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P B Connolly

Publications and source records attributed to P B Connolly.

At least 19 recordsLinked to original sources

Aromatase activity in developing guinea pig brain: ontogeny and effects of exogenous androgens.

The formation of estrogens from androgens by aromatase in the developing brain is an important step in the sexual differentiation of many species. We characterized aromatase activity (AA) in a high-speed pellet of brain tissue from fetal guinea pigs. The apparent substrate affinity (approximately 17 nM) was comparable to reported values in other species. Aromatase activity was highest in the amygdala (AMG) and preoptic area (POA), with lesser amounts in the septum (SEPT) and medial basal hypothalamus (MBH). Activity was low but measurable in parietal cortex (CTX). In the AMG, POA, SEPT, and MBH, AA was highest in early gestation (Days 35-40) and showed a steady decline through development. No sex difference in AA was apparent. We also determined the effects of administration of exogenous androgens to pregnant females on brain AA in the fetus. Testosterone propionate (5 mg/day on Days 30-39 followed by 1 mg/day on Days 40-50) caused a significant increase (p < 0.05) in AA found in the MBH and CTX. Administration of dihydrotestosterone propionate (2.5 mg/day on Days 30-39 followed by 1 mg/day on Days 40-50) significantly stimulated AA in SEPT, MBH, and CTX. These data demonstrate that the fetal guinea pig brain contains high levels of AA during the critical period of sexual differentiation. Treatment with high levels of exogenous androgens consistently induces AA in the MBH and CTX. These latter effects may be among the mechanisms through which exogenous androgens act on the developing brain.

Amygdala↗

Prenatal testosterone differentiates brain regions controlling gonadotropin release in guinea pigs.

Sexual differentiation of behavior and gonadotropin release in short-gestation mammalian species is affected by perinatal testosterone (T). Differentiation of dimorphic behaviors in two long-gestation species (guinea pigs and rhesus macaques) depends upon prenatal androgen exposure. The brain areas mediating gonadotropin release are not sexually differentiated in nonhuman primates, but similar information is not available for the guinea pig. To obtain new information on this subject, we treated pregnant guinea pigs with testosterone propionate (TP; 2.5, 5, or 10 mg/day) or vehicle (control) on Days 30-39 of gestation and 1.0 mg/day of TP on Days 40-55 of gestation. The length of gestation in this strain (Topeka) ranges from 66 to 73 days. We evaluated permanent treatment effects on gonadotropin release by challenging adult guinea pigs with 10 micrograms estradiol benzoate (EB, s.c.) 2 wk after gonadectomy. Serial serum samples were analyzed for LH by RIA. Control females (70.6%) released LH in surge quantities 40.1 +/- 0.7 h (mean +/- SEM, n = 24) after EB treatment. Prenatal T treatment in utero significantly decreased the number of EB-induced LH surges observed in adult females (0 of 5, 2.5 mg TP; 0 of 10, 5 mg TP; 0 of 7, 10 mg TP). No LH surges were induced by EB in any of the males. The postgonadectomy LH rise was 50 and 75% lower (p < 0.01) in females treated with 5 and 10 mg TP, respectively, than in other groups. Four days after the EB challenge, animals were infused with a bolus of GnRH (1 microgram/kg BW), and serial blood samples were taken.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Effects of exogenous androgen on brain androgen receptors of the fetal rhesus monkey.

Testosterone secreted by the fetal testes masculinizes and defeminizes the nonhuman primate brain during a defined prenatal critical period. We previously demonstrated the presence of high-affinity, specific androgen receptors (AR) in the developing rhesus monkey brain, but did not present data concerning their capacity for activation. To achieve this end, we analyzed the AR content in brains from intact and gonadectomized rhesus monkey fetuses at approximately 125 days of gestation, 2 h after injection of either 500 micrograms dihydrotestosterone (DHT) or vehicle directly into the fetus. After treatment, plasma DHT concentrations increased five-fold in the fetal circulation. In gonad-intact fetuses, cytosolic AR decreased in preoptic area, medial basal hypothalamus, and septum following DHT treatment. No significant effect of DHT treatment on nuclear AR was seen. In contrast, the increased level of DHT in the maternal circulation decreased cytosolic AR and increased nuclear AR of the maternal myometrium. In gonadectomized fetuses, DHT treatment decreased cytosolic AR as it did in the intact group. In contrast, a significant increase in nuclear AR was seen in preoptic area, medial basal hypothalamus, and tegmentum of these fetuses. Thus AR in fetal rhesus brain can be activated by DHT when the gonads are removed, but not in the intact fetuses. These data suggest that AR in the developing nervous system of rhesus macaques can be activated by exogenous androgen and hence are probably functional.

Androgens↗

Selective activation of androgen receptors in the subcortical brain of male cynomolgus macaques by physiological hormone levels and its relationship to androgen-dependent aromatase activity.

Aromatase activity (AA) is androgen dependent and independent in subcortical regions of the nonhuman primate brain, but the correlation of androgen receptor (AR) content with AA has not been demonstrated. Thus, we castrated 10 adult male cynomolgus monkeys (Macaca fascicularis) and divided them into 2 groups. One group (n = 6) received empty Silastic capsules, whereas the second group (n = 4) received Silastic capsules filled with testosterone (T). Animals were killed after 3 weeks. Microsomal AA and cytosolic and nuclear AR were determined in specific brain regions dissected from frozen sections. Sera from T-treated subjects contained T, dihydrotestosterone, and LH levels that were not significantly different from the precastration amounts (P < 0.05). Cytosolic AR concentrations declined after T treatment in 12 of 20 brain areas studied (P < 0.05). Nuclear AR levels, on the other hand, were significantly elevated after T treatment (activated) only in the ventral medial nucleus (VMN) and infundibular nucleus/median eminence (P < 0.05). AA distribution was significantly different (P < 0.05) among 20 brain nuclei and subregions. The highest activities were found in the bed nucleus of the stria terminalis, the medial preoptic area, the medial and cortical amygdala, and the VMN. Lesser activities were found in other brain regions. Physiological concentrations of T increased AA only in the VMN and infundibular nucleus-median eminence (P < 0.05). These data suggest that physiological levels of androgens are effective in regulating AA only in those brain areas in which AR are activated.

Androgens↗

Differential effects of aromatase inhibition on luteinizing hormone secretion in intact and castrated male cynomolgus macaques.

To understand the role of central aromatization in feedback regulation of LH in nonhuman primates, we treated adult male cynomolgus monkeys with the aromatase inhibitor, 1,4,6-androstatriene-3,17-dione (ATD). We measured LH, testosterone (T), and ATD in systemic sera of blood samples drawn on a diurnal schedule (0900 and 2100 h). Each animal was bled for 4 pretreatment days from a femoral catheter after which they were divided into the following treatment groups: castrated (Cx), n = 2; Cx + T, n = 6; Cx + T + ATD, n = 6; Cx + ATD, n = 3; and sham operated + ATD, n = 3. Silastic capsules or packets containing T or ATD, respectively, were placed sc between the scapulae at the time of Cx or sham treatment. In T-treated animals, T (20 micrograms/kg body weight) dissolved in propylene glycol was injected im at 2100 h to mimic the diurnal rise of T observed in nonhuman primates. Animals were bled for 2 weeks after which they were killed, and selected brain areas were analyzed for aromatase activity and cytosolic and nuclear androgen receptors. Animals treated with ATD had significantly reduced levels of aromatase activity in selected regions of the hypothalamus, preoptic area, and the amygdala (P < 0.05). Even though ATD inhibited brain aromatase activity, it did not prevent the negative feedback actions of T on LH secretion after Cx. In addition, ATD by itself inhibited LH secretion after Cx and activated brain androgen receptors. These latter effects of ATD seemed to have been mediated through a metabolite. In sham-operated intact males, ATD produced variable surges of LH that were accompanied by elevations of T in the systemic circulation. These differential effects of ATD in intact vs. castrated animals demonstrate the importance of selecting the proper model system to study LH control mechanisms. In the intact animal, aromatization seems to play a role in regulating LH secretion, but the postcastration rise of LH seems to be regulated differently.

Androstatrienes↗

Androgen metabolism by hepatic and renal tissues of the fetal rhesus monkey.

Liver and kidney from fetal monkeys (day 125 of gestation) were fractionated into low speed pellets, microsomal and cytosolic fractions. Liver cytosols converted as much testosterone (T) to 5 beta-androstane-3 alpha,17 beta-diol (5 beta-diol) at 0 degrees C as at 4 degrees-45 degrees C without exogenous cofactors. The principal product formed from 5 alpha-dihydrotestosterone (5 alpha-DHT) was 5 alpha-diol. A 1000-fold molar excess of radioinert 5 beta- or 5 alpha-DHT inhibited 5 beta-diol formation from [3H]T by cytosols and increased 5 beta-DHT formation. Similarly, using 5 alpha-DHT as substrate, 5 alpha-diol formation was inhibited. Microsomal and low speed pellets with added cofactors formed products which recrystallized with either etiocholanolone or androsterone from [3H]T or [3H]DHT, respectively. Little product was formed without cofactor. Whole liver homogenates produced 5 beta-reduced products from [3H]T in the presence of an NADPH generating system whereas kidney homogenates produced 5 alpha-reduced products. These data provide new information on the capacity of fetal monkey liver and kidney to metabolize androgens. The 3 alpha-reductases are cytosolic. The 5 alpha- and 5 beta-reductases are mostly in the low speed pellet but are sufficiently represented in cytosols to mediate diol formation. The 17-hydroxysteroid dehydrogenases are in the microsomal fraction. Our results suggest that 5 alpha-DHT is the active androgen in fetal liver since testosterone is metabolized to 5 beta-DHT and 5 beta-diol which are inactive androgens.

Animals↗

Effects of exogenous steroids on androgen receptors in fetal guinea pig brain.

We treated pregnant guinea pigs on Day 50 of gestation with 10 mg testosterone propionate (TP), obtaining fetuses 2, 4, 8, or 18 h later as well as after 5 days of treatment. In a second group of pregnant guinea pigs, dihydrotestosterone propionate (DHTP), estradiol benzoate (E2B), progesterone (P), or cortisol was given 2 h before obtaining fetuses. Although TP treatment elevated fetal serum T (p less than 0.05), brain cytosolic androgen receptor (ARc) content was unchanged in fetuses of either sex. In female fetuses, nuclear androgen receptors (ARn) increased 10-fold in medial-basal hypothalamus (MBH) and preoptic area (POA) at 2 and 4 h (respectively) after treatment, while fetal male ARn content was unchanged. Maternal injection of other steroids (E2B, P, or cortisol, but not DHTP) significantly increased these hormones in the fetus 2 h later (p less than 0.05). Only androgens affected fetal androgen receptor (AR) content. While TP increased ARn in female MBH, DHTP decreased ARc in fetal anterior pituitary of both sexes. In this latter case, a metabolite of DHT may mediate the effects. We conclude that T crosses the guinea pig placenta and activates ARn in POA and MBH of female fetuses; male ARn appear to be maximally occupied by endogenous T. Steroids of other classes do not induce AR responses in fetal guinea pig brain. These AR changes may represent an initial cellular mechanism in brain sexual differentiation.

Animals↗

Androgen binding in peripheral tissues of fetal rhesus macaques: effects of androgen metabolism in liver.

In rhesus monkeys sexual differentiation of the brain and reproductive tract (RT) is androgen-dependent. Presumably these effects are mediated through the androgen receptor (AR). The AR has not been characterized in fetal tissues such as liver, kidney, heart, spinal cord and RT in this species. We characterized AR binding using [3H]R1881 as the ligand in cytosols from tissues obtained on days 100-138 of gestation. Scatchard analyses revealed a single, saturable, high affinity AR in liver, kidney, heart, spinal cord and RT. The apparent dissociation constant (Kd) ranged from 0.52 to 0.85 nM with no significant tissue differences. The number of AR (Bmax; fmol/mg protein) differed significantly (P less than 0.01) between tissues (liver greater than RT much greater than kidney greater than or equal to heart greater than or equal to spinal cord). Radioinert testosterone (T) and 5 alpha-dihydrotestosterone (DHT) but not androstenedione, progesterone, estradiol-17 beta, estrone or cortisol in a 50-fold molar excess inhibited [3H]R1881 binding to the AR in spinal cord, heart, kidney and RT. However, in liver only DHT competed significantly (P less than 0.01) for binding. This difference in binding of DHT vs T in the liver was further investigated by incubating liver and kidney cytosols with [3H]DHT and [3H]T at 4 degrees C. We identified the metabolic products by mobility on Sephadex LH-20 columns and reverse isotope dilution. Liver cytosols metabolized [3H]DHT to 5 alpha-androstane- 3 alpha,17 beta-diol (5 alpha-diol) and [3H]T to 5 beta-androstane-3 alpha, 17 beta-diol (5 beta-diol) at 4 degrees C. In contrast, kidney cytosols metabolized [3H]DHT while [3H]T remained unchanged. Further studies indicated that a 50-fold molar excess of 5 alpha-diol inhibited the binding of [3H]R1881 in liver cytosols by about 50% whereas the same molar concentration of 5 beta-diol had no effect. These data demonstrate the presence of AR in peripheral tissues of fetal rhesus monkeys and suggest that androgens through their receptors may affect development of these tissues. Liver cytosols are capable of metabolizing T and DHT at 4 degrees C at conditions similar to those used for measuring cytosolic AR. However, T and DHT are metabolized differently, generating different isomers which have different affinities for hepatic AR.

Androgens↗

Aromatase activity in adult guinea pig brain is androgen dependent.

Androgen metabolism in target tissues constitutes an important step for understanding hormone action. The in situ aromatization of androgen represents one of these metabolic events. We characterized aromatase activity (AA) in a microsomal preparation of brain tissue from adult guinea pigs since earlier reports questioned its presence in neural tissues of this species. Analyses revealed an apparent substrate affinity (approximately 17 nM) that was equivalent in adult males and females. However, adult male brains contained greater quantities of AA than female brains. Specifically, AA in the preoptic area (POA: p less than 0.05) and the medial basal hypothalamus (MBH; p less than 0.01) was greater in males than in females. AA was concentrated in the limbic system and hypothalamus (amygdala greater than POA greater than septum greater than MBH), whereas low levels were consistently measured in cortical tissue. In vitro estrogen formation was significantly lower in POA (p less than 0.05) and MBH (p less than 0.01) after castration. After dihydrotestosterone treatment, AA returned to levels equal to or greater than those observed in intact males. These data indicate that AA does exist in the guinea pig brain and is modulated by androgens through the androgen receptor. The presence of high levels of aromatase activity may suggest a role for locally formed estrogens in brain function in this species.

Androgens↗

Progestins affect reproductive behavior and androgen receptor dynamics in male guinea pig brain.

The present study extends previous studies of ours by comparing the anti-androgenic effect of a progestin agonist (R5020) with progesterone (P). Intact male guinea pigs treated with P (1 and 10 mg/day) and R5020 (100 micrograms/day) had greater latency to mount and lower numbers of mounts and intromissions compared to controls. Ejaculation and plasma testosterone concentration were not affected. Specific brain regions were analyzed for androgen receptor (AR) content. Progestins produced fewer (P less than 0.01) nuclear AR in hypothalamus-preoptic area and pituitary without associated changes in cytosolic AR. These data are best interpreted by postulating an effect of P on AR dynamics mediated through the P receptor and not by competition for androgen binding to its receptor.

Animals↗

Estrone sulfatase activity in rat brain and pituitary: effects of gonadectomy and the estrous cycle.

Estrone sulfatase activity was characterized in microsomal preparations from rat brain and anterior pituitary. No differences in apparent Km were found in hypothalamic-preoptic area between male (7.5 microM) and female (7.4 microM) rats. Apparent Km's of anterior pituitaries from males (14.5 microM) and females (22.5 microM) were higher than those found in brain. Estrone sulfatase activity was equally inhibited by estradiol-17 beta-3-sulfate, dehydroepiandrosterone-3-sulfate and estrone-3-sulfate indicating a broad range of substrate specificity for this enzyme. Sulfatase activity in female anterior pituitary was found to be twice that of male. Sulfatase activity was distributed similarly in brain tissues between sexes with cerebellum greater than or equal to medial basal hypothalamus greater than preoptic area = cortex. Following gonadectomy, sulfatase activity in anterior pituitary of males was significantly greater than activity found in intact animals (P less than 0.05). This increase in activity, however, was unaffected by treatment with testosterone, dihydrotestosterone or estradiol-17 beta. Gonadectomy did not change sulfatase activity in brains of males or females or in pituitaries of females. However, sulfatase activity in pituitary glands of females changed significantly (P less than 0.05) with stages of the estrous cycle (metestrus less than diestrus less than proestrus less than estrus). These data indicate sulfatase activity in rat anterior pituitary gland may be controlled by gonadal factors while sulfatase activity in brain is regulated differently.

Animals↗

Ontogeny of androgen receptors in fetal guinea pig brain.

Sexual differentiation of the guinea pig brain is androgen dependent. To understand the cellular mechanisms of androgen action, we studied the ontogeny of cytosolic (ARc) and nuclear (ARn) androgen receptors in the brains and anterior pituitaries of fetal, neonatal, and adult guinea pigs. Using cytosol from the hypothalamus-preoptic area-amygdala-septum of 60- to 65-day fetuses and nuclear preparations from 6-day-old neonates treated with testosterone propionate, validation studies revealed an AR with an apparent Kd of 1.9 +/- 1.1 (mean +/- SEM, n = 3) x 10(-10) M (ARc) and 3.4 +/- 3.2 (n = 3) x 10(-10) M (ARn). The cytosolic receptors were highly specific for androgens. After assay validation, AR content was determined from specific brain regions of fetuses obtained on Days 30, 40, 50, and 59 of gestation and on Days 6 and 120 postpartum. ARc differed significantly (p less than 0.05) between brain regions and times of gestation, but no sex differences were apparent. In contrast, ARn showed little difference between tissues or with gestational age, but there were significant differences between males and females, especially in late gestation and early postnatal life, with males having greater ARn binding (p less than 0.05). These data demonstrate the presence of ARc and ARn in the fetal brain and pituitary gland during the critical period of sexual differentiation (Days 30-37 of gestation), thus establishing the identity of cellular structures involved in androgen action.

Analysis of Variance↗

Role of steroid 5 alpha-reductase activity in sexual differentiation of the guinea pig.

The possible role of 5 alpha-reduction of steroids in the sexual differentiation of guinea pigs was determined by treating pregnant guinea pigs with a 5 alpha-reductase activity (5 alpha RA) inhibitor (17 beta-N,N-diethylcarbamoyl-4-methyl-4-aza-5 alpha-androstan-3-one, 4MA, 10 mg/day) from day 30 to 55 of gestation. 5 alpha RA in fetal diencephalon tissue obtained from 4MA-treated mothers on day 55 of gestation was suppressed compared to that of control tissue. Four litters receiving 4MA were carried to term along with an equal number of litters receiving the vehicle alone. Males that received 4MA in utero (n = 6) had altered external genitalia, i.e., hypospadias and reduced anogenital distances, but their adult copulatory behavior did not differ from that of controls (n = 7). In order to evaluate treatment effects on the hypothalamic-pituitary axis, all animals were challenged with estradiol benzoate (EB, 10 micrograms in oil, s.c.) 2 weeks after gonadectomy. Serial plasma samples were obtained and analyzed for luteinizing hormone (LH) using an heterologous radioimmunoassay. Control females (n = 13) and 4MA-treated females (n = 5) released LH in surge quantities about 42 h after EB treatment. Plasma from 4MA-treated females differed from controls in that it contained greater overall quantities of LH (p less than 0.05) and greater amounts at the time of the LH surge (p less than 0.05). Regardless of treatment males did not respond to EB.(ABSTRACT TRUNCATED AT 250 WORDS)

3-Oxo-5-alpha-Steroid 4-Dehydrogenase↗

Changes in pituitary responsiveness during the ovulatory cycle of the Japanese quail, in vitro.

Anterior pituitary glands from ovulating Japanese quail (Coturnix coturnix) were used to investigate variation in sensitivity to chicken luteinizing hormone-releasing hormone (cLHRH I; Gln8-LHRH). Grouping the pituitaries by ovulatory stage provided preliminary evidence of changes in sensitivity to LHRH during the ovulatory cycle. Pituitaries taken from quail before the preovulatory LH surge were responsive to cLHRH I, while pituitaries from the other times of the cycle showed minimal response to cLHRH I. Female pituitary glands release less LH than those of males. These data indicate a change in sensitivity to LHRH in the female quail that may be due to changes in gonadal steroids or the pool of releaseable LH from the pituitary.

Animals↗

Testosterone 5 alpha-reductase activity in neural tissue of fetal rhesus macaques.

After development of a 5 alpha-reductase activity (5 alpha-RA) assay based on the capacity of microsomes to convert [3H]testosterone (T) to [3H]dihydrotestosterone (DHT), we analyzed 5 alpha-RA in neural tissues of fetal rhesus macaques at 50, 80 and 150 days of gestation. This method allowed us to collect kinetic data on the properties of the 5 alpha-reductase resident in fetal brain at 150 days of gestation. The Km and Vmax calculated from these data were 4.32 microM and 22.6 nmol.mg protein-1.h-1, respectively. Analyses of 5 alpha-RA in microsomes from the hypothalamic-preoptic area-amygdala (HPA) at dilutions of 1/25 and 1/50 indicated higher enzyme activity with increasing dilution of the microsomes. Measurement of 5 alpha-RA using concentrations of [3H]T which saturated the enzyme in diencephalon (DIEN), brain stem (B.STEM), temporal (TCTX) and frontal cortex (FCTX) of six 50-day old fetuses (3 males and 3 females) revealed no obvious sex differences in 5 alpha-RA, however, a significant difference (P less than 0.05) between tissues was noted. The DIEN and B.STEM contained significantly (P less than 0.05) higher levels 5 alpha-RA than the FCTX while the TCTX contained an intermediate level of activity. Significant increases in 5 alpha-RA were observed in FCTX and TCTX with time of gestation (50, 80 and 150 days). Other tissues, including amygdala, hippocampus, cerebellum, tegmentum and septum also change with fetal age. These data demonstrate the existence of 5 alpha-reductase in the fetal monkey brain. Significant changes in cortical 5 alpha-RA suggest some role for 5 alpha-reductase in development.

3-Oxo-5-alpha-Steroid 4-Dehydrogenase↗

Ontogeny of cytosolic androgen receptors in the brain of the fetal rhesus monkey.

In this study we compared the binding characteristics of methyltrienolone (R1881) in pooled cytosols from the hypothalamus-preoptic area-amygdala-septum (HPAS) of adult and fetal rhesus macaques. In addition, we studied the ontogeny of cytosolic androgen receptors (AR) in fetal neural tissue. Intact adult males and fetal rhesus monkeys of known gestational age were our experimental subjects. Fetuses were delivered by cesarean section at 50, 65, 80, and 150 days gestation. HPAS cytosols from 150-day fetuses and adult males were incubated with the synthetic ligand, [3H]R1881, for determining AR characteristics and to validate the assay. A single high affinity, low capacity receptor for R1881 was found in HPAS cytosols. The apparent dissociation constant was similar between adult and fetal HPAS (1.09 X 10(-10) vs. 1.59 X 10(-10) M, respectively). Binding specificity was determined by the addition of excess radioinert testosterone (T), 5 alpha-dihydrotestosterone, estradiol, or progesterone to the incubation tube. R1881 binding was displaced by the addition of excess amounts of T and dihydrotestosterone, but not of estradiol or progesterone. There were no differences between fetal and adult animals. Single point analyses of AR numbers in fetal animals showed significant age and regional differences (P less than 0.05). Since no sex differences were apparent, data from males and females were combined. In the hypothalamus-preoptic area there was a significant increase in AR throughout gestation [1.3 +/- 0.4 (+/- SE) fmol/mg protein; n = 7 (50 days gestation) vs. 6.2 +/- 0.3 fmol/mg protein; n = 4 (150 days of gestation); P less than 0.01]. These values differed significantly from adult male hypothalamic-preoptic area (14.1 +/- 0.3 fmol/mg protein; P less than 0.01; n = 3). AR levels in frontal and temporal cortex were high on day 50 of gestation, but showed a significant decline by day 150 (P less than 0.05). The administration of testosterone propionate (25 mg/kg.day) to pregnant animals from 40-50 days gestation, which resulted in elevated levels of serum T in female, but not male, fetuses had no effect on AR in any brain region studied. These studies confirm the presence of AR in fetal monkey brain. New information is provided on the changes in AR numbers in cortical and hypothalamic tissues during the critical period for sexual differentiation of the primate brain.(ABSTRACT TRUNCATED AT 250 WORDS)

Animals↗

Progesterone modulation of androgen receptors in the brain and pituitary of male guinea pigs.

Androgen receptors (AR) were determined in cytosol and nuclear extracts of pituitary and neural tissue from intact male guinea pigs by a binding assay using [3H]dihydrotestosterone as ligand. Saturation analyses of cytosol from hypothalamus-preoptic area (POA)-amygdala regions and anterior pituitary revealed receptors (ARc) with apparent Kd values of 2.52 and 3.83 X 10(-10) M, respectively. Nuclear salt extracts from the same tissues contained receptors (ARn) with Kd values of 4.38 and 5.12 X 10(-10) M. Reproductive behavior of 10 males was observed with receptive females for 10 min once a week. After 4 weeks, half of the animals received 10 mg progesterone (P)/day for an additional 4 weeks. P treatment significantly (P less than 0.05) increased latency to first mount and decreased mounts per test period. After behavioral testing, analysis of the AR content of specific brain regions revealed that the highest concentrations of ARc and ARn were in the POA and medial basal hypothalamus, and the lowest were in the cerebral cortex. The ARn content was significantly suppressed in POA and medial basal hypothalamus (P less than 0.05) from P-treated males compared to the control value. These data show that AR content is highest in areas thought to control behavior and gonadotropin release within the brain of the male guinea pig. In addition, the antiandrogenic actions of P on the central nervous system, which in this experiment were expressed as a significant decline in reproductive behavior, may be explained by its interference with the retention of the AR in the nucleus.

Amygdala↗

Steroids modulate the release of luteinizing hormone from quail pituitary cells.

An enzymatically dispersed pituitary preparation from male Japanese quail (Coturnix coturnix) was used to study the effects of gonadal and adrenal steroids on gonadotropin release. Cells were preincubated for 18 hr with or without steroids and then challenged with chicken luteinizing hormone-releasing hormone (cLH-RH I; Gln8-LH-RH). Preincubation with testosterone (T; 10 nM) significantly suppressed (P less than 0.05) luteinizing hormone release in response to cLH-RH I (10 ng/ml). Preincubation with 5 alpha-dihydrotestosterone (5 alpha-DHT) (10 nM) caused even further suppression of LH-RH-stimulated LH release while the same concentration of 5 beta-dihydrotestosterone and estradiol-17 beta had no effect. In addition, preincubation with corticosterone (10 nM) significantly (P less than 0.01) suppressed the amount of LH released in response to cLH-RH I. Pituitary cells from immature males, when stimulated with cLH-RH I, released LH in a dose-related manner. Neither T nor 5 alpha-DHT (10 nM) altered the effect of LH-RH. These data suggest that T and 5 alpha-DHT play a role in mediating LH release in the avian pituitary while 5 beta-reduced androgens have no effect. There appears to be no androgen effect in the immature quail. In addition, corticosterone seems to be a factor in controlling gonadotropin secretion in the quail.

Animals↗