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SF1 神经元的 BBSome 消融会导致肥胖而无合并症。

BBSome ablation in SF1 neurons causes obesity without comorbidities.

机构信息

Department of Neuroscience and Pharmacology, University of Iowa Carver College of Medicine, Iowa City, IA, USA.

Department of Neuroscience and Pharmacology, University of Iowa Carver College of Medicine, Iowa City, IA, USA; Veterans Affairs Health Care System, Iowa City, IA, USA.

出版信息

Mol Metab. 2021 Jun;48:101211. doi: 10.1016/j.molmet.2021.101211. Epub 2021 Mar 13.

Abstract

OBJECTIVES

The hypothalamic ventromedial nucleus (VMH) plays a major role in metabolic control, but the molecular mechanisms involved remain poorly defined. We analyzed the relevance of the BBSome, a protein complex composed of 8 Bardet-Biedl syndrome (BBS) proteins including BBS1, in VMH steroidogenic factor 1 (SF1) neurons for the control of energy homeostasis and related physiological processes.

METHODS

We generated mice bearing selective BBSome disruption, through Bbs1 gene deletion, in SF1 neurons (SF1/Bbs1). We analyzed the consequence on body weight, glucose homeostasis, and cardiovascular autonomic function of BBSome loss in SF1 neurons.

RESULTS

SF1/Bbs1 mice had increased body weight and adiposity under normal chow conditions. Food intake, energy absorption, and digestive efficiency were not altered by Bbs1 gene deletion in SF1 neurons. SF1/Bbs1 mice exhibited lower energy expenditure, particularly during the dark cycle. Consistent with this finding, SF1/Bbs1 mice displayed reduced sympathetic nerve traffic and expression of markers of thermogenesis in brown adipose tissue. SF1/Bbs1 mice also had lower sympathetic nerve activity to subcutaneous white adipose tissue that was associated with a protein expression profile that promotes lipid accumulation. Notably, despite obesity and hyperinsulinemia, SF1/Bbs1 mice did not exhibit significant changes in glucose metabolism, insulin sensitivity, blood pressure, and baroreflex sensitivity.

CONCLUSIONS

Our findings demonstrate that the SF1 neuron BBSome is necessary for the regulation of energy homeostasis through modulation of the activity of the sympathetic nervous system and that the SF1 neuron BBSome is required for the development of obesity-related comorbidities.

摘要

目的

下丘脑腹内侧核(VMH)在代谢控制中起着重要作用,但相关的分子机制仍未得到明确界定。我们分析了 BBSome 的相关性,BBSome 是一种由 8 种 Bardet-Biedl 综合征(BBS)蛋白组成的蛋白质复合物,包括 BBS1,在 VMH 类固醇生成因子 1(SF1)神经元中对能量平衡和相关生理过程的控制。

方法

我们通过 SF1 神经元中的 Bbs1 基因缺失生成了 SF1 神经元中选择性 BBSome 破坏的小鼠(SF1/Bbs1)。我们分析了 SF1 神经元中 BBSome 缺失对体重、葡萄糖稳态和心血管自主功能的影响。

结果

SF1/Bbs1 小鼠在正常饮食条件下体重和肥胖增加。在 SF1 神经元中 Bbs1 基因缺失并未改变食物摄入、能量吸收和消化效率。SF1/Bbs1 小鼠表现出较低的能量消耗,特别是在黑暗周期。与这一发现一致,SF1/Bbs1 小鼠表现出较低的交感神经活动和棕色脂肪组织产热标志物的表达。SF1/Bbs1 小鼠还表现出较低的皮下白色脂肪组织的交感神经活动,其与促进脂质积累的蛋白表达谱相关。值得注意的是,尽管肥胖和高胰岛素血症,SF1/Bbs1 小鼠在葡萄糖代谢、胰岛素敏感性、血压和压力反射敏感性方面没有明显变化。

结论

我们的研究结果表明,SF1 神经元 BBSome 通过调节交感神经系统的活性对能量平衡的调节是必要的,并且 SF1 神经元 BBSome 是肥胖相关合并症发展所必需的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6f03/8065214/78d7020082d3/ga1.jpg

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