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Prostaglandin F2 alpha immunization of prepubertal beef heifers: effects of conjugate dose and timing of immunization relative to puberty on the onset of puberty and subsequent ovarian function.

Fifty-six prepubertal Hereford cross Friesian heifers were assigned to seven treatment groups: (1) primary (day 0) and booster (day 41) using 10 mg human serum albumin (HSA) (control); (2) primary and booster (day 41) immunizations using 3.3 mg prostaglandin F2 alpha PGF-HSA conjugate; (3) primary and booster (day 83) using 3.3 mg PGF-HSA; (4) primary and booster (day 210) using 3.3 mg PGF-HSA; (5-7) as in treatments 2-4 except 10 mg PGF-HSA were used. Plasma progesterone concentrations were used to determine the onset of puberty and the presence of a corpus luteum (CL); plasma PGF antibody titres were determined at 28-day intervals. There was no effect (P > 0.05) of conjugate dose or booster interval on mean antibody titres and there was no interaction between them. However, heifers in the 83- and 210-day booster treatments had higher (P < 0.05) peak antibody titres than heifers in the 42-day booster treatments. Puberty was delayed in 40% (16/40) of PGF-immunized heifers and 40% (16/40) of heifers formed persistent CL after puberty. Overall, eight of the heifers with delayed puberty also formed a persistent CL. There was a positive correlation between mean titre and onset of puberty but not with duration of persistent CL.

Animals↗

Resumption of puberty after long term luteinizing hormone-releasing hormone agonist treatment of central precocious puberty.

To determine whether puberty resumes normally after long term LHRH agonist (LHRHa) treatment, we studied 16 children with central precocious puberty treated with LHRHa (D-Trp6,Pro9,NEt-LHRH) for 1-4 yr (mean, 3.3 yr). Treatment was discontinued at a mean age of 11.6 +/- 1.3 (+/- SD) yr. Plasma hormone levels, growth velocity, rate of bone maturation, and pubertal stage were assessed at the end of treatment and 3 and 12 months later. Basal plasma sex steroid and basal and LHRH-stimulated gonadotropin levels returned to near-pretreatment levels 3 months after discontinuation of therapy and were fully restored to pretreatment levels at 12 months. Growth velocity, which had been 7.8 cm/yr before treatment, was stable after discontinuation of treatment at approximately 2.6 cm/yr. The predicted height, which had increased during treatment (P less than 0.01), remained stable at approximately 5 cm above the pretreatment predicted height. The rate of bone age advancement (delta bone age/delta chronological age) increased gradually from 0.4 at the end of treatment to the normal value of 0.9 12 months posttreatment. Breast and pubic hair pubertal stages, which were stable throughout treatment and were 4.0 +/- 0.8 (+/- SD) and 3.6 +/- 1.0 at the end of treatment, increased to 4.9 +/- 0.2 and 4.5 +/- 1.0. This approximated the normal rate of 1 stage/yr. Menses occurred in 8 of 12 girls within 1 yr after treatment and in an additional 3 by 20 months after treatment. Six of the girls had menstruated before treatment, and all of these menstruated within 14 months after discontinuing therapy. We conclude that gonadotropin and sex steroid secretion and the clinical progression through puberty appear to resume normally after discontinuation of long term LHRHa treatment of central precocious puberty. Long term follow-up will be required, however, to determine whether the improvement in predicted height of these patients will be achieved, and whether adult reproductive function will be normal.

Body Height↗

Delayed puberty in obese boys: comparison with constitutional delayed puberty and response to testosterone therapy.

OBJECTIVE: To evaluate the results of a brief course of testosterone therapy in boys with delayed puberty and to compare the responses seen in boys with constitutional delayed puberty (CDP), boys with obesity, and boys with possible gonadotropin deficiency. DESIGN AND SETTING: A retrospective chart review was done for 36 boys aged 14 years or older, seen between 1983 and 1996 because of delayed puberty, who were given 4 monthly injections of testosterone, 100 mg/mo, and had adequate follow-up. RESULTS: There were 23 boys whose findings before and after treatment were consistent with a diagnosis of CDP. Testosterone treatment increased the growth rate from 4.3 cm/y to 11.2 cm/y (P <.00001), and mean testis length increased 0.6 to 0.8 cm in all (from a mean of 2.9 to 3.6 cm, P <.00001) in the 4 months after testosterone treatment. Serum testosterone 4 months after therapy was higher than that before therapy (P =.00003). Of 5 boys with growth hormone deficiency but unknown gonadotropin status, 2 had lack of progression after testosterone therapy and were believed to have permanent gonadotropin deficiency. Seven of the 36 boys were obese (body mass index, >25), and 6 had a response to testosterone similar to boys with CDP with clear pubertal progression. One obese boy and one nonobese boy were diagnosed as having isolated gonadotropin deficiency. CONCLUSIONS: Monitoring the growth and genital responses to a 4-month course of testosterone injections helps to differentiate CDP from gonadotropin deficiency in boys with delayed puberty. Obese boys constitute a distinct category of boys with pubertal delay in terms of their growth, but their response to testosterone is similar to that observed in boys with classic CDP.

Adolescent↗

Six-year results of spironolactone and testolactone treatment of familial male-limited precocious puberty with addition of deslorelin after central puberty onset.

Short term treatment with spironolactone, testolactone, and, after the onset of central puberty, deslorelin can normalize the rate of growth and bone maturation in boys with familial male-limited precocious puberty. To test the hypothesis that this treatment can achieve long term normalization of the growth and development of these children, we examined the growth rate, bone maturation rate (change in bone age/change in chronological age), and predicted adult height of 10 boys who were treated with spironolactone (5.7 mg/kg x day) and testolactone (40 mg/kg x day) for at least 6 yr. Deslorelin (4 microg/kg x day) treatment was initiated 2.6 +/- 1.3 yr after beginning spironolactone and testolactone treatment. The growth rate normalized within 1 yr of starting treatment and remained normal during the next 5 yr of treatment (P < 0.001). The rate of bone maturation normalized during the second year of treatment and remained normal thereafter (P < 0.001). Predicted height increased from 160.7 +/- 14.7 centimeters at baseline to 173.6 +/- 10.1 centimeters after 6 yr of treatment (P < 0.05 during the fourth through the sixth year of treatment compared to baseline). We conclude that long term treatment with spironolactone, testolactone, and, after central puberty, deslorelin normalizes the growth rate and bone maturation and improves the predicted height in boys with familial male-limited precocious puberty. The ultimate effect of this approach on adult height will require further study.

Adolescent↗

Dihydrotestosterone treatment in adolescents with delayed puberty: does it explain insulin resistance of puberty?

Puberty is characterized by temporary insulin resistance, which subsides with the completion of pubertal development. This insulin resistance is manifested by lower rates of insulin-stimulated glucose metabolism and compensatory hyperinsulinemia in pubertal compared with prepubertal children. Whether or not pubertal insulin resistance is the result of sex steroids or GH or a combination of both has been investigated in our laboratory. Previously, we demonstrated that T treatment in adolescents with delayed puberty was not associated with the deterioration of insulin action. The present investigation evaluated the effects of 4 months of dihydrotestosterone administration (50 mg im every 2 wk) on body composition, glucose, fat, and protein metabolism, and insulin sensitivity. Ten adolescents with delayed puberty were evaluated before and after 4 months of DHT administration. Body composition was assessed by dual energy x-ray absorptiometry. Insulin-stimulated glucose metabolism was measured during a 3-h hyperinsulinemic (40 mU/m(2).min)-euglycemic clamp procedure. Lipolysis and proteolysis were evaluated by stable isotopes of [(2)H(5)]glycerol and [1-(13)C]leucine. After 4 months of dihydrotestosterone treatment, height, weight, and fat free mass increased and percentage of body fat decreased. IGF-I and nocturnal GH levels did not change. There was no significant change in insulin-stimulated glucose metabolism (57.2 +/- 3.9 vs. 58.3 +/- 3.9 micromol/kg.min). Total body proteolysis and lipolysis did not change. In summary, based on the present and past studies, we conclude that during puberty insulin resistance/hyperinsulinemia is not attributable to gonadal sex steroids in boys.

Adolescent↗

Management of puberty in constitutional delay of growth and puberty.

Constitutional delay of growth and puberty (CDGP) is the most common presenting form of short stature, but no single test can infallibly discriminate CDGP and isolated hypogonadotrophic hypogonadism. Management of puberty in CDGP aims to optimise not only growth maintaining body proportions and improving peak bone mass without impairing growth potential--but also well-being; for example, the distress boys often suffer because of their lack of growth and pubertal progression can affect their school performance and social relationships. Typical sex steroid treatments to induce puberty in boys with CDGP include testosterone (T) enanthate, T undecanoate, mixed T esters, T transdermal patches, and oxandrolone p.o. Compared with other regimens, short-course low-dose depot T i.m. is an effective, practical, safe, well tolerated, and inexpensive regimen. Some unresolved problems in management include optimal timing and dose of sex steroid treatment, the role of GH in CDGP, and the management of CDGP in girls.

Adolescent↗

Determination by echography of uterine changes around puberty in gilts and evaluation of a diagnosis of puberty.

Three experiments were carried out to evaluate the use of ultrasonography in assessing the onset of puberty in gilts. In experiment 1, gilts (n = 17) were scanned 3 times per week beginning at 133 and continuing until 187 days of age. The ultrasonic appearance of the uterus was described, quantified and compared with the reproductive status observed at slaughter. The quantification of the pictures showed a different correlation in time for infantile, impubertal, prepubertal and pubertal stages. For pubertal females, "uterine area" increased at around 180 days of age, well-defined sections of the uterine horns appeared 3 +/- 0.5 days before puberty. In infantile and impubertal gilts during the same period of age, uterine images remained dark and homogeneous; no significant change in the "uterine area" was observed. This difference in images allowed an evaluation of the diagnosis of puberty. In experiment 2, the gilts (n = 123) were scanned, the result was verified at slaughter the day after by examination of the genital tract. The uterine weight of the gilts that had reached a prepubertal or pubertal stage was significantly greater (P = 0.0001) than that in impubertal gilts. The sensitivity and the specificity of the diagnosis were 91.9% and 96.5% respectively. Experiment 3 was performed on a farm and echographic examinations were carried out one and five days after gilts (n = 117) arrived at the piggery. Oestrus detection or blood sampling for progesterone determinations were used as tools to determine the reproductive status. The sensitivity and the specificity of the diagnosis were 98.9% and 100% respectively. This diagnosis of puberty is thus accurate.

Animals↗

The natural history of autonomous gonadal function, adrenarche, and central puberty in gonadotropin-independent precocious puberty.

Gonadotropin-independent precocity (GIP) is a syndrome marked by precocious pubertal development in the absence of pubertal levels of gonadotropins. To investigate the discrete patterns of central nervous system, gonadal, adrenal, and skeletal maturation in this syndrome, we conducted longitudinal studies spanning up to 10 yr in two such affected individuals. A cross-sectional analysis of adrenal androgen secretion was performed in nine additional patients to assess further the time course of adrenarche in GIP. Serial evaluations revealed progression of secondary sexual characteristics, statural growth, and skeletal maturation, all consistent with ongoing exposure to pubertal gonadal steroid levels. On the other hand, adrenarche (n = 11) and spontaneous and GnRH-stimulated gonadotropin secretion (n = 2) progressed in chronological age-appropriate manners despite long term pubertal levels of gonadal sex steroid secretion. After the development of central puberty, as documented by the appearance of pulsatile gonadotropin secretion, we sought to determine whether the potential for gonadal autonomy persisted. Despite complete pituitary desensitization induced by administration of a GnRH agonist, both patients studied demonstrated an ongoing capacity to secrete pubertal levels of gonadal steroids. Our study suggests that the timing of adrenarche and central puberty in these subjects with GIP was apparently unaltered by prolonged exposure to gonadal steroids. Subsequent to the development of central puberty, pulsatile gonadotropin secretion may override and, thus, mask the underlying defect(s) in adolescents and adults with histories of GIP.

Adrenal Glands↗

Comparison of complete and incomplete suppression of pituitary-gonadal activity in girls with central precocious puberty: influence on growth and predicted final height. The German-Dutch Precocious Puberty Study Group.

The question as to whether treatment with short-acting or with slow-release gonadotropin-releasing hormone (GnRH) agonists has different effects on growth and bone maturation when treating girls with central precocious puberty has not yet been studied. In a meta-analysis, we compared 21 naive girls with central precocious puberty who were treated with buserelin with 22 naive girls with central precocious puberty who received Decapeptyl in depot form. Treatment lasted for at least 18 months. At the start of therapy, chronological age, bone age, growth velocity and pubertal stage in the two groups were very similar. During the first 6 months of treatment, significantly more phases of incomplete suppression of pituitary-gonadal activity occurred in the buserelin group. As a result, growth velocity and bone maturation (delta bone age/delta chronological age) remained significantly higher than in the Decapeptyl Depot group (p < 0.0001 and p < 0.01, respectively). In contrast to the Decapeptyl Depot group, the height standard deviation score (SDS) for bone age in the buserelin group did not change significantly in the first 6 months of treatment, and the predicted adult height decreased. Between the 6th and 18th months of therapy, the development of growth rate, delta bone age/delta chronological age, height SDS for bone age and predicted adult height in both groups became almost identical. However, the rate of growth and bone maturation in the buserelin group remained faster than in the Decapeptyl group, though not significantly so. The mean predicted adult height had risen significantly after 18 months in the Decapeptyl Depot group but not in the group treated with buserelin.(ABSTRACT TRUNCATED AT 250 WORDS)

Body Height↗

Hypopituitarism and idiopathic delayed puberty: a longitudinal study in an attempt to diagnose gonadotropin deficiency before puberty.

Fifty-five hypopituitary patients (43 boys and 12 girls) treated with human GH were studied longitudinally before and during puberty, occurring either spontaneously or induced with testosterone enanthate (100 mg/month, im) in boys and ethinylestradiol (10 micrograms/day, orally) in girls. In addition, 53 boys with idiopathic delayed puberty (IDP) were studied. Gonadotropin integrated responses (IRs) during 90 min after the iv injection of 25 micrograms/m2 LRH, bone ages (BA), and plasma levels of dehydroepiandrosterone sulfate and testosterone were determined at least yearly. Prepubertal hypopituitary patients with gonadotropin deficiency were characterized by: 1) a lowered FSH IR to LRH in most boys and in all girls; 2) a low LH IR for BA; 3) adrenarche either absent or delayed BA; 4) height age close to BA; and 5) the presence of several pituitary deficiencies. In contrast, most prepubertal hypopituitary patients without gonadotropin deficiency showed: 1) a normal FSH IR to LRH; 2) a normal or intermediate (greater than or equal to 75 mIU/ml . 90 min) LH IR for BA; 3) a normal adrenarche for BA; 4) a height age below BA; and 5) isolated GH or GH plus TSH deficiencies. A significant linear correlation was found between LH IR and the logarithm of plasma testosterone. The slopes and levels were similar in controls and hypopituitary boy without gonadotropin deficiency. In IDP, the level was significantly higher. All data obtained in these patients show that the increase in plasma testosterone and the clinical onset of puberty are delayed for the observed pubertal pattern of LH responsiveness. It is concluded that the study of several clinical and biological features, especially the gonadotropin IR to LRH, are of predictive value for the diagnosis of normal or deficient gonadotropic function in prepubertal patients with IDP and hypopituitarism.

Adolescent↗

Reproductive axis after discontinuation of gonadotropin-releasing hormone analog treatment of girls with precocious puberty: long term follow-up comparing girls with hypothalamic hamartoma to those with idiopathic precocious puberty.

Although the GnRH agonist analogs have become an established treatment for precocious puberty, there have been few long term studies of reproductive function and general health after discontinuation of therapy. To this end, we compared peak LH and FSH after 100 microg sc GnRH, estradiol, mean ovarian volume (MOV), age of onset and frequency of menses, body mass (BMI), and incidence of neurological and psychiatric problems in 2 groups of girls: those with precocious puberty due to hypothalamic hamartoma (HH; n 18) and those with idiopathic precocious puberty (IPP; n = 32) who had been treated with deslorelin (4-8 microg/kg x day, s.c.) or histrelin (10 microg/kg x day, s.c.) for 3.1-10.3 yr and were observed at 1, 2, 3, and 4-5 yr after discontinuation of treatment. The endocrine findings were also compared to those in 14 normal perimenarcheal girls. There were no differences between the HH and IPP groups in age or bone age at the start of treatment, at the end of treatment, or during GnRH analog therapy. We found that whereas the peak LH level was higher in HH than in IPP girls before (165.5 +/- 129 vs. 97.5 +/- 55.7; P < 0.02) and at the end (6.8 +/- 6.0 vs. 3.9 +/- 1.8 mIU/mL; P < 0.05) of therapy, this difference did not persist at any of the posttherapy time points. LH, FSH, and estradiol rose into the pubertal range by 1 yr posttherapy in both HH and IPP. However, the mean posttherapy peak LH levels in both HH and IPP groups tended to be lower than normal, whereas the peak FSH levels were not different from normal, so that the overall posttherapy LH/FSH ratio was decreased compared to that in the normal girls (HH, 2.7 +/- 0.3; IPP, 2.6 +/- 0.1; normal, 5.2 +/- 4.8; P < 0.05). The MOV was larger in HH than IPP at the end of treatment (3.7 +/- 3.5 vs. 2.0 +/- 1.2 mL; P < 0.05) and tended to increase in both groups over time to become larger than that in normal girls by 4-5 yr posttherapy (HH, 14.9 +/- 12.9; IPP, 7.6 +/- 2.2; normal, 5.4 +/- 2.5 mL; P < 0.05). Whereas the onset of spontaneous menses varied widely in both groups, once menses had started, the HH group had a higher incidence of oligomenorrhea. Pelvic ultrasonography revealed more than 10-mm hypoechoic regions in 4 HH patients, 15 IPP patients, and 3 normal girls, all of whom were reporting regular menses. Live births of normal infants were reported by 2 HH and 2 IPP patients, and elective terminations of pregnancy were reported by 1 HH and 2 IPP patients. BMI was greater than normal in HH and IPP both before treatment and at all posttherapy time points and tended to be higher in the HH patients. Marked obesity (BMI, +2 to +5.2 SD score) was observed in 5 HH and 6 IPP patients, 1 of whom had a BMI of +2.5 SD score and developed acanthosis nigricans, insulin resistance, and hyperglycemia. Seizure disorders developed during GnRH analog therapy in 5 HH and 1 IPP patient, and 2 additional HH girls developed severe depression and emotional lability posttherapy. Although the mean anterior-posterior dimension of the hamartoma was larger in the HH patients with seizure than in those who were seizure free (1.7 +/- 1.2 vs. 0.9 +/- 0.4 cm; P < 0.05), no change in hamartoma size was observed either during or after therapy, and no patient has reported the onset of a seizure disorder posttherapy. Other than a tendency toward a larger MOV, a higher incidence of oligomenorrhea, obesity, and frequency of neurological disorders, recovery of the reproductive axis after GnRH analog therapy was not markedly different in HH compared to IPP. Continued follow-up of these patients may determine whether the decreased LH responses and increased BMI in both groups compared to those in normal girls remain clinically significant problems.

Adolescent↗

Gonadotropin-suppressive therapy in girls with early and fast puberty affects the pace of puberty but not total pubertal growth or final height.

Early and fast puberty (EFP) in girls, defined as pubertal onset at age 8-9 yr, with an accelerated course, may cause compromised final height (FHt) and psychosocial distress. Treatment with a gonadotropin-suppressive agent is controversial, because the improvement in FHt is equivocal and there may be risk of obesity. We analyzed the data of 126 girls with EFP: 63 treated with GnRH analog (GnRHA) since Tanner stage 3, for 2-4 yr; and 63 untreated. Age at onset of puberty; accelerated time of transition from Tanner stage 2 to 3 (<1.3 yr); and clinical, hormonal and sonographic findings were similar in the 2 groups. The girls given GnRHA treatment had a significantly prolonged pubertal course, compared with the accelerated course in the untreated girls (4.7 +/- 0.4 vs. 2.45 +/- 0.4 yr, P < 0.001). After therapy, they reached Tanner stages 4 and 5 and FHt at a significantly older age than the untreated group (P < 0.001), and their menarche was delayed (12.8 +/- 0.6 vs. 10.8 +/- 0.5 yr, P < 0.001). However, the different pace of puberty in the 2 groups did not change the total pubertal growth and the bone maturation rate. The Ht gain from Tanner stage 3 to 4 (10.4 +/- 2.7 vs. 11.2 +/- 3.1 cm) and from Tanner stage 4 to FHt (8.2 +/- 2.7 vs. 8.8 +/- 3.6 cm) was similar in the treated and untreated girls, as were absolute Ht and bone age at each pubertal stage. The weight gain of the treated girls was more pronounced during treatment (P = 0.0016), but it was arrested after discontinuation of therapy; and by the time FHt was reached, the body mass index was similar in the 2 groups. The treated and untreated girls achieved a similar mean FHt, which was not significantly different from their respective mean target Ht (THt). Individual analysis revealed that 70% of the treated girls and 67% of the untreated girls attained their THt range (THt +/- 0.5 SD) or surpassed it. In conclusion, treatment with GnRHA affected only the pace of EFP. The similar Ht gain and bone maturation rate at each pubertal stage in the treated and untreated girls may suggest that the total pubertal growth is not dependent on pubertal duration and pace and is probably determined already at the onset of the normal pubertal development. The treatment did not compromise the FHt and did not cause long-lasting obesity. Therefore, GnRHA therapy may be suggested for use in girls who have psychosocial difficulties in coping with EFP.

Body Height↗

Changes of diurnal rhythm and levels of total and free testosterone secretion from pre to late puberty in boys: testis size of 3 ml is a transition stage to puberty.

OBJECTIVE: To establish levels for comparison for 24-h total and free serum testosterone in prepubertal boys and throughout pubertal development. DESIGN: The study subjects were 55 healthy boys, aged 5.0-18.6 years, who underwent serial sampling one or more times during their pubertal development. METHODS: Testicular volumes were determined by orchidometer. Serum testosterone was measured by a modified RIA (detection limit, 0.03 nmol/l). Free testosterone was calculated (calc-FT) using a formula derived from the law of mass action. RESULTS: Significant increases in testosterone and calc-FT concentrations in boys were found between testis volumes of 1 ml to 2 ml, 2 ml to 3 ml, 6 ml to 8 ml, and 10 ml to 15 ml. No differences were found between testis volumes of 3, 4, 5 and 6 ml neither were there differences between 8 and 10 ml, or between 15, 20 and 25 ml. Boys who had reached their final height had higher calc-FT values than boys who had the same pubertal development but had not reached their final height. Based on the results, puberty was classified into six stages: pre1 (testis, 1 ml), pre2 (testis, 2 ml), early (testis, 3-6 ml), mid (testis, 8-12 ml), late1 (testis,15-25 ml, not reached final height) and late2 (testis, 15-25 ml, reached final height). Serum testosterone was secreted with a diurnal variation in prepuberty and during puberty. The increase of testosterone in the morning hours started earlier in pubertal than in pre-pubertal boys. The most pronounced diurnal rhythm was found in early and in mid puberty. CONCLUSION: Using a sensitive method, and a pubertal reclassification, we have established levels for comparison of testosterone and calc-FT in prepubertal and pubertal boys. The existence of data for comparison forms the basis for future studies on pubertal disorders.

Adolescent↗

Genes involved in the neuroendocrine control of normal puberty and abnormal puberty of central origin.

There is now compelling evidence that both normal puberty and disturbed pubertal development of central origin are, to a significant extent, determined by genetic factors. Although delayed sexual development can result from a deficient pituitary responsiveness to GnRH caused by mutations in the GnRH receptor gene, until recently the only genetically determined hypothalamic defects known to affect puberty were those caused by mutations in genes required for the migration of gonadotropin releasing hormone (GnRH) neurons, such as KAL1, FGFR1, and NELF. Recently, mutations in a gene termed GPR54 were identified as causing isolated hypogonadotrophic hypogonadism (IHH), due to a functional, instead of a structural hypothalamic defect. Studies in nonhuman primates and rodent models suggest that the functional integrity of the hypothalamic mechanism controlling puberty requires a gene network that includes GPR54. Altogether, these findings indicate that the genetic underpinnings of disturbed pubertal development of central origin are polygenic, rather than specified by a single gene.

Animals↗

Accelerated versus slowly progressive forms of puberty in girls with precocious and early puberty. Gonadotropin suppressive effect and final height obtained with two different analogs.

OBJECTIVES: To distinguish which children with precocious puberty (PP) and early puberty (EP) should be treated and which followed without therapy. To determine the effect of GnRH analog treatment on the final height of treated patients and compare the effect of two different analogs on gonadotropin suppression and final height. STUDY DESIGN: Sixteen females with PP or EP with a mean chronological age (CA) of 8.8 +/- 1.4 years and a mean bone age (BA) of 10.8 +/- 1.3 years were treated for a mean of 2.7 +/- 1.0 years with a GnRH analog (triptorelin or leuprolide acetate; group A), while 21 girls with a mean CA of 8.5 +/- 1.0 years, a mean BA of 9.7 +/- 1.4 years and a predicted adult height of >155 cm were followed without therapy (group B). Criteria for treatment were one of: a. predicted adult height (PAH) of <155 cm initially or at any time during follow up; b. PAH over 155 cm with a dramatic decrease in PAH over a 6-month follow-up period; c. advanced and rapidly progressing breast development for age (Tanner 3 before the age of 9 years). RESULTS: GnRHa therapy suppressed gonadotropins in group A, while gonadotropins increased gradually in group B. Height velocity (HV) decreased in group A, while it remained accelerated in group B; BA increased a mean of 1.7 +/- 0.5 years in group A and 3.2 +/- 0.3 years in group B. This resulted in a height increase in group A from a baseline PAH of 153.7 +/- 1.2 cm to a final height (FH) of 160.9 +/- 4.0 cm (p <0.001), clearly above their target height (TH) of 157.7 +/- 4.2 cm. The height of group B children did not change over time (164.1 +/- 4.1 cm before therapy and 166.0 +/- 6.0 cm at FH), both above their TH. The mean leuprolide acetate dose utilized in this study decreased during treatment, while both the initial and final triptorelin dose remained unchanged. Adequate gonadotropin suppression (peak level of LH and FSH of <2 IU/l after i.v. GnRH stimulation) was noted with both leuprolide acetate and triptorelin, although LH suppression was slightly more pronounced with triptorelin. BA advanced 1.8 +/- 0.4 years during leuprolide acetate treatment and 1.5 +/- 0.3 years with triptorelin, so that FH increased a mean of 5.5 +/- 1.3 cm with leuprolide acetate and 8.7 +/- 2.2 cm with triptorelin. CONCLUSIONS: PAH of <155 cm before or during therapy, PAH of >155 cm with a dramatic decrease in predicted height over a 6-month follow-up period and/or advanced and rapidly progressing breast development in girls with PP or EP were useful parameters in deciding which patients to treat. GnRHa therapy suppressed gonadotropins, HV and bone maturation in children with an accelerated form of PP or EP, resulting in a significant height increase. Final height remained stable over time in untreated patients. Adequate gonadotropin suppression was noted with both analogs, although with the doses of analog used in our study, LH and BA suppression were more pronounced with triptorelin, resulting in a larger height gain.

Body Height↗

[Effects of Chinese herbal medicine on modulating the course of puberty development in children with precocious puberty].

OBJECTIVE: To explore the therapeutic effects of Ziyin Xiehuo Recipe (ZYXHR) for nourishing yin and lowering fire and Yishen Tianjing Recipe (YSTJR) for nourishing kidney and replenishing essence on regulating the gonadotrophic and somatotrophic functions of hypothalamic-pituitary axis, and to reveal the mechanisms of ZYXHR and YSTJR in modulating the course of pubertal development of children with precocious puberty. METHODS: The pubertal rats were fed with ZYXHR or YSTJR for 30 days, and the parameters of rats were monitored as the followings: The content of gonadotropin-releasing hormone (GnRH), the frequency and amplitude of GnRH impulse releasing, the releasing amounts of aminoacid neurotransmitters, and neuropeptide Y (NPY) and beta-endorphin (beta-END) in the gonadotrophic area of the hypothalamus were detected with neurobiological methods (push-pull perfusion, homogenate, incubation of brain slices, and immunohistochemical staining). The levels of gene and protein expressions of GnRH, growth hormone releasing hormone (GHRH) and somatostatin (SS) in hypothalamus, and follicular stimulating hormone (FSH), luteinizing hormone (LH) and growth hormone (GH) in adenohypophysis as well as insulin-like growth factor I (IGF-I) in metaphysis were determined with real time reverse transcription-polymerase chain reaction (RT-PCR). RESULTS: The ZYXHR could reduce the activity of GnRH neurons in hypothalamus through inhibiting the release of central exciting aminoacid neurotransmitters, whereas promoting the release of central inhibiting aminoacid neurotransmitters, NPY and beta-END in gonadotrophic area of hypothalamus. The expression levels of GnRH, FSH and LH mRNAs were down-regulated while the expression level of SS mRNA in hypothalamus was up-regulated in the ZYXHR-treated group. The GH mRNA in hypophysis and the IGF-I mRNA in metaphysis were both down-regulated by ZYXHR. The YSTJR could promote the activity of GnRH neurons in hypothalamus through inhibiting the release of NPY in gonadotrophic area of hypothalamus, up-regulating the expression levels of GnRH, FSH, LH and GH mRNAs in hypophysis, and IGF-I mRNA in metaphysis, while down-regulating the expression level of SS mRNA in hypothalamus. CONCLUSION: The ZYXHR and YSTJR could both regulate the gonadotrophic and somatotrophic functions of hypothalamic-pituitary axis through modulating the neuroendocrine regulation and the gene expressions of GnRH and SS in hypothalamus, GH, FSH and LH in hypophysis, and IGF-I in metaphysis. These may be the chief mechanisms of ZYXHR and YSTJR in modulating the course of pubertal development and ameliorating the skeletal development in children with precocious puberty.

Animals↗

Long-term treatment of central precocious puberty with a long-acting analogue of luteinizing hormone release hormone (D-Tryp6-GnRH) in monthly injections. Its possible use in normal puberty.

The gonadotropin-releasing-hormone-like agonist D-Tryp6-GnRH (GnRHa) has been shown to induce reversible suppression of gonadotropins and gonadal steroids in patients with central precocious puberty. We examined the effect of a long-acting preparation of GnRHa in biodegradable microcapsules. D-Tryptophane6-GnRH, administered intramuscularly at 1 month intervals, for 12 consecutive months, on growth and skeletal maturation in 3 girls and 4 boys with neurogenic or idiopathic precocious puberty. Suppression of gonadotropin release after GnRH stimulation and gonadal steroids was maintained in all subjects. Growth velocity fell from a mean rate (+/- SEM) or 8.60 +/- 0.75 cm/year before treatment to 5.81 +/- 0.60 cm/year (p < 0.005) after 1 year. Bone age advanced a mean of 8.0 +/- 0.45 months during treatment, suggesting an increase in predicted height from the ratio delta bone age/delta chronological age. Two subjects, one of them with compensated Bartter's syndrome with normal hypothalamic pituitary-gonadal-axis, received the analogue to delay pubertal growth with the hope to improve final height. In the first one, the growth velocity fell from 9.9 cm/year to 8 cm/year and delta bone age/delta chronological age decreased from 1.28 to 1.0 and in the other subject, the growth velocity fell from 12 cm/year to 6.0 cm/year in the last year of treatment and delta bone age/delta chronological age fell from 3.2 to 0.75, indicating an improvement in predicted height.

Bartter Syndrome↗