Intrauterine fetal growth restriction in sheep leads to sexually dimorphic programming of Preadipocytes' differentiation potential.

IF 2.2 Q3 PHYSIOLOGY Physiological Reports Pub Date : 2024-12-01 DOI:10.14814/phy2.70143
Michell Goyal, Rosa I Luna Ramirez, Sean W Limesand, Ravi Goyal
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Abstract

Fetal growth restriction (FGR) is a risk factor for obesity in adult life. Importantly, growth-restricted females are more prone to obesity than males. The mechanisms involved in this sexually dimorphic programming are not known. Previously, we have demonstrated that ambient hyperthermia (40°C) led to placental insufficiency and significant FGR, and the perirenal adipose tissue undergoes sexually dimorphic gene expression. We demonstrated that males undergo significant changes in gene expression with growth restriction. This was not the case in females. We have also demonstrated that the isolated preadipocytes from male FGR (MFGR) have reduced differentiation potential compared to control males & females and female FGR (FFGR). Thus, we hypothesized that growth restriction differentially programs gene expression and genetic pathways in perirenal preadipocytes, which reduces their differentiation potential in male fetuses in a sexually dimorphic manner. We created FGR by exposing pregnant sheep to ambient hyperthermia. After isolating preadipocytes from perirenal adipose tissue, we differentiated them following published protocols. We examined the gene expression before and after differentiation from control male, control female, MFGR, and FFGR female. We also compared our data with other published studies in mouse and human preadipocytes. Our results demonstrate that a set of 21 genes altered with preadipocyte differentiation to mature adipocytes is common in adipose tissue from both sexes, humans, mice, and sheep, at different organismal ages (embryonic, fetal, and adult) and different sites (subcutaneous inguinal, pancreatic, perirenal). We also demonstrate that female FFGR fetuses demonstrate all these 21 genes altered similar to control males and females; however, MFGR fetuses have six genes (Dgat2, Fabp4, Lipe, Lrrfip1, Spred3, and Thrsp) that are not changed with preadipocyte differentiation to mature adipocyte. These genes may be responsible for reduced differentiation potential and obesity in FGR males compared to FGR females. Another important finding of the present study is that Lrrfip1, known to be associated with obesity, was upregulated with FGR and requires further investigation. Overall, our studies provide several target genes that may play a crucial role in reducing the risk of MFGR for obesity.

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绵羊宫内胎儿生长受限导致前脂肪细胞分化潜能的两性二态编程。
胎儿生长受限(FGR)是成人肥胖的危险因素之一。重要的是,生长受限的女性比男性更容易肥胖。这种两性二态编程的机制尚不清楚。先前,我们已经证明环境高温(40°C)导致胎盘功能不全和显著的FGR,肾周脂肪组织经历性别二态基因表达。我们证明,随着生长限制,雄性的基因表达会发生显著变化。而在女性身上却不是这样。我们还证明,与对照雄性、雌性和雌性FGR (FFGR)相比,从雄性FGR (MFGR)分离的前脂肪细胞分化潜力降低。因此,我们假设生长限制对肾周前脂肪细胞的基因表达和遗传途径进行了差异性编程,从而以两性二态的方式降低了它们在男性胎儿中的分化潜力。我们通过将怀孕的绵羊暴露在高温环境中来创造FGR。从肾周脂肪组织中分离出前脂肪细胞后,我们按照已发表的方案对它们进行分化。我们检测了对照雄性、对照雌性、MFGR和FFGR雌性分化前后的基因表达。我们还将我们的数据与其他已发表的关于小鼠和人前脂肪细胞的研究进行了比较。我们的研究结果表明,在不同机体年龄(胚胎、胎儿和成年)和不同部位(腹股沟皮下、胰腺、肾周)的两性、人类、小鼠和绵羊的脂肪组织中,随着前脂肪细胞向成熟脂肪细胞分化而发生的21组基因改变是常见的。研究还表明,雌性FFGR胎儿的这21个基因的改变与对照雄性和雌性相似;然而,MFGR胎儿有6个基因(Dgat2、Fabp4、Lipe、Lrrfip1、Spred3和Thrsp)不会随着前脂肪细胞向成熟脂肪细胞的分化而改变。与FGR女性相比,这些基因可能导致FGR男性分化潜力降低和肥胖。本研究的另一个重要发现是,已知与肥胖相关的Lrrfip1在FGR中上调,需要进一步研究。总的来说,我们的研究提供了几个可能在降低肥胖的MFGR风险中起关键作用的靶基因。
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来源期刊
Physiological Reports
Physiological Reports PHYSIOLOGY-
CiteScore
4.20
自引率
4.00%
发文量
374
审稿时长
9 weeks
期刊介绍: Physiological Reports is an online only, open access journal that will publish peer reviewed research across all areas of basic, translational, and clinical physiology and allied disciplines. Physiological Reports is a collaboration between The Physiological Society and the American Physiological Society, and is therefore in a unique position to serve the international physiology community through quick time to publication while upholding a quality standard of sound research that constitutes a useful contribution to the field.
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