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首页> 外文期刊>Biochimica et biophysica acta. Molecular cell research >H9c2 and HL-1 cells demonstrate distinct features of energy metabolism, mitochondrial function and sensitivity to hypoxia-reoxygenation
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H9c2 and HL-1 cells demonstrate distinct features of energy metabolism, mitochondrial function and sensitivity to hypoxia-reoxygenation

机译:H9c2和HL-1细胞表现出明显的能量代谢,线粒体功能和对缺氧复氧的敏感性

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Dysfunction of cardiac energy metabolism plays a critical role in many cardiac diseases, including heart failure, myocardial infarction and ischemia-reperfusion injury and organ transplantation. The characteristics of these diseases can be elucidated in vivo, though animal-free in vitro experiments, with primary adult or neonatal cardiomyocytes, the rat ventricular H9c2 cell line or the mouse atrial HL-1 cells, providing intriguing experimental alternatives. Currently, it is not clear how H9c2 and HL-1 cells mimic the responses of primary cardiomyocytes to hypoxia and oxidative stress. In the present study, we show that H9c2 cells are more similar to primary cardiomyocytes than HL-1 cells with regard to energy metabolism patterns, such as cellular ATP levels, bioenergetics, metabolism, function and morphology of mitochondria. In contrast to HL-1, H9c2 cells possess beta-tubulin II, a mitochondrial isoform of tubulin that plays an important role in mitochondrial function and regulation. We demonstrate that H9c2 cells are significantly more sensitive to hypoxia-reoxygenation injury in terms of loss of cell viability and mitochondrial respiration, whereas HL-1 cells were more resistant to hypoxia as evidenced by their relative stability. In comparison to HL-1 cells, H9c2 cells exhibit a higher phosphorylation (activation) state of AMP-activated protein kinase, but lower peroxisome proliferator-activated receptor gamma coactivator 1-alpha levels, suggesting that each cell type is characterized by distinct regulation of mitochondrial biogenesis. Our results provide evidence that H9c2 cardiomyoblasts are more energetically similar to primary cardiomyocytes than are atrial HL-1 cells. H9c2 cells can be successfully used as an in vitro model to simulate cardiac ischemia-reperfusion injury. (C) 2014 Elsevier B.V. All rights reserved.
机译:心脏能量代谢功能异常在许多心脏疾病中起着至关重要的作用,包括心力衰竭,心肌梗塞,缺血再灌注损伤和器官移植。这些疾病的特征可通过无动物体外实验在体内进行阐明,其中包括成年或新生的心肌细胞,大鼠心室H9c2细胞系或小鼠心房HL-1细胞,提供了有趣的实验选择。目前,尚不清楚H9c2和HL-1细胞如何模拟原代心肌细胞对缺氧和氧化应激的反应。在本研究中,我们显示在能量代谢模式(例如细胞ATP水平,生物能,代谢,线粒体的功能和形态)方面,H9c2细胞比HL-1细胞更类似于原代心肌细胞。与HL-1相反,H9c2细胞具有β-tubulinII,这是一种微管蛋白的线粒体同种型,在线粒体功能和调控中起着重要作用。我们证明,就细胞活力的丧失和线粒体呼吸的丧失而言,H9c2细胞对缺氧-复氧损伤的敏感性更高,而HL-1细胞则具有相对稳定性,从而对缺氧具有更高的抵抗力。与HL-1细胞相比,H9c2细胞的AMP活化蛋白激酶的磷酸化(激活)状态更高,但过氧化物酶体增殖物激活的受体γ共激活因子1-alpha水平较低,这表明每种细胞类型的特征在于对线粒体生物发生。我们的结果提供了证据,表明H9c2心肌母细胞与原发性心肌细胞在能量上比心房HL-1细胞更相似。 H9c2细胞可以成功地用作体外模型来模拟心脏缺血-再灌注损伤。 (C)2014 Elsevier B.V.保留所有权利。

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