Hypogonadism caused by a single amino acid substitution in the beta subunit of luteinizing hormone.
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Biomedical subjects
Publications and source records attributed to R W Whitcomb.
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The traditional difficulty in studying the neuroendocrine control of reproduction in the human male has been the inability to tease out the hypothalamic from the pituitary component of this neuroendocrine system. The use of multiple models, each with its own strength and weakness, represents an overlapping approach that has permitted further insights to be gained into the hypothalamic control of the neuroendocrine regulation of gonadotropin secretion in the human. Such an insight is an important prerequisite to the understanding of the pathophysiology of various disease states, the unraveling of a control of FSH secretion by GnRH vs other modulators, and the subsequent design of rational therapies for male reproductive disorders.
To our knowledge we report the first 2 cases of priapism occurring in hypogonadal men receiving gonadotropin releasing hormone therapy. Hypogonadal patients receiving hormonal therapy should be informed about the possibility of priapism and the importance of early urological consultation.
Idiopathic hypogonadotropic hypogonadism (IHH) results from absent or greatly diminished secretion of GnRH. Defects in the GnRH gene have been identified in an animal model of IHH and have been hypothesized as a possible basis for GnRH deficiency in humans. In this study, we used the polymerase chain reaction to clone and sequence the coding regions, promoter, and 3' untranslated tract of the GnRH genes from both alleles of four unrelated patients with IHH. One of the patients studied is a member of a kindred in which X-linked inheritance has been excluded by father-to-son transmission of the disease. No DNA sequence mutations were found. We conclude that most cases of IHH in humans do not involve mutations in the GnRH gene and are presumably caused by mutations at one or more other genetic loci that are required for normal function of GnRH-producing neurons.
Using a LH radioligand receptor assay (RRA) previously validated for use in serum and an equine monoclonal RIA, we have distinguished a subset of subfertile stallions with an elevated RRA/RIA ratio. After purification of the active moiety by anion exchange chromatography and immunoprecipitation with the equine LH (eLH) monoclonal antibody, RRA activity remained in the supernatant. This activity was also recognized by a polyclonal LH antibody (GDN 15) with wide cross-species recognition. This active fraction was further purified by gel filtration chromatography and shown to displace labeled eLH in a dose-dependent fashion in the RRA with an inhibition slope of 2.8 compared with a slope of 1.1 for native eLH. This fraction also inhibited the LH-stimulated steroidogenesis of Leydig cells in vitro in a dose-dependent fashion, but had no effect on basal (minus LH) steroid production. Polyacrylamide gel electrophoresis and electroelution of this material demonstrated RRA activity in a fraction with a mol wt between 45-66 kDa. We conclude that this substance 1) competitively inhibited binding of eLH and hCG to the LH receptor, 2) antagonized LH-stimulated steroidogenesis in vitro, and 3) may represent a LH isoform found in association with infertility in these animals.
Although several forms of monomeric alpha-inhibin have been isolated from follicular fluid, no biological function has yet been ascribed to these posttranslationally processed forms of the alpha-subunit precursor protein. Moreover, previous studies of a FSH receptor binding competitor (FRBC) isolated and characterized from porcine follicular fluid (pFF) suggested certain biochemical similarities between this protein and alpha-inhibin precursors. We, therefore, investigated the hypothesis that alpha-inhibin and/or its precursors might represent autocrine and/or paracrine modulators of FSH action in the ovary, accounting for some of this FRBC activity and thereby exerting some degree of regulation over follicular maturation. Three separate sources of alpha-inhibin proteins were investigated for FRBC activity, including pFF, human FF (hFF), and a 293 cell line into which the full-length human alpha-inhibin cDNA had been stably transfected. Conditioned medium from these transfected cells contained several forms of alpha-inhibin precursors as well as mature alpha-inhibin, but no beta-subunit or intact inhibin. alpha-Inhibin proteins from all three sources, purified by a variety of methods, including immunoaffinity chromatography on an anti-alpha-inhibin column, inhibited FSH binding to both natural tissue FSH receptors as well as recombinant rat FSH receptors expressed in 293 cells. Furthermore, dimeric inhibin and activin, medium from untransfected 293 cells, and non-alpha-inhibin-containing purification fractions were inactive in either assay. In addition, purified recombinant alpha-inhibin proteins were partial in vitro FSH antagonists in a bioassay in which cAMP generation from 293 cells expressing the recombinant FSH receptor is used as an index of FSH biological activity. These same fractions of hFF containing FRBC activity did not bind to LH receptors, thereby demonstrating receptor specificity for this activity. Using sodium dodecyl sulfate-polyacrylamide gel electrophoresis and Western blotting with alpha-inhibin or FRBC antisera, a 57,000 mol wt protein was identified in FRBC-active fractions from all three sources, suggesting that the active moiety was the full-length alpha-inhibin precursor protein or a large mol wt fragment, but not mature alpha-inhibin. Lastly, all FRBC activity from all three sources was extracted by an alpha-inhibin immunoaffinity column and was recoverable upon elution. These results demonstrate that proteins derived from the alpha-inhibin precursor modulate FSH binding to its receptor as well as its biological activity.(ABSTRACT TRUNCATED AT 400 WORDS)
Intact LH and free alpha-subunit (FAS) are differentially regulated during GnRH agonist (GnRHa)-induced pituitary desensitization; circulating levels of FAS rise, while LH levels decline. Increased steady state alpha and decreased LH beta mRNA levels in desensitized rat pituitaries suggest that differential regulation occurs at the level of subunit transcription. We assessed a renal contribution to these changes in serum hormone concentrations by studying LH and FAS levels in serum and urine in 15 pubertal children before and during long term GnRHa administration. Before GnRHa, serum LH and FAS were secreted in concordant pulses, and both responded briskly to exogenous GnRH. During GnRHa-induced pituitary desensitization, mean (+/- SEM) serum and urinary LH levels fell [11 +/- 3 vs. 2 +/- 0.2 IU/L (P less than 0.01) and 39 +/- 15 vs. 5 +/- 1 IU/g creatinine (P less than 0.05), respectively), and the LH response to exogenous GnRH was ablated (117 +/- 20 vs. 1 +/- 0.3 IU/L; P less than 0.01). In contrast, despite suppression of FAS pulsatility, mean serum FAS levels rose during GnRHa treatment (204 +/- 23 vs. 405 +/- 50 ng/L; P less than 0.01), and responsiveness to exogenous GnRH was maintained. Paradoxically, urinary FAS levels fell (3.2 +/- 0.9 vs. 1.7 +/- 0.4 micrograms/g creatinine; P less than 0.05) as did its renal clearance (3.1 +/- 0.5 vs. 1.3 +/- 0.1 mL/min.m2; P less than 0.05). We conclude that during GnRHa-induced pituitary desensitization, the gonadotrope maintains the ability to respond to GnRH with FAS release, and the rise in serum FAS is due in part to its diminished renal clearance.
The precise sites of action of the negative feed-back effects of gonadal steroids in men remain unclear. To determine whether testosterone (T) administration can suppress gonadotropin secretion directly at the level of the pituitary, the pituitary responses to physiological doses of GnRH were assessed in six men with complete GnRH deficiency, whose pituitary-gonadal function had been normalized with long term pulsatile GnRH delivery, before and during a 4-day continuous T infusion (15 mg/day). Their responses were compared with the effects of identical T infusions on spontaneous gonadotropin secretion and the response to a 100-micrograms GnRH bolus in six normal men. Both groups were monitored with 15 h of frequent blood sampling before and during the last day of the T infusion. In the GnRH-deficient men, the first three GnRH doses were identical and were chosen to produce LH pulses with amplitudes in the midphysiological range of our normal men (i.e. a physiological dose), while the last four doses spanned 1.5 log orders (7.5, 25, 75, and 250 ng/kg). The 250 ng/kg dose was always administered last because it is known to be pharmacological. In the GnRH-deficient men, mean LH (P less than 0.02) and FSH (P less than 0.01) levels as well as LH pulse amplitude (P less than 0.05) decreased significantly during T infusion, demonstrating a direct pituitary-suppressive effect of T and/or its metabolites. Mean LH levels were suppressed to a greater extent in the normal than in the GnRH-deficient men (58 +/- 15% vs. 28 +/- 7%; P less than 0.05). In addition, LH frequency decreased significantly (P less than 0.01) during T administration in the normal men. These latter two findings suggest that T administration also suppresses hypothalamic GnRH release. T was unable to suppress gonadotropin secretion in one GnRH-deficient and one normal man. In both groups, the suppressive effect of T administration was present only in response to physiological doses of GnRH. Because the pituitary- and hypothalamus-suppressive effects of T could be mediated by its aromatization to estrogens, five GnRH-deficient and five normal men underwent identical T infusions with concomitant administration of the aromatase inhibitor testolactone (TL; 500 mg, orally, every 6 h). As an additional control, four GnRH-deficient and four normal men received TL alone. TL administration completely prevented the effect of T administration to suppress gonadotropin secretion in both the normal and GnRH-deficient men, and mean LH levels increased significantly in both the GnRH-deficient (P less than 0.01) and the normal (P less than 0.001) men who received TL alone. The increase in mean LH levels was greater (P less than 0.01) in the normal men who received TL alone than in the normal men who received T plus TL, thus revealing a direct effect of androgens in normal men. Measurements of T and estradiol production rates in three men demonstrated that TL effectively blocked aromatization.(ABSTRACT TRUNCATED AT 400 WORDS)
Although prior studies have suggested that estrogens exert their negative feedback effect at the pituitary level in men, these conclusions have been based on models that evaluate changes in LH pulse amplitude and frequency and, therefore, only provide indirect information concerning the site of action of estrogens. To assess whether estradiol (E2) inhibits gonadotropin secretion directly and solely at the pituitary level in men, we determined the pituitary responses to physiological doses of GnRH in six men with complete GnRH deficiency, whose pituitary-gonadal function had been normalized with long term pulsatile GnRH delivery, before and during a 4-day continuous E2 infusion (90 micrograms/day). To deduce whether E2 has an additional inhibitory effect on hypothalamic GnRH secretion, their responses were compared with the effects of identical E2 infusions on spontaneous gonadotropin secretion and the responses to a 100-micrograms GnRH bolus in six normal men. Both groups were monitored with 15 h of frequent blood sampling before and during the last day of the E2 infusion. In the GnRH-deficient men, the first three GnRH doses were identical and chosen to produce LH pulses with amplitudes in the midphysiological range of values in our normal men (i.e. a physiological dose), while the last four doses spanned 1.5 log orders (7.5, 25, 75, and 250 ng/kg). The 250-ng/kg dose was always administered last because it is known to be pharmacological. In the GnRH-deficient men, mean LH and FSH levels as well as LH pulse amplitude all decreased significantly (P less than 0.02) during E2 infusion, demonstrating a direct pituitary-suppressive effect of E2. Mean LH (P less than 0.01) and FSH (P less than 0.05) levels and LH pulse amplitude (P less than 0.01) also decreased significantly in the normal men. The degree of suppression of mean LH (52 +/- 3% vs. 42 +/- 12%) and FSH (49 +/- 10% vs. 37 +/- 10%) levels was similar in the two groups. These results provide direct evidence that E2 inhibits gonadotropin secretion at the pituitary level in men and suggest that the pituitary is the most important, and possibly the sole, site of negative feedback of estrogens in men.
We have developed a radioligand receptor assay (RRA) with sufficient sensitivity and specificity for quantifying follitropin (FSH) in unextracted serum samples. Standard curves prepared by adding pituitary FSH to either buffer or gonadotropin-free serum were parallel and statistically indistinguishable in this assay, whereas gonadotropin-free serum alone had no activity. Cross-reactivity with related pituitary hormones was negligible. Pituitary FSH was calibrated with commonly used reference preparations so that RRA results could be compared with RIA results for identical standards. The patterns in daily blood samples in six normal menstrual cycles were similar by both methods. The mean RIA:RIA ratio in both the follicular and luteal phases was between 0.6 and 0.7, and at mid-cycle decreased to 0.48, suggesting an alteration of isohormone composition at mid-cycle. In 27 women with premature ovarian failure, RRA:RIA ratios ranged from below the RRA minimum detectable dose to 4.6, suggesting that immunoreactive FSH might not be capable of binding to the FSH receptor in some patients, whereas in patients with high RRA:RIA ratios, circulating inhibitors of FSH receptor binding might be present and perhaps contributing to the observed ovarian failure. Use of this RRA in conjunction with RIA and in vitro bioassays may better define the relative contribution of FSH isohormones, autocrine or paracrine modulators of FSH bioactivity, and FSH-receptor binding competitors to the "total FSH biological signal" as detected by the gonadal FSH receptor.
The displacement per pulse of lambda, T4, and G DNA during pulsed-field agarose gel electrophoresis has been measured for a fine mesh of pulse durations T between 0.02 and 120 s. The slopes of these curves show that the DNA moves by two distinct processes, designated 1 and 2, depending upon the pulse duration T. Process 1 operates at short T and causes dx/dT to decrease gradually with increasing T. This process is independent of molecular weight M. Process 2 is effective at longer T and causes dx/dT to rise sharply in sigmoidal fashion at a value of T which increases as M1.2, finally reaching a plateau of 1.4 microns/s for E = 4 V/cm. The shape of the dx/dT curve and its dependence on M lead directly to 4 zones of separation in plots of mobility vs M for different T. The alignment of the 3 DNAs during PFGE was measured by fluorescence-detected linear dichroism for E between 4 and 10 V/cm. These results are used in developing a molecular understanding of the mobility data.
Idiopathic hypogonadotropic hypogonadism in men is the result of absent or abnormal secretion of gonadotropin-releasing hormone, which prevents pubertal development. Isolated gonadotropin-releasing hormone deficiency is clinically and neuroendocrinologically heterogeneous, largely because of variation in the degree of gonadotropin-releasing hormone deficiency. Treatment with pulsatile gonadotropin-releasing hormone results in normal pubertal changes and virilization. Such treatment has been uniformly successful in normalizing release of gonadotropins and secretion of testosterone. Improvement in secondary sex characteristics and induction of spermatogenesis have been achieved in most patients. Eight of nine patients desiring induction of fertility were able to father a child. Use of pulsatile gonadotropin-releasing hormone presents a powerful model in which to examine regulation of gonadotropin secretion and the role of hypothalamic gonadotropin-releasing hormone in control of the male reproductive axis.
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To examine the differential regulation of glycoprotein hormone secretion from the gonadotrope by GnRH, the Nal-Glu GnRH antagonist was administered to euthyroid women in the early follicular phase (days 1-5) of the menstrual cycle, and the results compared to previous studies with the Nal-Arg GnRH antagonist. After a 4-h period of baseline sampling at a frequency of every 10 min, a single sc dose of the GnRH antagonist was administered to each subject. Frequent sampling continued for 8 h, followed by hourly sampling for a further 16 h. LH, FSH, and free alpha-subunit were measured serially in assays with high specificity. There was a 90% concordance of LH and free alpha-subunit pulses during the baseline sampling period. Pulsatile secretion of LH and free alpha-subunit was immediately abolished at the highest dose of the Nal-Glu antagonist for at least 8 h. The maximum percent suppression of LH after administration of the Nal-Glu GnRH antagonist was 70 +/- 4%, 80 +/- 4%, and 83 +/- 1% at doses of 15, 50, and 150 micrograms/kg, respectively, compared to 51 +/- 10%, 70 +/- 5%, and 69 +/- 5% at doses of 50, 150, and 500 micrograms/kg Nal-Arg antagonist. Decreases in FSH were 28 +/- 2%, 32 +/- 7%, and 39 +/- 2%, with increasing doses of the Nal-Glu antagonist compared with 25 +/- 6%, 17 +/- 6%, and 28 +/- 4% reductions at increasing doses of the Nal-Arg antagonist. Free alpha-subunit decreased 22 +/- 4%, 23 +/- 4%, and 28 +/- 3% at increasing doses of the Nal-Glu antagonist and 12 +/- 4%, 27 +/- 4%, and 30 +/- 7% with increasing doses of the Nal-Arg antagonist. For the Nal-Glu antagonist, suppression of LH was greater than that of FSH and free alpha-subunit at all doses (P less than 0.001), while FSH suppression was greater than that of free alpha-subunit at the highest dose only (P less than 0.05). For the Nal-Arg antagonist, LH suppression was greater than that of FSH or free alpha-subunit at all doses (P greater than 0.01), and FSH suppression exceeded that of free alpha-subunit at the 50 micrograms/kg dose. Suppression of LH was greater with the Nal-Glu antagonist than with the Nal-Arg antagonist at doses of 50 and 150 micrograms/kg (P less than 0.05), and FSH suppression was greater with the Nal-Glu antagonist at 150 micrograms/kg (P less than 0.01), while the degrees of maximum suppression were similar for the two different GnRH antagonists for free alpha-subunit.(ABSTRACT TRUNCATED AT 400 WORDS)
To examine the hypothesis that the secretion of free alpha-subunit (FAS) can serve as an alternative to LH as a neuroendocrine marker of gonadotroph stimulation by GnRH in euthyroid humans, we have investigated the relationship of pulsatile FAS secretion in euthyroid GnRH-deficient men (n = 10) before and after exogenous GnRH stimulation and in normal men under the influence of endogenous GnRH secretion (n = 18). Before GnRH exposure, the GnRH-deficient men showed a complete absence of both LH and FAS pulses. During the initial 7 days of GnRH exposure, all GnRH-deficient men exhibited pulsatile release of FAS by the third day, whereas the appearance of pulsatile release of LH and FSH was more variable. Long term administration of GnRH led to pulses of LH and FAS that were 100% concordant with a demonstrable dose-response relationship between GnRH and FAS, which was quantitatively similar to but more exuberant than that for LH. All doses of GnRH that produced LH pulses within the normal adult range yielded supraphysiological FAS pulses. Analysis of distribution histograms of interpulse intervals and pulse amplitudes of LH and FAS in both normal and GnRH-deficient subjects demonstrated no significant difference between these glycoproteins in interpulse intervals in either the normal or GnRH-deficient groups or in the pulse amplitudes in the GnRH-deficient subjects. There was, however, a significant difference (P less than 0.01) between the distribution histogram of LH and FAS pulse amplitudes in normal men. We conclude that the pulsatile secretion of FAS in euthyroid men 1) is determined by GnRH secretion, 2) is the initial glycoprotein to be secreted in a pulsatile fashion from the gonadotroph during early GnRH exposure in GnRH-deficient men, 3) demonstrates a dose-response relationship to exogenous GnRH which is more robust than that of LH in GnRH-deficient men receiving GnRH, and 4) can, therefore, serve as a complementary and powerful tool with LH for the study of GnRH neurosecretory dynamics.
Studies of circulating LH physiology and pathophysiology are dependent upon measurements of immuno- and bioactivity, both of which have methodologic limitations. We have developed and validated a RRA which allows direct measurement of receptor-bindable LH in human serum. Using a cultured Leydig tumor cell line (MA-10) known to express the CG/LH receptor as the receptor source and polyacrylamide-gel electrophoresis purified hCG as the radioligand, we have established an assay system with the requisite sensitivity (0.04 ng/tube) to measure circulating LH, without significant alteration in total specific binding upon addition of up to 150 microL gonadotropin-free serum when compared to no serum. Standard curves of hLH diluted in gonadotropin-free serum were not statistically different in slope or ED50 from buffer curves. Dilutions of human serum from postmenopausal women and men with Klinefelter's syndrome containing LH measured in the assay were parallel to the standard curve. Further validation of the RRA included measurement of LH by RRA and RIA in daily serum samples from normal women across the menstrual cycle (n = 6) where there was excellent correlation (P less than 0.001) between RRA and RIA measurements with the exception of the mid-cycle surge where the RRA/RIA ratio fell to 0.5. This LH RRA will be useful in further studies of the physiology and biochemistry of LH in human serum.
Measurement of the urinary excretion of lutropin (LH) and follitropin (FSH) and their common free alpha subunit (FAS) assists in monitoring the maturation of the hypothalamic-pituitary-gonadal axis and in understanding the physiology of the pituitary glycoprotein hormones. Here we describe sensitive, specific polyclonal radioimmunoassays for LH and FSH and a monoclonal radioimmunoassay for FAS for use with urine--assays unperturbed by alterations in urinary pH or osmolarity within the broad physiological range encountered in urine. Concordance between LH, FSH, and FAS concentrations in extracted and unextracted urine samples was high. Linearity and parallelism with the standard curves was observed with addition of 25 to 200 microL of unextracted urine. No effect on glycoprotein concentration was seen after as many as 10 freeze-thaw cycles. The need for extraction was further obviated by the high sensitivity of each assay, reflected by minimum detectable doses well below the concentrations encountered in patients' samples. Thus we have measured gonadotropins in unextracted urine as precisely as in extracted urine. We also have demonstrated an equally versatile assay for urinary alpha subunit, using a monoclonal antibody of high specificity for this monomer in its free, uncombined form. These radioimmunoassays complement assays of gonadotropins and free alpha subunit in serum and will allow longitudinal investigations otherwise limited by the constraints of the patient's blood volume.
The velocity and orientation of T4 and lambda DNA have been measured for the first 20 s during pulsed-field gel electrophoresis in order to clarify the DNA motions that occur. For a square pulse with field strength E = 10 V/cm, the velocity of lambda DNA increases gradually to 10.5 microns/s in 1.0 s, declines to 8.6 microns/s, and then rises to a plateau value of 9.3 microns/s after 4 s. T4 DNA behaves similarly, but more slowly. Parallel measurements of fluorescence-detected linear dichroism show that the DNA becomes substantially aligned with its chain axis parallel to the electrophoretic field E after the pulse is applied. The alignment also shows an overshoot, an undershoot, and a plateau comparable to those seen for velocity. When the field strength increases, both the velocity and the alignment reach their peaks more quickly. For all field strengths and both molecular weights, the velocity peak occurs when the molecular center of mass has moved 0.3 to 0.5 L, where L is the chain contour length. A qualitative model is provided.