitable for evaluating the effects of growth promoting treatments than population based references.
We have studied the course over age of fasting insulin, sex hormone-binding globulin (SHBG), and insulin-like growth factor (IGF)-binding protein-1 (IGFBP-1) in untreated children with Turner's syndrome (TS) and measured the course of these parameters during therapy with GH alone and in combination with oxandrolone. Forty patients with TS, aged 3.7-16.4 yr, were investigated before any therapy. Fasting insulin levels increased significantly with chronological age, whereas SHBG and IGFBP-1 decreased with chronological age, and serum concentrations of these parameters were in the normal range. SHBG and IGFBP-1 were not coregulated by insulin in TS as previously reported under physiological conditions; IGFBP-1 was inversely correlated with insulin, but SHBG was not, and neither parameter was correlated with the other. Twenty-eight patients were further investigated 3, 6, 9, and 12 months after the start of GH monotherapy (12-18 IU/m2-week) and 3, 6, 9, and 12 months after the addition of oxandrolone (0.0625 mg/kg.day; n = 16). There was a significant increase in insulin levels during GH monotherapy and a further increase during combination therapy, with peak levels 3 months after the start of GH and combination therapy, respectively. Both SHBG and IGFBP-1 levels decreased significantly during GH monotherapy, with a further dramatic decrease after the addition of oxandrolone. Levels of free testosterone were unaffected by both treatment regimens. IGFBP-1 was inversely correlated with insulin concentrations at all time points after the start of therapy. SHBG was inversely correlated with IGF-I concentrations, but showed no relation to insulin concentrations during GH monotherapy. In conclusion, there were no abnormalities in serum concentrations of insulin, SHBG, and IGFBP-1 in untreated patients that could help to explain the retarded growth in patients with TS. All effects of combined GH and oxandrolone therapy on endocrine parameters such as insulin, SHBG, IGFBP-1 and IGF-I mimic the endocrine pattern normally observed during the pubertal growth spurt. Our data confirm the importance of insulin in the regulation of IGFBP-1, but do not point to a coregulation of IGFBP-1 and SHBG by insulin in patients with TS.
Twenty patients with Turner syndrome (CA 7.3-16.4 years) were treated with growth hormone (GH) alone (12-18 IU/m2/week) for 0.9-2.5 years. Subsequently, all patients received GH 18 IU/m2/week in combination with oxandrolone (Ox) (0.0625 mg/kg/day po) or low dose testosterone (5 mg every 2 weeks, i.m.). Ethinylestradiol (50 ng/kg/day po) was started with a bone age of 12.5 "years", and the dose was increased stepwise to 200 ng/kg/day during the next 18 months. Final height (FH) after 4-7.7 years of therapy was 152.9 +/- 3.5 cm (range 145.0-158.9 cm). When compared to projected adult height (PAH) at start of therapy (143.7 +/- 4.0, range 137.5-151.0 cm), the estimated benefit from therapy (FH minus PAH) is 9.3 +/- 4.9 cm (range 1.4-21.4 cm). The wide range in individual responses may be due to over- or underestimation of PAH before therapy due to variable delay in bone age at start of therapy. FH did not differ between starting therapy before 11.5 years (n = 9; 152.0 +/- 3.4 cm) and after the age of 11.5 years (n = 11; 153.7 +/- 3.6 cm), due to the fact that a better short-term response to therapy in the younger group of patients was compensated for by a faster progression in bone age. The good result in terms of final height may be due in part to the late start (BA 13.3 +/- 0.4 years; range 12.7-14.5 years) of estrogen therapy in low doses.