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Estradiol attenuates the forskolin-induced increase in hypothalamic tyrosine hydroxylase activity
1Department of Physiology, Southern Illinois University School of Medicine, Carbondale, IL 62901-6512 USA. larbogast@som.siu.edu
Abstract:
The purpose of this study was to evaluate interactions between estradiol and the 3',5' cyclic adenosine monophosphate (cAMP) signaling pathway to regulate tyrosine hydroxylase (TH) activity in hypothalamic dopaminergic neurons. The first experiment examined the ability of forskolin to activate TH in the tuberoinfundibular dopaminergic neurons of adult ovariectomized rats with or without estradiol treatment. Estradiol treatment reduced both basal and forskolin-stimulated TH activity in the median eminence. The second group of experiments examined the effect of estradiol on the forskolin-induced activation of TH in fetal hypothalamic cells cultures. Estradiol decreased basal TH activity in the hypothalamic cell cultures to 80% of control levels. Forskolin treatment for 1 h increased TH activity in a concentration-dependent manner in control and estradiol-treated cells, but estradiol attenuated the stimulatory response to 0.01-10 microM forskolin. The suppressive effect of estradiol on cAMP-dependent activation of TH was evident with 1-12 h of forskolin treatment. The responses to other activators of the cAMP- protein kinase A pathway, including dibutyryl cAMP and 8-bromo-cAMP, and to a depolarizing stimulus were blunted in estradiol-treated cultures. Forskolin treatment for 1 h increased radiolabeled phosphate incorporation into TH protein in control but not estradiol-treated cells, suggesting that estradiol interferes with the ability of the cAMP pathway to phosphorylate TH. Forskolin caused a time-dependent increase in TH mRNA signal levels in control cultures. The magnitude of the forskolin-induced increase in TH mRNA levels was less in the estradiol-treated cells after 6 h of forskolin treatment, indicating that estradiol hinders cAMP-regulated TH gene expression. These data indicate that estradiol attenuates the ability of hypothalamic dopaminergic neurons to respond to cAMP-dependent stimulation by interfering with phosphorylation mechanisms in the short term and control of TH mRNA levels in the long term.
Insights
Estradiol reduces the responsiveness of hypothalamic dopaminergic neurons to cyclic adenosine monophosphate (cAMP) signaling. This hormone interferes with tyrosine hydroxylase (TH) phosphorylation and gene expression, impacting neuronal activity.
Area of Science:
- Neuroendocrinology
- Molecular Neurobiology
- Hormone Signaling
Background:
- Hypothalamic dopaminergic neurons regulate crucial physiological functions.
- Tyrosine hydroxylase (TH) is a key enzyme in dopamine synthesis, regulated by signaling pathways.
- The cyclic adenosine monophosphate (cAMP) pathway plays a significant role in neuronal activation.
Purpose of the Study:
- To investigate the interaction between estradiol and the cAMP signaling pathway.
- To determine how estradiol affects tyrosine hydroxylase (TH) activity and expression in hypothalamic dopaminergic neurons.
- To elucidate the mechanisms by which estradiol modulates cAMP-dependent neuronal responses.
Main Methods:
- Experiments in ovariectomized rats and primary fetal hypothalamic cell cultures.
- Administration of forskolin (cAMP activator) and estradiol.
- Measurement of TH activity, protein phosphorylation, and TH mRNA levels.
- Utilized various cAMP analogs and depolarizing stimuli.
Main Results:
- Estradiol treatment reduced basal and forskolin-stimulated TH activity in vivo and in vitro.
- Estradiol attenuated the stimulatory effects of forskolin and other cAMP pathway activators on TH activity.
- Estradiol interfered with the phosphorylation of TH and blunted the forskolin-induced increase in TH mRNA levels.
Conclusions:
- Estradiol attenuates the response of hypothalamic dopaminergic neurons to cAMP-dependent stimulation.
- Estradiol acts by inhibiting TH phosphorylation in the short term.
- Estradiol also hinders cAMP-regulated TH gene expression in the long term.