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本文引用的文献

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Metabolomics and Metabolic Diseases: Where Do We Stand?代谢组学与代谢性疾病:我们目前的状况如何?
Cell Metab. 2017 Jan 10;25(1):43-56. doi: 10.1016/j.cmet.2016.09.018. Epub 2016 Oct 27.
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Maternal obesity reduces oxidative capacity in fetal skeletal muscle of Japanese macaques.母体肥胖降低了食蟹猴胎儿骨骼肌的氧化能力。
JCI Insight. 2016 Oct 6;1(16):e86612. doi: 10.1172/jci.insight.86612.
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Defects in muscle branched-chain amino acid oxidation contribute to impaired lipid metabolism.肌肉支链氨基酸氧化缺陷会导致脂质代谢受损。
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Proliferation, survival and metabolism: the role of PI3K/AKT/mTOR signalling in pluripotency and cell fate determination.增殖、存活与代谢:PI3K/AKT/mTOR信号通路在多能性及细胞命运决定中的作用
Development. 2016 Sep 1;143(17):3050-60. doi: 10.1242/dev.137075.
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Maternal Metabolic Syndrome Programs Mitochondrial Dysfunction via Germline Changes across Three Generations.母体代谢综合征通过三代生殖系变化导致线粒体功能障碍。
Cell Rep. 2016 Jun 28;16(1):1-8. doi: 10.1016/j.celrep.2016.05.065. Epub 2016 Jun 16.
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Maternal diet quality in pregnancy and neonatal adiposity: the Healthy Start Study.孕期母亲饮食质量与新生儿肥胖:健康开端研究
Int J Obes (Lond). 2016 Jul;40(7):1056-62. doi: 10.1038/ijo.2016.79. Epub 2016 May 2.
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Maternal high-fat diet impairs cardiac function in offspring of diabetic pregnancy through metabolic stress and mitochondrial dysfunction.孕期糖尿病母亲的高脂饮食通过代谢应激和线粒体功能障碍损害子代心脏功能。
Am J Physiol Heart Circ Physiol. 2016 Mar 15;310(6):H681-92. doi: 10.1152/ajpheart.00795.2015. Epub 2016 Jan 22.
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Dynamic Control of Enhancer Repertoires Drives Lineage and Stage-Specific Transcription during Hematopoiesis.造血过程中增强子文库的动态控制驱动谱系和阶段特异性转录
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9
Mesenchymal Stem Cells From Infants Born to Obese Mothers Exhibit Greater Potential for Adipogenesis: The Healthy Start BabyBUMP Project.肥胖母亲所生婴儿的间充质干细胞具有更大的脂肪生成潜力:健康起步婴儿隆起项目。
Diabetes. 2016 Mar;65(3):647-59. doi: 10.2337/db15-0849. Epub 2015 Dec 2.
10
Obesity rates in two generations of Swedish women entering pregnancy, and associated obesity risk among adult daughters.两代瑞典孕妇的肥胖率及成年女儿的相关肥胖风险。
Sci Rep. 2015 Nov 13;5:16692. doi: 10.1038/srep16692.

母体肥胖和新生儿脂肪过多与婴儿间充质干细胞代谢改变有关。

Maternal obesity and increased neonatal adiposity correspond with altered infant mesenchymal stem cell metabolism.

机构信息

Department of Pediatrics, University of Colorado, Aurora, Colorado, USA.

Department of Epidemiology, Colorado School of Public Health, Aurora, Colorado, USA.

出版信息

JCI Insight. 2017 Nov 2;2(21):94200. doi: 10.1172/jci.insight.94200.

DOI:10.1172/jci.insight.94200
PMID:29093265
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5752288/
Abstract

Maternal obesity is a global health problem that increases offspring obesity risk. The metabolic pathways underlying early developmental programming in human infants at risk for obesity remain poorly understood, largely due to barriers in fetal/infant tissue sampling. Utilizing umbilical cord-derived mesenchymal stem cells (uMSC) from offspring of normal weight and obese mothers, we tested whether energy metabolism and gene expression differ in differentiating uMSC myocytes and adipocytes, in relation to maternal obesity exposures and/or neonatal adiposity. Biomarkers of incomplete β-oxidation were uniquely positively correlated with infant adiposity and maternal lipid levels in uMSC myocytes from offspring of obese mothers only. Metabolic and biosynthetic processes were enriched in differential gene expression analysis related to maternal obesity. In uMSC adipocytes, maternal obesity and lipids were associated with downregulation in multiple insulin-dependent energy-sensing pathways including PI3K and AMPK. Maternal lipids correlated with uMSC adipocyte upregulation of the mitochondrial respiratory chain but downregulation of mitochondrial biogenesis. Overall, our data revealed cell-specific alterations in metabolism and gene expression that correlated with maternal obesity and adiposity of their offspring, suggesting tissue-specific metabolic and regulatory changes in these newborn cells. We provide important insight into potential developmental programming mechanisms of increased obesity risk in offspring of obese mothers.

摘要

母亲肥胖是一个全球性的健康问题,会增加后代肥胖的风险。由于在胎儿/婴儿组织采样方面存在障碍,因此对于肥胖高危人类婴儿早期发育编程的代谢途径仍知之甚少。利用来自正常体重和肥胖母亲后代的脐带间充质干细胞(uMSC),我们测试了能量代谢和基因表达在分化为 uMSC 肌细胞和脂肪细胞时是否存在差异,这与母体肥胖暴露和/或新生儿肥胖有关。仅在来自肥胖母亲后代的 uMSC 肌细胞中,不完全β-氧化的生物标志物与婴儿肥胖和母体脂质水平呈独特的正相关。与母体肥胖相关的差异基因表达分析中富集了代谢和生物合成过程。在 uMSC 脂肪细胞中,母体肥胖和脂质与包括 PI3K 和 AMPK 在内的多个胰岛素依赖性能量感应途径的下调有关。母体脂质与 uMSC 脂肪细胞中线粒体呼吸链的上调以及线粒体生物发生的下调有关。总的来说,我们的数据揭示了与母体肥胖及其后代肥胖相关的代谢和基因表达的细胞特异性改变,表明这些新生细胞中存在组织特异性的代谢和调节变化。我们为肥胖母亲后代肥胖风险增加的潜在发育编程机制提供了重要的见解。