Department of Molecular Biophysics and Physiology, Rush University Medical Center, Chicago, IL 60612, USA.
J Mol Cell Cardiol. 2012 Jan;52(1):48-61. doi: 10.1016/j.yjmcc.2011.08.030. Epub 2011 Sep 22.
Mitochondria are involved in cellular functions that go beyond the traditional role of these organelles as the power plants of the cell. Mitochondria have been implicated in several human diseases, including cardiac dysfunction, and play a role in the aging process. Many aspects of our knowledge of mitochondria stem from studies performed on the isolated organelle. Their relative inaccessibility imposes experimental difficulties to study mitochondria in their natural environment-the cytosol of intact cells-and has hampered a comprehensive understanding of the plethora of mitochondrial functions. Here we review currently available methods to study mitochondrial function in intact cardiomyocytes. These methods primarily use different flavors of fluorescent dyes and genetically encoded fluorescent proteins in conjunction with high-resolution imaging techniques. We review methods to study mitochondrial morphology, mitochondrial membrane potential, Ca(2+) and Na(+) signaling, mitochondrial pH regulation, redox state and ROS production, NO signaling, oxygen consumption, ATP generation and the activity of the mitochondrial permeability transition pore. Where appropriate we complement this review on intact myocytes with seminal studies that were performed on isolated mitochondria, permeabilized cells, and in whole hearts.
线粒体参与的细胞功能超出了这些细胞器作为细胞“发电站”的传统作用。线粒体与多种人类疾病有关,包括心脏功能障碍,并在衰老过程中发挥作用。我们对线粒体的许多认识都源于对分离细胞器的研究。由于其相对难以接近,因此在天然环境(完整细胞的胞质溶胶)中研究线粒体存在实验困难,这阻碍了对线粒体众多功能的全面理解。在这里,我们综述了目前用于研究完整心肌细胞中线粒体功能的方法。这些方法主要使用不同类型的荧光染料和遗传编码的荧光蛋白,并结合高分辨率成像技术。我们综述了研究线粒体形态、线粒体膜电位、Ca(2+)和 Na(+)信号、线粒体 pH 调节、氧化还原状态和 ROS 产生、NO 信号、耗氧量、ATP 生成以及线粒体通透性转换孔活性的方法。在适当的情况下,我们会用在分离的线粒体、通透化细胞和整个心脏中进行的开创性研究来补充对完整心肌细胞的综述。