下丘脑内侧MC3R信号调节成年小鼠能量流变。

IF 4.7 2区 医学 Q1 NEUROSCIENCES
Journal of Physiology-London Pub Date : 2025-01-01 Epub Date: 2024-12-24 DOI:10.1113/JP286699
Ingrid Camila Possa-Paranhos, Jared Butts, Emma Pyszka, Christina Nelson, Samuel Congdon, Dajin Cho, Patrick Sweeney
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引用次数: 0

摘要

尽管哺乳动物对急性体重减轻和体重增加都有抵抗力,但对调节体重变化的双向防御的神经回路尚不完全了解。黑素皮质素-3受体(MC3R)的整体组成性缺失会损害对厌食症和厌氧刺激的行为反应,MC3R敲除小鼠在合成代谢挑战后体重增加,在厌食症挑战后体重减轻(即能量稳态受损)。然而,介导这种表型的大脑区域尚未得到很好的理解。在这里,我们使用MC3R捆绑小鼠和病毒注射cree -recombinase来选择性地删除成年小鼠下丘脑内侧(MH)的MC3R。在这些动物身上进行了行为分析,以测试MC3R在MH对缺氧和厌食挑战的急性反应中的作用。在MC3R- cre小鼠中使用互补化学发生方法来定位和表征介导MC3R在能量稳态中作用的特定下丘脑内侧脑区域。最后,我们使用RNAscope原位杂交技术绘制了能量流变挑战后MC3R、促阿皮质素和刺痛素相关肽mRNA表达的变化,并表征了MH背侧MC3R表达细胞的特征。我们的研究结果表明,MH中MC3R的缺失增加了高脂肪饮食喂养后的摄食和体重增加,并以性别二态的方式增强了半马鲁肽的厌食作用。此外,尽管弓形核在MC3R介导的能量稳态中发挥重要作用,但MH背侧的病毒缺失也会导致能量稳态的改变,这表明弓形核外的大脑区域也参与了MC3R在能量稳态中的作用。综上所述,这些结果表明,MC3R介导的能量流变效应是由于下丘脑内侧神经元MC3R信号的缺失造成的,并表明背侧- mh MC3R信号在能量流变中起重要作用。黑素皮质素-3受体(MC3R)信号调节成年小鼠的能量流变。下丘脑内侧调节成年小鼠能量流变。能量流变刺激可改变针刺相关肽、促阿皮素和MC3R的mRNA水平。下丘脑背内侧(DMH) MC3R神经元增加运动和能量消耗。DMH的MC3R细胞类型是两性二态的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Medial hypothalamic MC3R signalling regulates energy rheostasis in adult mice.

Although mammals resist both acute weight loss and weight gain, the neural circuitry mediating bi-directional defense against weight change is incompletely understood. Global constitutive deletion of the melanocortin-3-receptor (MC3R) impairs the behavioural response to both anorexic and orexigenic stimuli, with MC3R knockout mice demonstrating increased weight gain following anabolic challenges and increased weight loss following anorexic challenges (i.e. impaired energy rheostasis). However, the brain regions mediating this phenotype are not well understood. Here, we utilized MC3R floxed mice and viral injections of Cre-recombinase to selectively delete MC3R from the medial hypothalamus (MH) in adult mice. Behavioural assays were performed on these animals to test the role of MC3R in MH in the acute response to orexigenic and anorexic challenges. Complementary chemogenetic approaches were used in MC3R-Cre mice to localize and characterize the specific medial hypothalamic brain regions mediating the role of MC3R in energy homeostasis. Finally, we performed RNAscope in situ hybridization to map changes in the mRNA expression of MC3R, pro-opiomelanocortin and agouti-related peptide following energy rheostatic challenges, as well as to characterize the MC3R expressing cells in dorsal MH. Our results demonstrate that MC3R deletion in MH increases feeding and weight gain following high-fat diet feeding, and enhances the anorexic effects of semaglutide, in a sexually dimorphic manner. Furthermore, although the arcuate nucleus exerts an important role in MC3R-mediated effects on energy homeostasis, viral deletion in the dorsal MH also resulted in altered energy rheostasis, indicating that brain regions outside of the arcuate nucleus also contribute to the role of MC3R in energy rheostasis. Together, these results demonstrate that MC3R-mediated effects on energy rheostasis result from the loss of MC3R signalling in medial hypothalamic neurons and suggest an important role for dorsal-MH MC3R signalling in energy rheostasis. KEY POINTS: Melanocortin-3-receptor (MC3R) signalling regulates energy rheostasis in adult mice. Medial hypothalamus regulates energy rheostasis in adult mice. Energy rheostatic stimuli alter mRNA levels of agouti-related peptide, pro-opiomelanocortin and MC3R. Dorsal-medial hypothalamus (DMH) MC3R neurons increase locomotion and energy expenditure. MC3R cell types in DMH are sexually dimorphic.

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来源期刊
Journal of Physiology-London
Journal of Physiology-London 医学-神经科学
CiteScore
9.70
自引率
7.30%
发文量
817
审稿时长
2 months
期刊介绍: The Journal of Physiology publishes full-length original Research Papers and Techniques for Physiology, which are short papers aimed at disseminating new techniques for physiological research. Articles solicited by the Editorial Board include Perspectives, Symposium Reports and Topical Reviews, which highlight areas of special physiological interest. CrossTalk articles are short editorial-style invited articles framing a debate between experts in the field on controversial topics. Letters to the Editor and Journal Club articles are also published. All categories of papers are subjected to peer reivew. The Journal of Physiology welcomes submitted research papers in all areas of physiology. Authors should present original work that illustrates new physiological principles or mechanisms. Papers on work at the molecular level, at the level of the cell membrane, single cells, tissues or organs and on systems physiology are all acceptable. Theoretical papers and papers that use computational models to further our understanding of physiological processes will be considered if based on experimentally derived data and if the hypothesis advanced is directly amenable to experimental testing. While emphasis is on human and mammalian physiology, work on lower vertebrate or invertebrate preparations may be suitable if it furthers the understanding of the functioning of other organisms including mammals.
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