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Kota, M.

Publications and source records attributed to Kota, M..

2 recordsLinked to original sources

Medial preoptic area FoxO1 controls metabolic adaptation in a sexually dimorphic manner

The medial preoptic area (MPOA) of the hypothalamus is essential for metabolic adaptation to environmental challenges, though the molecular mechanisms underlying this process remain poorly understood. Here, we investigate the role of Forkhead transcription factor O1 (FoxO1), a key mediator of stress adaptation, in MPOA-dependent metabolic responses to temperature and nutritional changes. Our findings reveal sex-specific responses to both nutritional and temperature challenges. In female mice, but not males, a high-fat diet (HFD) challenge decreased FoxO1 expression in the MPOA. Specific deletion of FoxO1 in MPOA neurons (FoxO1-KOMPOA) had no effect on body weight under normal chow-fed conditions but protected females from HFD-induced obesity (DIO). These protected females exhibited increased lean mass, decreased fat mass, enhanced thermogenesis, increased energy expenditure, and reduced food intake under HFD conditions. They also showed enhanced cold-induced heat production at 6{degrees}C, though this effect vanished at thermoneutrality (30{degrees}C). The protection against DIO was abolished by ovariectomy (OVX) and was not restored by 17{beta}-estradiol supplementation, suggesting an estrogen-independent mechanism. Conversely, constitutive activation of FoxO1 in MPOA neurons (FoxO1-CAMPOA) increased DIO susceptibility in both sexes. Together, these findings demonstrate that FoxO1MPOA plays a crucial role in coordinating metabolic adaptation to nutritional and temperature challenges specifically in female mice.

physiology↗

Estrogen signaling in the dorsal raphe regulates binge-like drinking in mice

The ovarian hormone estrogens promote binge alcohol drinking and contribute to sex differences in alcohol use disorder. However, the mechanisms for estrogen-induced binge drinking are largely unknown. This study aims to test if estrogens act on 5-hydroxytryptamine neurons in the dorsal raphe nucleus (5-HTDRN) to promote binge drinking. We used the drinking in the dark (DID) behavioral test in mice to mimic binge drinking in humans. We found that female mice drank more alcohol than male mice in chronic DID tests. This sex difference was associated with distinct alterations in mRNA expression of estrogen receptor (ER) and 5-HT-related genes in the DRN, suggesting a potential role of estrogen/ERs/5-HT signaling in binge alcohol drinking. In supporting this view, 5-HTDRN neurons from naive male mice had lower baseline neuronal firing activity but higher sensitivity to alcohol-induced excitation compared to 5-HTDRN neurons from naive female mice. Notably, this higher sensitivity was blunted by 17{beta}-estradiol treatment in males, indicating an estrogen-dependent mechanism. We further showed that both ER and ER{beta} are expressed in 5-HTDRN neurons, whereas ER agonist propyl pyrazole triol (PPT) depolarizes 5-HTDRN neurons and ER{beta} agonist diarylpropionitrile (DPN) hyperpolarizes 5-HTDRN neurons. Notably, both PPT and DPN treatments blocked the stimulatory effects of alcohol on 5-HTDRN neurons in males, despite the fact that they have antagonistic effects on the activity dynamics of 5-HTDRN neurons. These results suggest that ERs inhibitory effects on ethanol-induced burst firing of 5-HTDRN neurons may contribute to higher levels of binge drinking in females. Consistently, chemogenetic activation of ER- or ER{beta}-expressing neurons in the DRN reduced binge alcohol drinking. These results support a model in which estrogens act on ER/{beta} to prevent alcohol-induced activation of 5-HTDRN neurons, which in return leads to higher binge alcohol drinking.

neuroscience↗