同源结构域转录因子 Six3 调节下丘脑 Pomc 的表达,缺失 POMC 神经元会诱导雄性小鼠食欲亢进和轻度肥胖

IF 7 2区 医学 Q1 ENDOCRINOLOGY & METABOLISM Molecular Metabolism Pub Date : 2024-07-16 DOI:10.1016/j.molmet.2024.101993
Hui Yu , Angelika Chiang , Marcelo Rubinstein , Malcolm J. Low
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引用次数: 0

摘要

目的前黑皮质素(POMC)神经元释放强效厌食神经肽,通过黑皮质素受体抑制食物摄入并增强能量消耗。尽管中枢黑皮质素在生理调节中的重要性已得到公认,但确定黑皮质素神经元功能特性和维持下丘脑 Pomc 表达的潜在遗传机制仍有待完全确定。在本研究中,我们研究了在胚胎和成年小鼠 POMC 神经元中显著表达的转录调节因子 Six3 在调控下丘脑 Pomc 表达及其下游生理后果中的功能意义。接下来,我们评估了选择性缺乏Pomc表达神经元中Six3的突变小鼠的POMC免疫反应,并量化了在胚胎E9.5天激活的他莫昔芬诱导的Six3基因敲除小鼠模型中的Pomc mRNA水平。我们还测定了特异性从 POMC 神经元中缺失 Six3 的成年雄性和雌性小鼠的葡萄糖和胰岛素敏感性、每日食物摄入量、身体成分和体重。最后,我们评估了从成年小鼠的 POMC 神经元中消减 Six3 的生理后果。缺乏Six3的小鼠胚胎在发育中的下丘脑中Pomc表达减少。从 POMC 神经元中特异性靶向删除 Six3 会导致雄性小鼠下丘脑 Pomc 表达减少、每日食物摄入量增加、葡萄糖敏感性增强以及轻度肥胖,但雌性小鼠不会。最后,有条件地从成年小鼠的 POMC 神经元中移除 Six3 会导致下丘脑 POMC 免疫活性降低,但对体重或食物摄入量没有显著影响。此外,我们的研究还证明了 Six3 在 POMC 神经元中表达的功能意义具有性别双态性和年龄依赖性。
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The homeodomain transcription factor Six3 regulates hypothalamic Pomc expression and its absence from POMC neurons induces hyperphagia and mild obesity in male mice

Objective

Proopiomelanocortin (POMC) neurons release potent anorexigenic neuropeptides, which suppress food intake and enhance energy expenditure via melanocortin receptors. Although the importance of central melanocortin in physiological regulation is well established, the underlying genetic mechanisms that define the functional identity of melanocortin neurons and maintain hypothalamic Pomc expression remain to be fully determined. In this study, we investigate the functional significance of Six3, a transcriptional regulator notably expressed in embryonic and adult mouse POMC neurons, in the regulation of hypothalamic Pomc expression and downstream physiological consequences.

Methods

We first evaluated the expression of Six3 in the developing and adult hypothalamus by double fluorescence in situ hybridization. Next, we assessed POMC immunoreactivity in mutant mice selectively lacking Six3 from Pomc-expressing neurons and quantified Pomc mRNA levels in a tamoxifen-inducible Six3 knockout mouse model activated at embryonic E9.5 days. We also determined glucose and insulin sensitivity, daily food intake, body composition and body weight in adult male and female mice lacking Six3 specifically from POMC neurons. Lastly, we assessed the physiological consequences of ablating Six3 from POMC neurons in adult mice.

Results

Six3 and Pomc were co-expressed in mouse hypothalamic neurons during development and adulthood. Mouse embryos deficient in Six3 showed reduced Pomc expression in the developing hypothalamus. Targeted deletion of Six3 specifically from POMC neurons resulted in decreased hypothalamic Pomc expression, increased daily food intake, enhanced glucose sensitivity and mild obesity in male but not in female mice. Finally, conditional removal of Six3 from POMC neurons in adult mice led to a reduction in hypothalamic POMC immunoreactivity with no significant effects in body weight or food intake.

Conclusions

Altogether, our results demonstrate that Six3 plays an essential role in the early establishment of POMC neuron identity and the maintenance of physiological levels of hypothalamic Pomc expression. In addition, our study demonstrates that the functional significance of Six3 expression in POMC neurons is sexually dimorphic and age-dependent.

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来源期刊
Molecular Metabolism
Molecular Metabolism ENDOCRINOLOGY & METABOLISM-
CiteScore
14.50
自引率
2.50%
发文量
219
审稿时长
43 days
期刊介绍: Molecular Metabolism is a leading journal dedicated to sharing groundbreaking discoveries in the field of energy homeostasis and the underlying factors of metabolic disorders. These disorders include obesity, diabetes, cardiovascular disease, and cancer. Our journal focuses on publishing research driven by hypotheses and conducted to the highest standards, aiming to provide a mechanistic understanding of energy homeostasis-related behavior, physiology, and dysfunction. We promote interdisciplinary science, covering a broad range of approaches from molecules to humans throughout the lifespan. Our goal is to contribute to transformative research in metabolism, which has the potential to revolutionize the field. By enabling progress in the prognosis, prevention, and ultimately the cure of metabolic disorders and their long-term complications, our journal seeks to better the future of health and well-being.
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