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本文引用的文献

1
Age Related Bioenergetics Profiles in Isolated Rat Cardiomyocytes Using Extracellular Flux Analyses.使用细胞外通量分析对分离的大鼠心肌细胞进行与年龄相关的生物能量学分析
PLoS One. 2016 Feb 12;11(2):e0149002. doi: 10.1371/journal.pone.0149002. eCollection 2016.
2
KLF15 and PPARα Cooperate to Regulate Cardiomyocyte Lipid Gene Expression and Oxidation.KLF15 和 PPARα 合作调节心肌细胞脂质基因表达和氧化。
PPAR Res. 2015;2015:201625. doi: 10.1155/2015/201625. Epub 2015 Feb 26.
3
Myocardial fatty acid metabolism in health and disease.心肌脂肪酸代谢在健康和疾病中的作用。
Physiol Rev. 2010 Jan;90(1):207-58. doi: 10.1152/physrev.00015.2009.
4
Morphology of pancreatic islets: a time course of pre-diabetes in Zucker fatty rats.胰腺胰岛的形态学:Zucker 肥胖大鼠糖尿病前期的时间进程
Methods Mol Biol. 2009;560:159-89. doi: 10.1007/978-1-59745-448-3_12.
5
Angiotensin II downregulates the fatty acid oxidation pathway in adult rat cardiomyocytes via release of tumour necrosis factor-alpha.血管紧张素II通过释放肿瘤坏死因子-α下调成年大鼠心肌细胞中的脂肪酸氧化途径。
Cardiovasc Res. 2009 May 1;82(2):341-50. doi: 10.1093/cvr/cvp004. Epub 2009 Jan 8.
6
Fatty acid metabolism is enhanced in type 2 diabetic hearts.2型糖尿病心脏中脂肪酸代谢增强。
Biochim Biophys Acta. 2005 May 15;1734(2):112-26. doi: 10.1016/j.bbalip.2005.03.005. Epub 2005 Apr 9.
7
Cardiomyocyte-restricted peroxisome proliferator-activated receptor-delta deletion perturbs myocardial fatty acid oxidation and leads to cardiomyopathy.心肌细胞特异性过氧化物酶体增殖物激活受体δ缺失扰乱心肌脂肪酸氧化并导致心肌病。
Nat Med. 2004 Nov;10(11):1245-50. doi: 10.1038/nm1116. Epub 2004 Oct 10.
8
Impaired cardiac efficiency and increased fatty acid oxidation in insulin-resistant ob/ob mouse hearts.胰岛素抵抗的ob/ob小鼠心脏中的心功能受损及脂肪酸氧化增加。
Diabetes. 2004 Sep;53(9):2366-74. doi: 10.2337/diabetes.53.9.2366.
9
Contraction-induced fatty acid translocase/CD36 translocation in rat cardiac myocytes is mediated through AMP-activated protein kinase signaling.收缩诱导的大鼠心肌细胞脂肪酸转位酶/CD36转位通过AMP激活的蛋白激酶信号传导介导。
Diabetes. 2003 Jul;52(7):1627-34. doi: 10.2337/diabetes.52.7.1627.
10
Peroxisome proliferator-activated receptor (PPAR) alpha and PPARbeta/delta, but not PPARgamma, modulate the expression of genes involved in cardiac lipid metabolism.过氧化物酶体增殖物激活受体(PPAR)α和PPARβ/δ而非PPARγ,调节参与心脏脂质代谢的基因的表达。
Circ Res. 2003 Mar 21;92(5):518-24. doi: 10.1161/01.RES.0000060700.55247.7C. Epub 2003 Feb 6.

评估啮齿类心肌细胞模型中的脂肪酸氧化通量。

Assessing fatty acid oxidation flux in rodent cardiomyocyte models.

机构信息

Department of Cardiology, CARIM School For Cardiovascular Diseases, Maastricht University, Maastricht, The Netherlands.

Department of Genetics and Cell Biology, CARIM school for cardiovascular diseases, Maastricht University, Maastricht, The Netherlands.

出版信息

Sci Rep. 2018 Jan 24;8(1):1505. doi: 10.1038/s41598-018-19478-9.

DOI:10.1038/s41598-018-19478-9
PMID:29367630
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5784119/
Abstract

The healthy adult heart primarily relies on fatty acid oxidation (FAO) for energy production but instantaneously adapts its substrate preference in response to physiological or pathological challenges. Accurate FAO measurements are crucial to investigate early metabolic (mal)adaptations. While measurements in intact cardiomyocytes offer greater physiological relevance, current FAO protocols mainly employ cell-free systems and/or require expensive equipment. Here, we present an easy-to-use, inexpensive, and sensitive method to measure, compare and modulate FAO in various cardiomyocyte models. Basal FAO was 2-fold higher in fresh versus cultured adult rat cardiomyocytes (aRCM), while OXPHOS protein levels were maintained. Basal FAO was higher in cultured (3-fold) and fresh (8-fold) aRCM, versus widely used neonatal rat cardiomyocytes (nRCM) and mouse HL1 cardiomyocytes. Moreover, we utilized chemical and pharmacological treatments in order to modulate the FAO flux at different cellular signalling levels. Our data indicate that caution should be taken when studying metabolism in nRCM and HL1 cell models, as these display significantly lower FAO than aRCM. Accurate FAO measurement in cultured aRCM opens new avenues for studying the complex cardiomyocyte metabolic responses to mechanical, nutritional, pharmacological, and genetic manipulations.

摘要

健康成年人的心脏主要依赖脂肪酸氧化 (FAO) 来产生能量,但会根据生理或病理挑战即时适应其底物偏好。准确测量 FAO 对于研究早期代谢(异常)适应至关重要。虽然完整心肌细胞的测量提供了更大的生理相关性,但目前的 FAO 方案主要使用无细胞系统和/或需要昂贵的设备。在这里,我们提出了一种易于使用、经济实惠且灵敏的方法,可用于测量、比较和调节各种心肌细胞模型中的 FAO。与培养的成年大鼠心肌细胞 (aRCM) 相比,新鲜的 aRCM 中的基础 FAO 高 2 倍,而 OXPHOS 蛋白水平保持不变。与广泛使用的新生大鼠心肌细胞 (nRCM) 和小鼠 HL1 心肌细胞相比,培养的 (3 倍) 和新鲜的 (8 倍) aRCM 中的基础 FAO 更高。此外,我们还利用化学和药理学处理来调节不同细胞信号水平的 FAO 通量。我们的数据表明,在研究 nRCM 和 HL1 细胞模型中的代谢时应谨慎,因为这些细胞模型的 FAO 明显低于 aRCM。在培养的 aRCM 中准确测量 FAO 为研究机械、营养、药理学和遗传学处理对复杂心肌细胞代谢反应开辟了新途径。