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AgRP 神经元中的 CPT1A 是性别依赖性摄食和口渴调节所必需的。

CPT1A in AgRP neurons is required for sex-dependent regulation of feeding and thirst.

机构信息

Department of Biochemistry and Physiology, School of Pharmacy and Food Sciences, Universitat de Barcelona, Av. Joan XXIII, 27-31, 08028, Barcelona, Spain.

Institut de Biomedicina de la Universitat de Barcelona (IBUB), Universitat de Barcelona, Barcelona, Spain.

出版信息

Biol Sex Differ. 2023 Mar 25;14(1):14. doi: 10.1186/s13293-023-00498-8.

Abstract

BACKGROUND

Fatty acid metabolism in the hypothalamus has an important role in food intake, but its specific role in AgRP neurons is poorly understood. Here, we examined whether carnitinea palmitoyltransferase 1A (CPT1A), a key enzyme in mitochondrial fatty acid oxidation, affects energy balance.

METHODS

To obtain Cpt1aKO mice and their control littermates, Cpt1a mice were crossed with tamoxifen-inducible AgRP mice. Food intake and body weight were analyzed weekly in both males and females. At 12 weeks of age, metabolic flexibility was determined by ghrelin-induced food intake and fasting-refeeding satiety tests. Energy expenditure was analyzed by calorimetric system and thermogenic activity of brown adipose tissue. To study fluid balance the analysis of urine and water intake volumes; osmolality of urine and plasma; as well as serum levels of angiotensin and components of RAAS (renin-angiotensin-aldosterone system) were measured. At the central level, changes in AgRP neurons were determined by: (1) analyzing specific AgRP gene expression in RiboTag-Cpt1aKO mice obtained by crossing Cpt1aKO mice with RiboTag mice; (2) measuring presynaptic terminal formation in the AgRP neurons with the injection of the AAV1-EF1a-DIO-synaptophysin-GFP in the arcuate nucleus of the hypothalamus; (3) analyzing AgRP neuronal viability and spine formations by the injection AAV9-EF1a-DIO-mCherry in the arcuate nucleus of the hypothalamus; (4) analyzing in situ the specific AgRP mitochondria in the ZsGreen-Cpt1aKO obtained by breeding ZsGreen mice with Cpt1aKO mice. Two-way ANOVA analyses were performed to determine the contributions of the effect of lack of CPT1A in AgRP neurons in the sex.

RESULTS

Changes in food intake were just seen in male Cpt1aKO mice while only female Cpt1aKO mice increased energy expenditure. The lack of Cpt1a in the AgRP neurons enhanced brown adipose tissue activity, mainly in females, and induced a substantial reduction in fat deposits and body weight. Strikingly, both male and female Cpt1aKO mice showed polydipsia and polyuria, with more reduced serum vasopressin levels in females and without osmolality alterations, indicating a direct involvement of Cpt1a in AgRP neurons in fluid balance. AgRP neurons from Cpt1aKO mice showed a sex-dependent gene expression pattern, reduced mitochondria and decreased presynaptic innervation to the paraventricular nucleus, without neuronal viability alterations.

CONCLUSIONS

Our results highlight that fatty acid metabolism and CPT1A in AgRP neurons show marked sex differences and play a relevant role in the neuronal processes necessary for the maintenance of whole-body fluid and energy balance.

摘要

背景

下丘脑的脂肪酸代谢在摄食中起重要作用,但在 AgRP 神经元中的具体作用仍不清楚。在这里,我们研究了线粒体脂肪酸氧化的关键酶肉毒碱棕榈酰基转移酶 1A(CPT1A)是否会影响能量平衡。

方法

为了获得 Cpt1aKO 小鼠及其对照同窝仔鼠,我们将 Cpt1a 小鼠与他莫昔芬诱导型 AgRP 小鼠杂交。每周分析雄性和雌性小鼠的食物摄入量和体重。在 12 周龄时,通过 ghrelin 诱导的摄食和禁食-再喂食饱食试验来测定代谢灵活性。通过量热系统和棕色脂肪组织的产热活性来分析能量消耗。为了研究液体平衡,分析尿液和水摄入量;尿液和血浆渗透压;以及血清血管紧张素和 RAAS(肾素-血管紧张素-醛固酮系统)成分的水平。在中枢水平,通过以下方法确定 AgRP 神经元的变化:(1)通过将 Cpt1aKO 小鼠与 RiboTag 小鼠杂交获得的 RiboTag-Cpt1aKO 小鼠分析特定的 AgRP 基因表达;(2)通过在弓状核内注射 AAV1-EF1a-DIO-synaptophysin-GFP 来测量 AgRP 神经元的突触前末端形成;(3)通过在弓状核内注射 AAV9-EF1a-DIO-mCherry 来分析 AgRP 神经元的活力和棘突形成;(4)通过在 Cpt1aKO 小鼠与 ZsGreen 小鼠杂交获得的 ZsGreen-Cpt1aKO 中分析特定的 AgRP 线粒体。采用双因素方差分析来确定缺乏 AgRP 神经元中 CPT1A 的作用在性别中的贡献。

结果

只有雄性 Cpt1aKO 小鼠的食物摄入量发生变化,而只有雌性 Cpt1aKO 小鼠的能量消耗增加。AgRP 神经元中 Cpt1a 的缺乏增强了棕色脂肪组织的活性,主要在雌性中,并导致脂肪沉积和体重的显著减少。值得注意的是,雄性和雌性 Cpt1aKO 小鼠均出现多饮和多尿,雌性的血清血管加压素水平显著降低,而渗透压没有改变,表明 Cpt1a 直接参与了 AgRP 神经元的液体平衡。来自 Cpt1aKO 小鼠的 AgRP 神经元表现出性别依赖性的基因表达模式,减少了线粒体并减少了向室旁核的突触前神经支配,而神经元活力没有改变。

结论

我们的结果强调了脂肪酸代谢和 AgRP 神经元中的 CPT1A 表现出明显的性别差异,并在维持全身液体和能量平衡所需的神经元过程中发挥重要作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4fdc/10040140/ade5b8cc611a/13293_2023_498_Fig1_HTML.jpg

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