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Non-ovarian Aromatization is Required to Activate Female Sexual Motivation in Testosterone-treated Ovariectomized Quail

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Journal Horm Behav
Date 2016 May 19
PMID 27189762
Citations 7
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Abstract

Although aromatase is expressed in both male and female brains, its functional significance in females remains poorly understood. In female quail, sexual receptivity is activated by estrogens. However it is not known whether sexual motivation is similarly estrogen-dependent and whether estrogens locally produced in the brain contribute to these behavioral responses. Four main experiments were designed to address these questions. In Experiment 1 chronic treatment of females with the anti-estrogen tamoxifen decreased their receptivity, confirming that this response is under the control of estrogens. In Experiment 2 chronic treatment with tamoxifen significantly decreased sexual motivation as treated females no longer approached a sexual partner. In Experiment 3 (a) ovariectomy (OVX) induced a significant decrease of time spent near the male and a significantly decreased receptivity compared to gonadally intact females, (b) treatment with testosterone (OVX+T) partially restored these responses and (c) this effect of T was prevented when estradiol synthesis was inhibited by the potent aromatase inhibitor Vorozole (OVX+T+VOR). Serum estradiol concentration was significantly higher in OVX+T than in OVX or OVX+T+VOR females. Together these data demonstrate that treatment of OVX females with T increases sexual motivation and that these effects are mediated at least in part by non-gonadal aromatization of the androgen. Finally, assays of aromatase activity on brain and peripheral tissues (Experiment 4) strongly suggest that brain aromatization contributes to behavioral effects observed here following T treatment but alternative sources of estrogens (e.g. liver) should also be considered.

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References
1.
Ball G, Balthazart J . Japanese quail as a model system for studying the neuroendocrine control of reproductive and social behaviors. ILAR J. 2010; 51(4):310-25. PMC: 3522869. DOI: 10.1093/ilar.51.4.310. View

2.
Newman A, Chin E, Schmidt K, Bond L, Wynne-Edwards K, Soma K . Analysis of steroids in songbird plasma and brain by coupling solid phase extraction to radioimmunoassay. Gen Comp Endocrinol. 2007; 155(3):503-10. DOI: 10.1016/j.ygcen.2007.08.007. View

3.
Ubuka T, Tsutsui K . Gonadotropin-inhibitory hormone inhibits aggressive behavior of male quail by increasing neuroestrogen synthesis in the brain beyond its optimum concentration. Gen Comp Endocrinol. 2014; 205:49-54. DOI: 10.1016/j.ygcen.2014.03.014. View

4.
Velazquez P, Juarez-Oropeza M, Pedernera E . Steroid metabolism in theca externa cells from preovulatory follicles of domestic hen (Gallus domesticus). Gen Comp Endocrinol. 1996; 101(2):173-9. DOI: 10.1006/gcen.1996.0019. View

5.
Mannisto P, Kaakkola S . Catechol-O-methyltransferase (COMT): biochemistry, molecular biology, pharmacology, and clinical efficacy of the new selective COMT inhibitors. Pharmacol Rev. 1999; 51(4):593-628. View