下丘脑室旁核中的 Neurexin-3 与食物摄入无关,可调节体重和葡萄糖稳态。

IF 3.3 3区 医学 Q2 NEUROSCIENCES
Mingdao Mu, Haoyu Sun, Shuyan Geng, Tianxiang Xu, Chuanyao Sun, Zixu Zhang, Sibie Meng, Moyi Li, An Liu, Zhiyuan Yang, Wei Xie
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引用次数: 0

摘要

Neurexin-3(Nrxn3)在遗传学上与肥胖有关,但人们对其潜在的神经机制仍然知之甚少。本研究旨在探讨 Nrxn3 在下丘脑室旁核(PVN)中调节能量平衡和葡萄糖稳态的作用。我们发现,下丘脑室旁核(PVN)中的Nrxn3表达在寒冷暴露和禁食等代谢应激反应中上调。利用 Cre-loxP 技术,我们选择性地消减了雄性小鼠 PVN 中 CaMKIIα 表达神经元中的 Nrxn3。这种遗传操作导致体重明显增加,原因是脂肪增加和葡萄糖耐量受损,但不影响食物摄入量。我们的研究结果表明,PVN CaMKIIα 表达神经元是 Nrxn3 通过调节脂肪生成和葡萄糖代谢(与食欲无关)来调节能量平衡的关键位点。这些结果揭示了一种新的神经机制,可能将 Nrxn3 功能障碍与肥胖症发病机制联系在一起,表明针对 PVN Nrxn3 依赖性神经通路的研究可能为肥胖症的预防和治疗提供新的治疗方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Neurexin-3 in the paraventricular nucleus of the hypothalamus regulates body weight and glucose homeostasis independently of food intake.

Neurexin-3 (Nrxn3) has been genetically associated with obesity, but the underlying neural mechanisms remain poorly understood. This study aimed to investigate the role of Nrxn3 in the paraventricular nucleus of the hypothalamus (PVN) in regulating energy balance and glucose homeostasis. We found that Nrxn3 expression in the PVN was upregulated in response to metabolic stressors, including cold exposure and fasting. Using Cre-loxP technology, we selectively ablated Nrxn3 in CaMKIIα-expressing neurons of the PVN in male mice. This genetic manipulation resulted in marked weight gain attributable to increased adiposity and impaired glucose tolerance, without affecting food intake. Our findings identify PVN CaMKIIα-expressing neurons as a critical locus where Nrxn3 modulates energy balance by regulating adipogenesis and glucose metabolism, independently of appetite. These results reveal a novel neural mechanism potentially linking Nrxn3 dysfunction to obesity pathogenesis, suggesting that targeting PVN Nrxn3-dependent neural pathways may inform new therapeutic approaches for obesity prevention and treatment.

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来源期刊
Molecular Brain
Molecular Brain NEUROSCIENCES-
CiteScore
7.30
自引率
0.00%
发文量
97
审稿时长
>12 weeks
期刊介绍: Molecular Brain is an open access, peer-reviewed journal that considers manuscripts on all aspects of studies on the nervous system at the molecular, cellular, and systems level providing a forum for scientists to communicate their findings. Molecular brain research is a rapidly expanding research field in which integrative approaches at the genetic, molecular, cellular and synaptic levels yield key information about the physiological and pathological brain. These studies involve the use of a wide range of modern techniques in molecular biology, genomics, proteomics, imaging and electrophysiology.
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