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Seasonal variations in plasma luteinizing hormone and testosterone levels in the European badger Meles meles L.

Although active spermatogenesis occurs throughout the year in the male European badger Meles meles L., seasonal fluctuations of testicular activity were observed. The present study compared the pattern of luteinizing hormone (LH) and testosterone (T) secretions throughout the annual cycle. LH secretion was investigated by means of a heterologous radioimmunoassay using anti-ovine LH beta antiserum and canine reference standard. Seasonal and nycthemeral changes in LH and T secretions were observed. During the year a period of maximal values for both hormones is well correlated with the breeding. Moreover, episodic LH releases occurs during the period of minimal testosterone values, indicating resumption of hypothalamo-pituitary activity well before the breeding period.

Animals↗

Influence of endogenous prolactin on the luteinizing hormone stimulation of testicular steroidogenesis and the role of prolactin in adult male rats.

The role of endogenous prolactin (PRL) in the control of testosterone (T) secretion and T responses to LH treatment was evaluated in adult male rats. Rats were actively immunized three times against ovine PRL in Freund's adjuvant-saline mixture (PRL-IMM rats), and control rats were treated with adjuvant-saline mixture (ADJ-CON rats). On day 110 after initial immunization, rats in each of these two groups were divided into three subgroups. Rats in subgroups 1 and 2 were injected with saline while those in subgroup 3 received 200 micrograms ovine PRL in saline, twice a day for a total of 7 injections. On day 113, the seventh injection was given 3 h before the termination of the experiment. On the same day, 2.5 h before the rats were sacrificed, rats in subgroups 1 and 3 were treated with saline; animals in subgroup 2 received 25 micrograms ovine LH in saline. Blood samples were obtained throughout the study, and sera were used for measurement of PRL antibodies, gonadotropins, progesterone (P), and T. PRL antibodies were detected in the sera of all rats actively immunized with PRL. Administration of PRL increased serum T levels in ADJ-CON rats, and this effect was eliminated in rats actively immunized against PRL. LH treatment significantly increased serum T levels in ADJ-CON rats. In PRL-IMM rats, this increase was attenuated while circulating P concentrations were elevated. These data demonstrate that PRL treatment can increase T secretion and that endogenous PRL is required for the complete expression of the stimulatory action of LH on T secretion in adult male rats.

Animals↗

Alteration in the plasma testosterone: estradiol ratio: an alternative to the inhibin hypothesis.

The data suggest that in the absence of the testis: (1) testosterone can maintain both FSH and LH concentrations chronically within the physiological range; (2) that estradiol preferentially suppresses plasma LH concentration, indicating that the androgenic component of testosterone modulates FSH secretion; and (3) that subphysiological testosterone concentrations accompanied by physiological estradiol levels permit FSH to escape to midcastrate levels while maintaining LH concentration at intact levels. An alteration in the testosterone: estradiol ratio can account for a selective FSH elevation when testosterone production is low. The data provide an alternative explanation for the inhibin phenomenon.

Animals↗

Plasma LH, FSH and testosterone concentrations in adult rams which were homozygous carriers or non-carriers of the Booroola fecundity gene.

No gene-specific differences were found with respect to LH or testosterone pulsatile secretion (over 12 h), or in 12 hourly mean FSH concentrations in adult Booroola FF and ++ rams. Also, no differences between genotypes in the LH response to an injection of testosterone propionate, the FSH response to an infusion of bovine follicular fluid, or the testosterone response to injections of PMSG were noted. However, during the phase of seasonal testicular development, mean testosterone pulse amplitude (over 12 h) and the FSH response to 25 micrograms GnRH were higher in FF than in ++ rams (P less than 0.05); there were also significant effects of sire (P less than 0.05 in FF genotype only) and litter size (P less than 0.05) on testosterone pulse amplitude and GnRH-stimulated FSH release, respectively. During the breeding season, mean LH, but not FSH, concentrations were higher in FF than in ++ rams, after an injection of 0.5 micrograms GnRH; LH release was not affected by sire or litter size (P greater than 0.05). Long-term studies revealed that the FF rams were born in significantly larger litters, they weighed significantly less than ++ rams (P less than 0.05), and that bodyweight was significantly correlated (P less than 0.05) with litter size. There were no differences in testis size, and testis size was not significantly correlated with bodyweight. There was a strong tendency (P = 0.056) for overall mean FSH concentrations, measured weekly for 9 months, to be highest more often in FF than in ++ rams.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

The effect of prolactin on estradiol-17 beta and testosterone plus 5 alpha-dihydrotestosterone secretion by porcine luteal cells in vitro.

Prolactin (1, 5, 10 micrograms/ml) inhibited 5 alpha-dihydrotestosterone (DHT), testosterone (T) and estradiol-17 beta (E2) secretion by luteal cells isolated from porcine corpus luteum on the 13th day of the estrous cycle. The effect of prolactin upon luteal cells on the 5th and 17th day of the cycle was different. Inhibition of DHT, T and E2 secretion in luteal cells on the 5th day of the cycle occurred only after 6 hours of incubation, at prolactin doses of 5 and 10 micrograms/ml of the medium. Luteal cells obtained from corpora lutea with considerable physiological luteolysis (17th day of the cycle) did not react to the presence of prolactin in the incubation medium. The results showed that the effect of prolactin upon luteal cells depended on the intensity of steroidogenesis. Luteal cells on the 5th day of the estrous cycle produced progesterone in the amounts 34 +/- 9.1 ng/ml, on the 13th day: 62 +/- 11.5, and on the 17th day: 7.9 +/- 1.9. The effect of prolactin was most pronounced in case of cells on the 13th day of the cycle. These cells were characterized by the highest production of progesterone. The in vitro observations suggest the role of prolactin in inhibiting synthesis or release of DHT, T and E2 from luteal cells.

Animals↗

Human testis does not secrete oestrone sulphate.

The concentrations of five steroids in samples of spermatic venous blood collected from 17 men undergoing ligation of varicocoeles were compared with those in samples from the antecubital vein. There was evidence of testicular secretion of testosterone, androstenedione, oestradiol-17 beta and oestrone, since the ratios of the mean concentrations in spermatic venous plasma to those in peripheral venous plasma were 77.2, 9.1, 28.7 and 1.6 respectively. The testicular secretion of oestrone sulphate was minimal; the ratio of the mean concentrations in spermatic and peripheral plasma was 1.07. These results support the view derived from isotope dilution studies that almost all oestrone and oestrone sulphate in the circulation is derived from peripheral conversion of other precursor steroids.

Adolescent↗

Priming with testosterone enhances stimulated growth hormone secretion in boys with delayed puberty.

BACKGROUND AND OBJECTIVE: Tests for growth hormone (GH) deficiency are not always helpful in the differential diagnosis of physiological delay of growth and puberty and GH deficiency. PATIENTS AND METHODS: To enhance diagnostic specificity, we used a single dose testosterone priming before repeating the arginine stimulation test in 26 boys with short stature and only early signs of puberty who failed to show an adequate response of serum GH in the first test. RESULTS: 77% (20/26 patients) increased their serum GH peak to more than 10 ng/ml, whereas six patients were still below this concentration. CONCLUSION: We propose that testosterone priming is a useful tool to distinguish between physiological delay of growth and puberty and GH deficiency and should be included in the diagnostic procedure.

Adolescent↗

Plasma gonadotropin and testosterone values in infants with cryptorchidism.

Plasma gonadotropins and testosterone levels have been studied from day 30 +/- 6 to day 120 +/- 10 in 57 term male infants born with undescended testes-bilaterally in 22 and unilaterally in 35. Clinical follow-up of these infants showed that spontaneous testicular migration occurred at 2 to 4 months in 27 of them; the 30 others remained cryptorchid at 6 months. Plasma LH and the postnatal rise in testosterone concentration were significantly lower in patients remaining cryptorchid, either unilaterally or bilaterally, than in infants with delayed spontaneous descent of one or both testes. A significant positive correlation was found betwen plasma LH and testosterone values within these two groups of subjects. Plasma FSH levels were not different in the two groups. These data suggest a primary LH deficiency in cryptorchidism, resulting in a blunted postnatal secretion of testosterone. It may be speculated that the early postnatal deficiency of the LH-Leydig cell axis in cryptorchid patients contributes to impair both testicular migration and maturation.

Cryptorchidism↗

Effects of induced hypoprolactinemia on testicular function during gonadal maturation in the rat.

We have evaluated the effects of hypoprolactinemia during gonadal maturation in the male rat. Intact 30-day-old rats were injected daily for 10 days with three different doses of bromocriptine (0.75, 1.5 or 3.0 mg/kg of body weight/day). At the end of the treatment period, the animals were sacrificed, serum was collected for prolactin (PRL), LH, and androgen measurements. Intratesticular testosterone and 5 alpha-androstanediol (androstanediol) were measured following celite column chromatography and a specific radioimmunoassay. In addition, the production of androgens by decapsulated testes and dispersed Leydig cells was also studied in vitro. Serum levels of PRL (9.4 +/- 1.9 ng/ml) were suppressed to undetectable levels in the three bromocriptine-treated groups, whereas LH levels were not altered. All three doses of bromocriptine markedly depressed serum testosterone (plus DHT) and androstanediol. Intra-testicular testosterone and androstanediol were diminished (25% and 35%, respectively, P less than 0.05) during hypoprolactinemia. Decapsulated testes and dispersed Leydig cells from bromocriptine-treated animals showed a significant reduction in the basal secretion of testosterone (plus DHT) and androstanediol, and in androgen responses to submaximal hCG stimulation. Maximal steroidogenic responses from bromocriptine-treated rats were similar to controls. The present findings show that, during puberty, bromocriptine influences testicular steroidogenesis, and these effects may be partly due to changes in PRL levels. A direct effect of this dopaminergic agonist on the male gonad cannot be completely ruled out.

Androgens↗

Dose-related effects of luteinizing hormone on the pattern of steroidogenesis and cyclic adenosine monophosphate release in superfused preovulatory rat follicles.

The secretion of steroids and the release of cAMP in response to repeated luteinizing hormone (LH) stimulation were examined during superfusion of isolated preovulatory rat follicles. A high dose of ovine LH (1 microgram/ml for 20 min) caused a prolonged increase in the secretion of progesterone (P) and 20 alpha-dihydroprogesterone (20 alpha-OHP) and a transient increase in the secretion of testosterone (T) and estradiol-17 beta (E2), and was accompanied by a peak of cAMP release. A single pulse of LH at a low dose level (10 mg/ml for 20 min) gave a limited increase in T secretion, but no clear change in P, 20 alpha-OHP and E2 secretion or cAMP release. When the follicles were challenged with a second pulse of LH (at 1 microgram/ml), the response varied according to the dose of LH delivered in the preceding pulse. Following exposure to the high dose of LH, the follicles were partially refractory to the second LH challenge in terms of cAMP and P and the secretion of T and E2 remained low. The low dose of LH, however, had a conditioning effect on the follicles since the response to the second LH challenge was amplified in terms of P, 20 alpha-OHP and cAMP. In this case a secondary increase in T and E2 secretion was found. The differential response to varying doses of LH are likely to reflect the physiological control of steroidogenesis during final follicular maturation.

20-alpha-Dihydroprogesterone↗

Testicular blood flow, vascular permeability, and testosterone production after stimulation of unilaterally cryptorchid adult rats with human chorionic gonadotropin.

Testicular blood flow, testosterone production, and the formation of testicular interstitial fluid (IF) were studied in unilaterally cryptorchid rats, basally, 8 h and 24 h after treatment with 200 IU human CG (hCG). Testicular blood flow was lower in the abdominal testis in both control rats and hCG-treated rats than in the scrotal testis within the same treatment group. The scrotal testicular blood flow increased significantly 24 h after hCG treatment, but not after 8 h. In the abdominal testis, there was a significant increase of blood flow 8 h after hCG, but not 24 h after. The formation of IF was subnormal in the abdominal testes of control rats, but this was corrected in hCG-treated rats, where there was a significant increase of IF in both abdominal and scrotal testes. The total endothelial surface of small blood vessels was decreased in abdominal testes. Testosterone concentration in the spermatic vein was significantly lower on the abdominal side than on the scrotal side in both control and hCG-treated rats. The concentration of testosterone was lower in IF on the abdominal side in control rats, but after hCG the testosterone concentration was similar in both scrotal and abdominal testes, indicating a trapping of testosterone in the abdominal testis. The outflow of testosterone in the spermatic vein was significantly increased at both 8 and 24 h after hCG from both the scrotal and abdominal testes, although it was always smaller from the abdominal testis. The lower secretion of testosterone from the abdominal testis after hCG was mainly due to reduced blood flow and not to any disability of the Leydig cells of abdominal testes to produce testosterone.

Animals↗

[Cancer of the prostate: biologic bases for the use of an antiandrogen in its treatment].

Although orchiectomy, estrogens and LHRH agonists suppress testicular androgens, they are without effect on adrenal androgens which are converted into dihydrotestosterone in the prostate. It is therefore necessary to develop substances able to block the action of all androgens, whatever their source, on target organs. The non-steroid, Anandron (RU 23908), when administered orally, gives rise to a high and sustained plasma level of intact compound that inhibits testosterone binding to its receptor. This inhibition, however, occurs not only in the prostate but also in the pituitary. The negative feedback action of androgens is thus inhibited by Anandron resulting in an increased secretion of testosterone and explaining the necessity of combining Anandron with castration (whether surgical or medical by an LHRH agonist). Anandron opposes, on the one hand, the action of adrenal androgens and, on the one other, of the testosterone surge that occurs during the early days of treatment with the LHRH analog. The efficacy of the combined treatment has been demonstrated experimentally. Clinical trials are presently underway.

Androgens↗

The effect of alcohol ingestion on hepatic aromatase activity and plasma steroid hormones in the rat.

Chronic alcohol ingestion in the rat resulted in increased hepatic aromatase activity, elevation of plasma estradiol, and a decrease in plasma testosterone levels. Testicular incubation studies indicated that the source of the estrogen was not of gonadal origin but was, most likely, due to increased peripheral conversion. The failure of HCG in vitro to restore testicular secretion of testosterone to normal levels suggested a direct action of alcohol, or a metabolic product, on gonadal secretory processes, as distinct from trophic hormone effects. This study demonstrates that many of the hormonal alterations seen in cirrhosis of the liver in man may be produced directly by alcohol feeding without cirrhotic changes in the rat.

Aging↗

Androgen inactivation in human lung fibroblasts: variations in levels of 17 beta-hydroxysteroid dehydrogenase type 2 and 5 alpha-reductase activity compatible with androgen inactivation.

Androgens delay lung maturation through their action on lung fibroblasts. Knowing that testosterone is secreted by the lung epithelial-like cell line A-549, we have studied the metabolism of androgens by several human lung diploid fibroblasts cell lines. No 17-ketosteroid reductase activity was detected. In contrast, testosterone was transformed mainly into androstenedione and androstanedione with no 5 alpha-dihydrotestosterone formed, indicating the presence of 17 beta- hydroxysteroid dehydrogenase (HSD) type 2 and 5 alpha-reductase activities. The eight cell lines analyzed had either a low or high 17 beta-HSD type 2 activity level. No correlation between these levels and the sex or age stage of cells was established, but Northern blot analysis of human lung RNA samples of five adult subjects revealed very similar variations between subjects in the level of 17 beta-HSD type 2 mRNA. The 5 alpha-reductase activity had a marked substrate preference for androstenedione, the product of 17 beta-HSD type 2. When tritiated testosterone was used as substrate, only barely detectable levels of 5 alpha-dihydrotestosterone were observed by HPLC in the presence of the 17 beta-HSD type 2 inhibitor EM-919. The use of unlabeled testosterone or of the antiandrogen hydroxyflutamide demonstrated that the tritiated testosterone substrate itself had no effect on levels of 5 alpha-reduction. In fact, in these cells, 5 alpha-reductase has no significant activity on testosterone, but it further converts the product of 17 beta-HSD type 2, thus playing a role with 17 beta-HSD type 2 in androgen inactivation. Because androgens delay lung maturation and surfactant synthesis by their action on lung fibroblasts, it is of particular interest to find that the steroid metabolism of these lung fibroblast cells is oriented toward androgen inactivation. Because lung fibroblasts of subjects with low 17 beta-HSD type 2 expression levels are likely to be exposed to higher levels of androgens, an allelic variation of the 17 beta-HSD-2 gene is suspected, which would result in familial incidence of respiratory distress. This is in line with reported cases of familial incidence of respiratory distress.

17-Hydroxysteroid Dehydrogenases↗

Effect of administration of human chorionic gonadotrophin on criteria used to assess testosterone administration in athletes.

Abnormal ratios of testosterone to epitestosterone (T/E) and testosterone to LH (T/LH) in the urine of male athletes are indicative of testosterone administration. The T/E ratio has been adopted by the International Olympic Committee as the sole criterion used in the detection of testosterone administration. An athlete is usually considered to have failed a drug test if the urinary T/E ratio is greater than 6. Human chorionic gonadotrophin (hCG) has been used by some male athletes to stimulate testicular secretion of testosterone. The purpose of this investigation was to examine whether the urinary T/E ratio can remain unaffected by administration of hCG to normal adult males. Administration of hCG resulted in large increases in serum testosterone concentrations and urinary T/LH ratios but small changes in urinary T/E ratios of two subjects (maximum T/E values observed were 0.8 and 1.2 respectively). These observations suggest that the urinary T/LH ratio is a valuable indicator of hCG as well as of testosterone administration. This study is the first to measure urinary T/LH ratios using the technique of gas chromatography-mass spectrometry for quantification of testosterone, and highly specific monoclonal antibodies for the measurement of LH. An ultrafiltration method is proposed as part of a confirmatory procedure to be adopted in the measurement of urinary gonadotrophins for drug control in sport.

Chorionic Gonadotropin↗

Increased luteinizing hormone pulse frequency during sleep in early to midpubertal boys: effects of testosterone infusion.

Gonadotropin secretion is pulsatile in prepubertal and early pubertal boys, and the onset of puberty is characterized by a sleep-associated rise in LH pulse amplitude. To determine whether an augmentation in LH pulse frequency as well as amplitude occurs at the onset of puberty, we studied gonadotropin secretion in 21 early to midpubertal boys. Blood samples were taken every 20 min (every 15 min in 4 boys) for LH determinations. A 2-fold increase in LH pulse frequency occurred during the nighttime sampling period (2200-0400 h) compared to that in the hours when the boys were awake (1000-2200 h). The maximum frequency (0.7 pulses/h) occurred between 2400 and 0200 h. The mean plasma LH concentration increased during the night from 2.3 +/- 0.2 (+/- SE) mIU/mL (2.3 +/- 0.2 IU/L) between 2000-2200 h to a maximum of 6.2 +/- 0.4 (6.2 +/- 0.4 IU/L) between 0200-0400 h. The mean plasma LH decreased to 5.5 +/- 0.4 mIU/mL (5.5 +/- 0.4 IU/L) between 0400-0600 h and to 4.2 +/- 0.5 (4.2 +/- 0.5 IU/L) between 0600-0800 h. Plasma testosterone rose during the night to a mean maximum value of 2.4 +/- 0.5 (+/- SE) ng/mL (8.3 +/- 1.7 nmol/L). This finding suggested that the rise in testosterone might play a role in decreasing LH secretion during the later hours of sleep (after 0400 h). To address this question and to study further the effects of testosterone in early puberty, we measured plasma LH concentrations every 10 min from 2000-0800 h in 8 early to mid-pubertal boys before and during short term testosterone administration. Saline or testosterone at a concentration of 9.33 micrograms/mL (32 mumol/L) was infused at a rate of 10 mL/h from 2100-1200 h to shift the nighttime testosterone rise 3 h earlier than would occur spontaneously. Blood samples were obtained every 10 min for LH and every 30 min for testosterone determinations from 2000-0800 h. Pituitary responsiveness was assessed by administering sequential doses of synthetic GnRH (25 and 250 ng/kg) at 1000 and 1200 h, respectively. The nighttime increase in LH pulse frequency and mean plasma LH concentration occurred between 2300 and 0200 h despite testosterone infusion. However, testosterone infusion was associated with significantly lower mean plasma LH concentrations from 0200-0800 h compared to those on the night of the saline infusion. Pituitary responsiveness to synthetic GnRH was unaltered by testosterone administration.(ABSTRACT TRUNCATED AT 400 WORDS)

Adolescent↗