The long-term goal of this project is to determine the neurobiological mechanisms that underlie effects of estrogen on the adult hypothalamo-pituitary-adrenal (HPA) axis. HPA axis activation in mammals is a basic response to environmental perturbations that threaten homeostasis and such responses, although beneficial in the short-term, have deleterious consequences under chronic conditions. Prolonged elevations of adrenal glucocorticoids (GCs) are neuroendangering and alter behaviors. Moreover, a dysregulation of the HPA activity accompanies neuropsychiatric disorders. In rodents, females show a more robust HPA axis response to stress than do males, partly because of sex-differences in circulating estradiol (E2) levels. Thus, the overarching postulate of this application is that individual differences in adult stress-responses arise from differential E actions on the stress-circuitry. Our studies focus predominantly on estrogen receptor beta (ER?). Rodent studies show that the alpha form of ER (ER?) increases adrenal corticosterone (CORT) and pituitary adrenocorticotropic hormone (ACTH) response to stressors whereas activation of ER? inhibits HPA activity. Importantly, ER? is highly expressed in neurons of the PVN of both male and female mice, allows integration of gonadal hormone levels with stress-related inputs. Using novel transgenic mouse models, we will identify stress responsive ER?-ergic neural circuitry of the mouse hypothalamus, and determine if activation of PVN ER? reduces HPA drive through OTergic pathways.
Specific aim 1 will assess populations of ER? and ER? neurons that are incorporated into the stress circuitry of the mouse brain.
Aim 2 will test the hypothesis that activation of ER? in male and female PVN neurons inhibits HPA axis function through 1) synaptic connections between ER? and CRH neurons or 2) through reciprocal projections to the Bed n. of the Stria Terminalis (BST) or medial Amygdala (mAmg).
Aim 3 will elucidate molecular changes and sex differences that occur in PVN ER? neurons in response to stress or ER (? / ?) agonist treatment.
Aim 4 will directly test whether OT is requird for ER? regulation of PVN function. The results of these studies will provide novel insight into the role played by PVN ER? neurons in controlling hypophysiotrophic function with hopes of identifying novel targets for therapeutic approaches to treating stress and associated neurological deficits.

Public Health Relevance

Estrogen and testosterone can influence the activity of the hypothalamo-pituitary-adrenal axis thereby shaping the neurobiological response to stressful environmental situations. In this application, we explore the role of neurons in the paraventricular nucleus of the hypothalamus (PVN) that express estrogen receptor beta. In these studies we will test the hypothesis that estrogen receptor beta neurons in the PVN utilize an oxytocinergic pathway to inhibit the HPA axis response to stress.

Agency
National Institute of Health (NIH)
Institute
National Institute of Diabetes and Digestive and Kidney Diseases (NIDDK)
Type
Research Project (R01)
Project #
3R01DK105826-03S1
Application #
9232233
Study Section
Molecular and Cellular Endocrinology Study Section (MCE)
Program Officer
Malozowski, Saul N
Project Start
2015-04-05
Project End
2019-03-31
Budget Start
2016-04-01
Budget End
2017-03-31
Support Year
3
Fiscal Year
2016
Total Cost
Indirect Cost
Name
Colorado State University-Fort Collins
Department
Veterinary Sciences
Type
Schools of Veterinary Medicine
DUNS #
785979618
City
Fort Collins
State
CO
Country
United States
Zip Code
80523
Heck, A L; Crestani, C C; Fernández-Guasti, A et al. (2018) Neuropeptide and steroid hormone mediators of neuroendocrine regulation. J Neuroendocrinol 30:e12599
Frahm, Krystle A; Handa, Robert J; Tobet, Stuart A (2018) Embryonic Exposure to Dexamethasone Affects Nonneuronal Cells in the Adult Paraventricular Nucleus of the Hypothalamus. J Endocr Soc 2:140-153
Russell, Ashley L; Grimes, Jamie Moran; Larco, Darwin O et al. (2017) The interaction of dietary isoflavones and estradiol replacement on behavior and brain-derived neurotrophic factor in the ovariectomized rat. Neurosci Lett 640:53-59
Russell, Ashley L; Grimes, Jamie Moran; Cruthirds, Danette F et al. (2017) Dietary Isoflavone-Dependent and Estradiol Replacement Effects on Body Weight in the Ovariectomized (OVX) Rat. Horm Metab Res 49:457-465
Oyola, Mario G; Thompson, Maranda K; Handa, Aaron Z et al. (2017) Distribution and chemical composition of estrogen receptor ? neurons in the paraventricular nucleus of the female and male mouse hypothalamus. J Comp Neurol 525:3666-3682
Oyola, Mario G; Handa, Robert J (2017) Hypothalamic-pituitary-adrenal and hypothalamic-pituitary-gonadal axes: sex differences in regulation of stress responsivity. Stress 20:476-494
Borrow, A P; Handa, R J (2017) Estrogen Receptors Modulation of Anxiety-Like Behavior. Vitam Horm 103:27-52