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C A Eagleson

Publications and source records attributed to C A Eagleson.

3 recordsLinked to original sources

Hypothalamic dysfunction.

A pulsatile GnRH stimulus is required to maintain gonadotropin synthesis and secretion. The frequency and amplitude of GnRH pulses determine gonadotropin subunit gene expression and secretion of pituitary LH and FSH. Rapid frequency (more than 1 pulse per h) GnRH pulses favor LH while slower frequencies favor FSH secretion. During ovulatory cycles, an increase in GnRH frequency during the follicular phase favors LH synthesis prior to the LH surge, while following ovulation, luteal steroids slow GnRH pulses to favor FSH synthesis. Thus, a changing frequency of GnRH stimulation of the gonadotrope is one of the mechanisms involved in differential gonadotropin secretion during ovulatory cycles. In hypothalamic amenorrhea a majority of women exhibit a persistent slow frequency of LH (GnRH) pulses, which reflects excess hypothalamic opioid tone and can be temporarily reversed by opioid antagonists. At the other end of the spectrum, in polycystic ovarian syndrome, LH (GnRH) pulses are persistently rapid and favor LH synthesis, hyperandrogenism and impaired follicular maturation. Administration of progesterone can slow GnRH pulse secretion, favor FSH secretion and induce follicular maturation. Thus, the ability to change the pattern of GnRH secretion is an important factor in the maintenance of cyclic ovulation, and loss of this function leads to anovulation and amenorrhea.

Amenorrhea↗

Polycystic ovarian syndrome: evidence that flutamide restores sensitivity of the gonadotropin-releasing hormone pulse generator to inhibition by estradiol and progesterone.

Polycystic ovarian syndrome (PCOS) is a complex disorder with multiple abnormalities, including hyperandrogenism, ovulatory dysfunction, and altered gonadotropin secretion. The majority of patients have elevated LH levels in plasma and a persistent rapid frequency of LH (GnRH) pulse secretion, the mechanisms of which are unclear. Earlier work has suggested that the sensitivity of the GnRH pulse generator to inhibition by ovarian steroids is impaired. We performed a study to determine whether antiandrogen therapy with flutamide could enhance feedback inhibition by estradiol (E2) and progesterone (P) in women with PCOS. Ten anovulatory women with PCOS and nine normal controls (days 8-10 of the cycle) were studied on three occasions. During each admission, LH and FSH were determined every 10 min and E2, P, and testosterone (T) every 2 h for 13 h. After 12 h, GnRH (25 ng/kg) was given iv. After the first admission, patients were started on flutamide (250 mg twice daily), which was continued for the entire study. The second admission occurred on days 8-10 of the next menstrual cycle for normal controls and on study day 28 for PCOS patients. Subjects were then given E2 transdermally (mean plasma E2, 106+/-18 pg/mL) and P by vaginal suppository to obtain varied plasma concentrations of P (mean P, 4.4+/-0.5 ng/mL; range, 0.6-9.0 ng/mL), and a third study was performed 7 days later. At baseline women with PCOS had higher LH pulse amplitude, response to GnRH, T, androstenedione, and insulin and lower sex hormone-binding globulin concentrations (P < 0.05). Most hormonal parameters were not altered by 4 weeks of flutamide, except T in controls and E2 and FSH in PCOS patients, which were lower. Of note, flutamide alone had no effect on LH pulse frequency or amplitude, mean plasma LH, or LH responsiveness to exogenous GnRH. After the addition of E2 and P for 7 days, both PCOS patients and normal controls had similar reductions in LH pulse frequency (4.0+/-0.7 and 5.8+/-0.7 pulses/12 h, respectively). This contrasts with our earlier results in the absence of flutamide, where a plasma P level of less than 10 ng/mL had minimal effects on LH pulse frequency in women with PCOS, but was effective in controls. These results suggest that although the elevated LH pulse frequency in PCOS may in part reflect impaired sensitivity to E2 and P, continuing actions of hyperandrogenemia are important for sustaining the abnormal hypothalamic sensitivity to feedback inhibition by ovarian steroids.

17-alpha-Hydroxyprogesterone↗

Neuroendocrine aspects of polycystic ovary syndrome.

A series of investigations have emphasized the heterogeneous nature of the clinical condition known as PCOS and have delineated several factors that may contribute to the hyperandrogenemia and anovulation in this condition. Currently, it remains unclear whether intrinsic abnormalities of ovarian steroidogenesis, the effects of hyperinsulinemia in augmenting LH stimulation of ovarian androgen production, and the persistent rapid frequency of LH/GnRH secretion are primary factors in all patients. Indeed, these factors may have variable roles in different patients, all of whom present with the clinical syndrome of PCOS. A consensus has emerged that abnormalities in the neuroendocrine control of GnRH secretion exist in a significant subset of patients and lead to persistent hypersecretion of LH, which seems to be an important component of the syndrome, particularly in nonobese patients. The relative frequency of primary abnormalities in the regulation of GnRH secretion versus secondary changes reflecting altered circulating concentrations of ovarian steroid remains uncertain. No clear evidence exists for an underlying neuroendocrine abnormality of GnRH regulation in all patients. The recent data showing insensitivity of the hypothalamic GnRH pulse generator to E2 progesterone feedback have suggested potential mechanisms that may explain the abnormalities of GnRH secretion seen in adolescent girls in whom the clinical syndrome of PCOS is destined to develop. Further studies are required in adolescents to establish whether GnRH regulation is impaired during puberty or whether data in adults simply reflect the long-term effects of elevated androgens, estrogens, or other hormones on the hypothalamus. Studies in carefully delineated subgroups of patients with PCOS are needed to establish these points, with a long-term goal of providing patients with improved methods of inducing ovulation and reducing hyperandrogenemia.

Adolescent↗