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C L Nyberg

Publications and source records attributed to C L Nyberg.

8 recordsLinked to original sources

An increase in glutamate release follows a decrease in gamma aminobutyric acid and the pubertal increase in luteinizing hormone releasing hormone release in the female rhesus monkeys.

Previously we have shown that release of gamma-aminobutyric acid (GABA) in the stalk-median eminence (S-ME) is high in prepubertal monkeys and that a decrease in GABA release triggers the onset of puberty. However, it is still unclear how disinhibition of the luteinizing hormone releasing hormone (LHRH) neuronal system from GABA input is followed (or accompanied) by an increase in stimulatory signals, such as glutamatergic input to LHRH neurons. To clarify the temporal relationship between the reduction of the GABAergic inhibitory signal and the enhancement of the glutamatergic stimulatory signal in the control of LHRH release at the onset of puberty, we conducted two experiments using a push-pull perfusion method. In the first experiment, we measured developmental changes in release of LHRH, GABA, and glutamate in the S-ME. LHRH levels were very low in prepubertal monkeys, increased to higher levels in early pubertal monkeys, with the highest LHRH levels occurring in mid-pubertal monkeys. As we previously observed, GABA levels were high in prepubertal monkeys and then decreased in early- and mid-pubertal monkeys. In contrast, glutamate levels were very low in prepubertal monkeys, increased dramatically in early pubertal monkeys, and then slightly decreased in mid-pubertal monkeys, although mid-pubertal levels remained much higher than prepubertal levels. In the second experiment, we measured GABA, glutamate and LHRH in the same samples obtained from prepubertal monkeys which were infused with an antisense oligodeoxynucleotide (AS) for glutamic acid decarboxylase (GAD) 67 mRNA into the S-ME. GAD67 is a catalytic enzyme for GABA synthesis from glutamate, and AS GAD67 mRNA interferes with GAD67 synthesis. Infusion of the AS GAD67 induced a decrease in GABA release, which subsequently resulted in an increase in LHRH release. Surprisingly, glutamate release also increased several hours after the decrease in GABA release, and the increased LHRH release continued. These data are interpreted to mean that a decrease in GABA synthesis by interference with GAD67 synthesis and the reduction of GABA release in the S-ME trigger an increase in LHRH release, but that a subsequent increase in glutamate release in the S-ME further contributes to the pubertal increase in LHRH release at the onset of puberty. The data further support our hypothesis that GAD plays an important role in the mechanism of the onset of puberty.

Animals↗

A role of gamma-amino butyric acid (GABA) and glutamate in control of puberty in female rhesus monkeys: effect of an antisense oligodeoxynucleotide for GAD67 messenger ribonucleic acid and MK801 on luteinizing hormone-releasing hormone release.

Previously we have shown that gamma-aminobutyric acid (GABA) is an inhibitory neurotransmitter restricting the pubertal increase in LHRH release in juvenile monkeys, and that interfering with GABA synthesis with an antisense oligodeoxynucleotide (AS) for glutamic acid decarboxylase (GAD67) mRNA results in an increase in LHRH release in prepubertal monkeys. GAD67 is a catalytic enzyme that synthesizes GABA from glutamate. To further clarify the role of GABA in puberty, we examined whether the inhibition of LHRH release by GABA continues after the onset of puberty and whether input from glutamatergic neurons plays any role in the onset of puberty when GABA inhibition declines, using a push-pull perfusion method. In Study I, the effects of the AS GAD67 mRNA on LHRH release in pubertal monkeys (34.3 +/- 1.5 months of age, n = 8) were examined, and the results were compared with those in prepubertal monkeys (18.5 +/- 0.4 months, n = 12). Direct infusion of AS GAD67 (1 microM) into the stalk-median eminence (S-ME) for 5 h stimulated LHRH release in both prepubertal and pubertal monkeys. However, the increase in LHRH release in pubertal monkeys was significantly (P < 0.01) smaller than that in prepubertal monkeys. Infusion of a scrambled oligo as a control was without effect in either group. In Study II, to examine the possibility that an increase in glutamate tone after the reduction of an inhibitory GABA tone contributes to the AS GAD67-induced LHRH increase, the effects of the NMDA receptor blocker MK801 (5 microM) on LHRH release were tested in monkeys treated with AS GAD67. MK801 infusion into the S-ME during the treatment of AS GAD67 (1 microM) suppressed the AS GAD67-induced LHRH release in both age groups. MK801 alone did not cause any significant effect in either group. The data are interpreted to mean that GABA continues to suppress LHRH release after the onset of puberty, although the degree of suppression is weakened considerably after the onset of puberty, and that the increased LHRH release after AS GAD67 treatment may be partly due to an increase in glutamate tone mediated by NMDA receptors, as well as due to the decrease in GABA release following the decrease in GAD synthesis. Taken together, the present results suggest that GAD may play an important role in the onset and progress of puberty in nonhuman primates.

Animals↗

Insulin-like growth factor I of peripheral origin acts centrally to accelerate the initiation of female puberty.

In several species, including humans, circulating insulin-like growth factor I (IGF-I) levels increase during the onset of puberty, suggesting that this peptide contributes to attaining sexual maturity. Because IGF-I elicits LHRH release from the median eminence (ME) of immature female rats in vitro, we hypothesized that it may represent one of the peripheral signals suspected to link somatic development to the LHRH-releasing system at puberty. We now present evidence in support of this concept. Quantitation of IGF-I messenger RNA (mRNA) levels by ribonuclease protection assay revealed that expression of the IGF-I gene did not change in the medial basal hypothalamus or preoptic area of female rats during peripubertal development. In contrast, the contents of both IGF-Ia and IGF-Ib mRNA, the two alternatively spliced forms of the IGF-I gene, increased significantly in the liver during the early proestrous phase of puberty. This change was followed by an elevation in serum IGF-I levels during the late proestrous phase of puberty along with a concomitant increase is serum gonadotropin levels. The proestrous change in serum IGF-I levels was accompanied by a selective increase in IGF-I receptor (IGF-IR) mRNA in the ME. Small doses of IGF-I (2-200 ng), administered intraventricularly, effectively induced LH release in both juvenile and peripubertal female rats, an increase prevented by prior immunoneutralization of LHRH actions. Importantly, intraventricular injections of IGF-I (20 ng), administered twice daily in the afternoon to immature animals, significantly advanced puberty. Thus, these results suggest that IGF-I of peripheral origin contributes to the initiation of female puberty by stimulating LHRH release from the hypothalamus, an effect that appears to be amplified by the increased synthesis of IGF-I receptors in the ME during first proestrus.

Animals↗

Effect of ethanol on the synthesis of insulin-like growth factor 1 (IGF-1) and the IGF-1 receptor in late prepubertal female rats: a correlation with serum IGF-1.

For several years, it has been well accepted that insulin-like growth factor 1 (IGF-1) plays a critical role in peripubertal growth. Recently, we have provided evidence to suggest that this peptide may also be involved in the sexual maturation process, via an action to stimulate hypothalamic luteinizing hormone releasing hormone release. Because ethanol (ETOH) delays puberty, an event that is associated with depressed growth rates and decreased growth hormone and luteinizing hormone (LH) secretion via actions at the hypothalamic level, we investigated whether this drug is capable of altering the expression of genes encoding IGF-1 in liver and brain, as well as the expression of the type 1 IGF receptor (IGF-1R) within the median eminence (ME). Also, we wanted to determine if any regional changes in the expression of these genes were associated with concomitant alterations in the serum levels of IGF-1 and LH. Rats were implanted with gastric cannulae on day 24 and began receiving specific control or ETOH diets on day 29. Rats were killed on day 34, determined to be in the late juvenile stage of development, and their tissues and blood were collected. Results indicate that the ETOH-fed rats showed a decrease (p < 0.01) in the expression of hepatic IGF-1 mRNA when compared with the controls, and this paralleled depressions in both serum IGF-1 (p < 0.01) and LH (p < 0.01). In contrast, no changes were detected in IGF-1 mRNA expression in the preoptic area and hypothalamus, as well as in IGF-1R mRNA expression within the ME. These results suggest that the well-known detrimental effects of ETOH on growth rates and the progression of the female pubertal process in the rat may be associated with the drug's ability to depress the hepatic synthesis of IGF-1 and the subsequent prepubertal circulating levels of the protein.

Alcoholism↗

N-methyl-D-aspartic acid receptor messenger ribonucleic acid levels and luteinizing hormone release in immature female rats: effects of stage of pubertal development and exposure to ethanol.

This research was designed to determine 1) whether changes occur in the levels of N-methyl-D-aspartic acid (NMDA) receptor (NMDA-R) messenger RNA (mRNA) in the reproductive hypothalamus of female rats as they approach puberty, 2) whether NMDA-R stimulation would promote differential LH responses during the specific stages of peripubertal development, and 3) whether ethanol (ETOH), which is known to affect the NMDA-R in other brain systems, can alter NMDA-R-activated LH secretion at puberty. In the first experiment, female rats were killed at 15, 20, 25, and 34-36 days of age to determine the levels of mRNA that code for the NMDA-R, specifically NMDA-R1, in the arcuate nucleus-median eminence (AN-ME) and preoptic area (POA) during pre- and peripubertal development by a ribonuclease protection assay. Results indicate that in juvenile animals, NMDA-R mRNA levels in the AN-ME increased at 25 days (P < 0.01). In the POA, the levels increased at 20 days (P < 0.05), but were unchanged at 25 days. During the peripubertal period, NMDA-R gene expression in the AN-ME did not change; however, gene expression in the POA increased (P < 0.05) during first proestrus, then declined during first estrus. In the second experiment, NMDA-R stimulation with N-methyl-D,L-aspartic acid (NMA; 2.5 mg/kg) produced differential stimulatory effects on LH release depending upon the stage of pubertal development. In this regard, significant post-NMA percent increases in LH released over pre-NMA (basal) levels occurred during anestrus (46%; P < 0.01) and first proestrus (95%; P < 0.01), with nonsignificant increases of 18% and 28% during first estrus and diestrus, respectively. Finally, a 3 g/kg dose of ETOH given intragastrically 90 min before the NMA challenge blocked (P < 0.05) NMA-induced LH release during first proestrus. In conclusion, these findings demonstrate regional differences in the timing of NMDA-R gene expression in the reproductive hypothalamus during pubertal development, show differential responses of LH to NMDA-R activation during the peripubertal period, and continue to demonstrate the vulnerability of the hypothalamic-pituitary axis to the detrimental effects of ETOH at this critical time of development.

Animals↗

Role of nitric oxide in the control of luteinizing hormone-releasing hormone release in vivo and in vitro.

Nitric oxide (NO) synthase, the enzyme which converts arginine into citrulline plus NO, a highly active free radical, has been found in many neurons in the brain, including neurons in the hypothalamus. Our previous experiments showed that norepinephrine-induced prostaglandin E2 release from hypothalamic explants incubated in vitro is mediated by NO. Since the release of luteinizing hormone-releasing hormone (LHRH) is also driven by norepinephrine and prostaglandin E2, we hypothesized that NO might also control pulsatile release of LHRH in vivo, resulting in turn in pulsatile release of luteinizing hormone (LH). To ascertain the role of NO in control of pulsatile LH release in vivo, an inhibitor of NO synthase, NG-monomethyl-L-arginine (NMMA), was microinjected into the third cerebral ventricle (1 mg/5 microliters) of conscious castrate male rats at time 0 and 60 min later; blood samples were taken every 10 min during this period. NMMA blocked pulsatile LH release within 20 min, and plasma LH concentration declined further without pulses after the injection at 60 min. Pulsatile release of LH was not altered in diluent-injected controls. NMMA did not alter pulsatile release of follicle-stimulating hormone, which suggests that its release does not require NO. Incubation of medial basal hypothalami with norepinephrine (10 microM) induced an increase in LHRH release that was inhibited by NMMA (300 microM). NMMA alone did not alter basal LHRH release, whereas it was augmented by sodium nitroprusside (100 microM), which releases NO spontaneously. This augmentation was prevented by hemoglobin (2 micrograms/ml), which binds the NO released by nitroprusside. Our previous experiments showed that norepinephrine-induced release of prostaglandin E2 is mediated by NO. Nitric oxidergic neurons were visualized in the median eminence adjacent to the LHRH terminals. The combined in vivo and in vitro results indicate that the pulsatile release of LHRH induced by norepinephrine is brought about by alpha 1-adrenergic activation of NO synthase. NO then induces prostaglandin E2 release that activates exocytosis of LHRH secretory granules into the portal vessels to induce pulsatile LH release.

Amino Acid Oxidoreductases↗

Ethanol alters N-methyl-DL-aspartic acid-induced secretion of luteinizing hormone releasing hormone and the onset of puberty in the female rat.

In the present study, we have evaluated the effects of ethanol (ETOH) on luteinizing hormone releasing hormone (LHRH) secretion induced by N-methyl-DL-aspartic acid (NMA) in vitro and the ability of NMA to induce precocious puberty in vivo. For the in vitro experiments, the basal and NMA-stimulated release of LHRH from arcuate nucleus-median eminence (AN-ME) fragments obtained from immature female rats was measured by RIA following static incubation in medium consisting of Krebs-Ringer bicarbonate glucose buffer. Control vials contained medium only and the test vials contained medium plus ETOH doses of 30, 50, and 70 mM. These data demonstrate that ETOH did not alter basal LHRH release, but dose-dependently blocked (p < 0.01) the NMA-induced release of the peptide during anestrus, as well as first proestrus and estrus. For the in vivo experiment, 26-day-old females began receiving saline or saline-ETOH (3 g/kg) solution by gastric gavage daily at 12.30 p.m. Each day at 2.00 and 4.00 p.m., each of the animals received subcutaneous injections of a 40-mg/kg solution of NMA in saline. Other control animals received saline gastrically, as well as subcutaneously. The timing of puberty was assessed in all animals by monitoring vaginal opening (VO) and first diestrus (D1). The mean (+/- SEM) age at VO for animals in the non-ETOH group, which received NMA, was 31.7 +/- 0.40 days. Vaginal smears revealed that D1 occurred at a mean (+/- SEM) age of 33.0 +/- 0.42 days.(ABSTRACT TRUNCATED AT 250 WORDS)

Anestrus↗

Reduced Leydig cell volume and function in adult rats exposed to 2,3,7,8-tetrachlorodibenzo-p-dioxin without a significant effect on spermatogenesis.

Exposure to 2,3,7,8-tetrachlorodibenzo-p-dioxin (TCDD) is known to alter testicular function. However, its effect on the efficiency of spermatogenesis or on Leydig cell volume has not been determined in adult rats. In two replicas, adult male rats received a single intraperitoneal injection of TCDD at a rate of 0, 12.5, 25.0, or 50.0 micrograms/kg body weight. Rats were sacrificed 4 weeks after treatment. The cytosolic Ah receptor in the testis was estimated at 10.3 +/- 1.2 fmol/mg protein in these adult rats. The presence of the Ah receptor at this concentration in the testis reveals that the testis is a possible target organ for TCDD-induced responses. Left testes were homogenized and testicular spermatids were counted by phase contrast cytometry to determine daily sperm production. Right testes were vascularly perfused with glutaraldehyde, embedded in Epon 812, sectioned at 0.5 micron, stained with toluidine blue and evaluated by stereology for germ cells or Leydig cells. Body weight was reduced (P < 0.01) in a dose-dependent fashion. Testicular weight and daily sperm production per testis were not significantly reduced by TCDD. Androgen receptor concentrations in the testis and prostate were not affected. Weights of two androgen-sensitive organs (seminal vesicles and epididymis) were reduced (P < 0.01) in a dose-dependent fashion and serum concentrations of testosterone were reduced in a dose-dependent fashion in Replica 2. Due to low numbers of animals in Replica 1, the reduced Leydig cell volume was not significant after TCDD treatment; however, in Replica 2 there was a dose-dependent reduction (P < 0.01) in volume per testis of Leydig cell cytoplasm, nuclei, or total Leydig cell volume. Production of testosterone was sufficient to maintain spermatogenesis quantitatively; however, TCDD caused a dose-dependent reduction in Leydig cell function and Leydig cell volume per testis. This study showed for the first time that TCDD-induced androgen deficiency of male rats may be explained by the loss of total volume of Leydig cell cytoplasm. This study also further illustrates the reserve capacity of Leydig cell function to maintain spermatogenesis when the volume of these cells is significantly reduced.

Animals↗