Graham Evan Lee, Balla Cristina, Franchino Hannabeth, Melman Yonathan, del Monte Federica, Das Saumya
Cardiovascular Institute, Beth Israel Deaconess Medical Center, Harvard Medical School.
J Vis Exp. 2013 Sep 24(79):e50289. doi: 10.3791/50289.
The use of primary cardiomyocytes (CMs) in culture has provided a powerful complement to murine models of heart disease in advancing our understanding of heart disease. In particular, the ability to study ion homeostasis, ion channel function, cellular excitability and excitation-contraction coupling and their alterations in diseased conditions and by disease-causing mutations have led to significant insights into cardiac diseases. Furthermore, the lack of an adequate immortalized cell line to mimic adult CMs, and the limitations of neonatal CMs (which lack many of the structural and functional biomechanics characteristic of adult CMs) in culture have hampered our understanding of the complex interplay between signaling pathways, ion channels and contractile properties in the adult heart strengthening the importance of studying adult isolated cardiomyocytes. Here, we present methods for the isolation, culture, manipulation of gene expression by adenoviral-expressed proteins, and subsequent functional analysis of cardiomyocytes from the adult mouse. The use of these techniques will help to develop mechanistic insight into signaling pathways that regulate cellular excitability, Ca(2+) dynamics and contractility and provide a much more physiologically relevant characterization of cardiovascular disease.
在培养中使用原代心肌细胞(CMs)为心脏病小鼠模型提供了有力补充,有助于我们深入了解心脏病。特别是,研究离子稳态、离子通道功能、细胞兴奋性以及兴奋-收缩偶联,以及它们在疾病状态下和致病突变作用下的改变,使我们对心脏病有了重要的认识。此外,缺乏足够的永生化细胞系来模拟成年CMs,以及培养中的新生CMs(缺乏成年CMs的许多结构和功能生物力学特征)的局限性,阻碍了我们对成年心脏中信号通路、离子通道和收缩特性之间复杂相互作用的理解,凸显了研究成年分离心肌细胞的重要性。在此,我们介绍从成年小鼠分离、培养心肌细胞,通过腺病毒表达蛋白操纵基因表达,以及随后进行功能分析的方法。使用这些技术将有助于深入了解调节细胞兴奋性、Ca(2+)动力学和收缩性的信号通路,并为心血管疾病提供更具生理相关性的特征描述。