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微管改变是缺血性心肌细胞对代谢挑战的早期细胞反应。

Microtubule alteration is an early cellular reaction to the metabolic challenge in ischemic cardiomyocytes.

作者信息

Vandroux David, Schaeffer Céline, Tissier Cindy, Lalande Alain, Bès Sandrine, Rochette Luc, Athias Pierre

机构信息

Laboratory of Cardiovascular Physiopathology and Pharmacology, Institute of Cardiovascular Research, University Hospital Center, Dijon, France.

出版信息

Mol Cell Biochem. 2004 Mar;258(1-2):99-108. doi: 10.1023/b:mcbi.0000012840.67616.cc.

Abstract

Cytoskeleton damage, particularly microtubule (MT) alterations, may play an important role in the pathogenesis of ischemia-induced myocardial injury. However, this disorganization has been scarcely confirmed in the cellular context. We evaluated MT network disassembly in myoblast cell line H9c2 and in neonatal rat cardiomyocytes in an in vitro substrate-free hypoxia model of simulated ischemia (SI). After different duration of SI from 30 up to 180 min, the cells were fixed and the microtubule network was revealed by immunocytochemistry. The microtubule alterations were quantified using a house-developed image analysis program. Additionally, the tubulin fraction were extracted and quantified by Western blotting. The cell respiration, the release of cellular LDH and the cell viability were evaluated at the same periods. An early MT disassembly was observed after 60 min of SI. The decrease in MT fluorescence intensity at 60 and 90 min was correlated with a microtubule disassembly. Conversely, SI-induced significant LDH release (35%) and decrease in cell viability (34%) occurred after 120 min only. These results suggest that the simulated ischemia-induced changes in MT network should not be considered as an ultrastructural hallmark of the cell injury and could rather be an early ultrastructural correlate of the cellular reaction to the metabolic challenge.

摘要

细胞骨架损伤,尤其是微管(MT)改变,可能在缺血性心肌损伤的发病机制中起重要作用。然而,这种结构紊乱在细胞环境中鲜有证实。我们在模拟缺血(SI)的体外无底物缺氧模型中,评估了成肌细胞系H9c2和新生大鼠心肌细胞中的MT网络解聚情况。在30至180分钟的不同SI持续时间后,将细胞固定,通过免疫细胞化学显示微管网络。使用自行开发的图像分析程序对微管改变进行定量。此外,提取微管蛋白组分并通过蛋白质印迹法进行定量。在同一时期评估细胞呼吸、细胞乳酸脱氢酶(LDH)释放和细胞活力。在SI 60分钟后观察到早期MT解聚。60和90分钟时MT荧光强度的降低与微管解聚相关。相反,SI诱导的显著LDH释放(35%)和细胞活力降低(34%)仅在120分钟后发生。这些结果表明,模拟缺血诱导的MT网络变化不应被视为细胞损伤的超微结构标志,而更可能是细胞对代谢挑战反应的早期超微结构关联。

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