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激活脂肪干细胞中的核受体亚家族2组F成员2可挽救因早年过量摄入ω-6脂肪酸而受损的米色脂肪细胞代谢。

Activating nuclear receptor subfamily 2 group F member 2 in adipocyte stem cells rescues beige adipocyte metabolism impaired by excess early-life omega-6 fatty acids.

作者信息

Das Snehasis, Varshney Rohan R, Farriester Jacob W, Kyere-Davies Gertrude, Martinez Alexandrea E, Hill Kaitlyn B, Kinter Michael, Mullen Gregory P, Nagareddy Prabhakara R, Rudolph Michael C

机构信息

Department of Biochemistry and Physiology, Harold Hamm Diabetes Center, The University of Oklahoma Health Science Center, Oklahoma City, OK 73104, USA.

Aging and Metabolism Research Program, Oklahoma Medical Research Foundation, Oklahoma City, OK, USA.

出版信息

Clin Nutr. 2025 Jun 10;51:63-80. doi: 10.1016/j.clnu.2025.06.003.

Abstract

BACKGROUND AND AIMS

Developmental exposure to an elevated ratio of omega-6 (n6) to omega-3 (n3) fatty acids (FA) is linked to increased infant body fat and risk of future childhood obesity. We demonstrated in mice that the high n6/n3 developmental exposure reduced nuclear receptor subfamily 2 group F member 2 (NR2F2) in Adipocyte Stem Cells (ASCs), coincident with an altered ASC mitochondrial expression profile and increased white adipose accumulation in pups. This suggested that NR2F2-low ASCs might adopt a nutrient-storage phenotype. Here, we tested the hypothesis that NR2F2 is required in ASCs to undergo beige adipogenesis and metabolism needed during postnatal life for energy and thermogenesis.

METHODS

C57BL/6J dams were randomized to either n6-rich or balanced n6/n3 control diets at the time of mating and underwent normal gestation and parturition. On postnatal day 12 (PND12), whole-body offspring metabolism was quantified by indirect calorimetry in conjunction with C-palmitate and C-glucose tracing. Inguinal fat pad ASCs were isolated by flow cytometry to assess adipocyte differentiation potential, global gene expression and proteomics, and mitochondrial oxidation. NR2F2 was transiently re-activated in vitro in ASCs with its ligand, 1-deoxysphingosine (1-DSO), and NR2F2 was ablated in ASCs ex vivo using homozygous floxed Nr2f2 pups to determine loss of function, ensure specificity of 1-DSO treatment during gain of function.

RESULTS

Excess developmental n6-FA exposure reduced whole-body C-palmitate and C-glucose oxidation, diminished PND12 pup energy expenditure, and increased triacylglyceride accumulation in inguinal adipose. In ASCs isolated from n6-FA exposed pups, NR2F2 was decreased. These NR2F2-low ASCs formed downstream adipocytes with decreased beige metabolic regulators peroxisome proliferator-activated receptor gamma coactivator 1-alpha (PGC1α), peroxisome proliferator-activated receptor gamma (PPARγ), PR domain containing 16 (PRDM16), and uncoupling protein 1 (UCP1), had lower glycolysis and lipid metabolism enzymes, oxidized lipid and glucose at lower rates, and had increased lipogenic enzymes. Ex vivo deletion of Nr2f2 from ASCs recapitulated the metabolic deficits observed in the adipocytes derived from NR2F2-low ASCs isolated from n6-FA exposed pups. NR2F2 loss disrupted beige regulator induction, reduced adipocyte FAO, and promoted lipogenesis pathways, mirroring the n6-FA phenotype. Transient NR2F2 activation of ASCs from n6-FA pups using 1-DSO restored induction of beige regulators, increased mitochondrial oxidative phosphorylation enzymes, reduced lipogenic/storage pathways, ultimately enhancing nutrient oxidation.

CONCLUSIONS

These findings demonstrate that excess n6-FA developmental exposure disrupts NR2F2-mediated ASC fate determination, leading to formation of nutrient-storing, lipogenic adipocytes. This work highlights NR2F2 as an important upstream or parallel regulator necessary for beige adipogenesis and underscores its activation as a potential therapeutic approach to mitigate early-life obesity risk.

GEO RECORD

GSE284936; Token = orkvgqayblshjsds.

摘要

背景与目的

发育过程中暴露于升高的ω-6(n6)与ω-3(n3)脂肪酸(FA)比例与婴儿体脂增加及未来儿童肥胖风险相关。我们在小鼠中证明,高n6/n3发育暴露会降低脂肪干细胞(ASC)中的核受体亚家族2组F成员2(NR2F2),同时伴随着ASC线粒体表达谱的改变以及幼崽白色脂肪积累增加。这表明NR2F2低的ASC可能会采用营养储存表型。在此,我们检验了以下假设:ASC中需要NR2F2来进行米色脂肪生成以及出生后生活中能量和产热所需的代谢。

方法

C57BL/6J母鼠在交配时随机分为富含n6或n6/n3平衡对照饮食组,并经历正常妊娠和分娩。在出生后第12天(PND12),通过间接量热法结合C-棕榈酸酯和C-葡萄糖示踪对全身后代代谢进行定量。通过流式细胞术分离腹股沟脂肪垫ASC,以评估脂肪细胞分化潜能、整体基因表达和蛋白质组学以及线粒体氧化。在体外使用其配体1-脱氧鞘氨醇(1-DSO)在ASC中瞬时重新激活NR2F2,并使用纯合性敲除Nr2f2的幼崽在体外对ASC中的NR2F2进行敲除,以确定功能丧失,确保在功能获得期间1-DSO处理的特异性。

结果

发育过程中过量的n6-FA暴露会降低全身C-棕榈酸酯和C-葡萄糖氧化,减少PND12幼崽的能量消耗,并增加腹股沟脂肪中的甘油三酯积累。在从暴露于n6-FA的幼崽中分离出的ASC中,NR2F2减少。这些NR2F2低的ASC形成的下游脂肪细胞中,米色代谢调节因子过氧化物酶体增殖物激活受体γ共激活因子1-α(PGC1α)、过氧化物酶体增殖物激活受体γ(PPARγ)、含PR结构域16(PRDM16)和解偶联蛋白1(UCP1)减少,糖酵解和脂质代谢酶含量较低,脂质和葡萄糖氧化速率较低,且脂肪生成酶增加。从ASC中体外删除Nr2f2重现了在从暴露于n6-FA的幼崽中分离出的NR2F2低的ASC衍生的脂肪细胞中观察到的代谢缺陷。NR2F2缺失破坏了米色调节因子的诱导,降低了脂肪细胞脂肪酸氧化(FAO),并促进了脂肪生成途径,与n6-FA表型相似。使用1-DSO对来自n6-FA幼崽的ASC进行NR2F2瞬时激活恢复了米色调节因子的诱导,增加了线粒体氧化磷酸化酶,减少了脂肪生成/储存途径,最终增强了营养物质氧化。

结论

这些发现表明,发育过程中过量的n6-FA暴露会破坏NR2F2介导的ASC命运决定,导致形成营养储存型、脂肪生成型脂肪细胞。这项工作突出了NR2F2作为米色脂肪生成所需的重要上游或平行调节因子,并强调其激活作为减轻早期肥胖风险潜在治疗方法的重要性。

基因表达数据库记录

GSE284936;编号 = orkvgqayblshjsds 。

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