实时线粒体尺寸测量

Joseph M. Leichner, E. Konyukhov, David Kamoun, Y. Yaniv
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引用次数: 1

摘要

线粒体体积与细胞功能和细胞内部过程相关。线粒体体积的变化与心脏病的晚期状态有关。因此,测量线粒体尺寸变形对理解细胞功能及其恶化是重要的。现有的方法要么允许测量分离线粒体的体积,这是一个比分离细胞更差的模型,要么允许对细胞有毒的短时间测量。最近的研究发现,线粒体沿给定细胞轴的变形可以通过使用傅里叶变换对肌丝与线粒体行交替的周期性晶格引起的透射光强度变化进行测量。然而,该方法仅在离线和线扫描模式下使用,因此无法测量两个轴。我们在LabVIEW中设计了一个开源程序,利用透射光衍射技术,在长时间(超过几秒钟)的实时原位量化心肌细胞中的线粒体二维(2D)变形。我们在兔和大鼠心室肌细胞的合成图像和实验图像上验证了该程序。该程序可以分析离线和实时同时二维线粒体变形动力学以及肌节长度动力学。此外,该程序可以准确地分析从不同相机获取的图像。线粒体二维变形的量化是探索细胞生物物理学和生物能量学机制的有力工具,将为未来量化与不同心脏疾病相关的线粒体体积变化的临床工具奠定基础。
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Real time mitochondrial dimension measurements
Mitochondrial volume is correlated with cell function and internal cell processes. Changes in mitochondrial volume were associated with advanced states of cardiac disease. Thus, measurements of mitochondrial dimension deformations are important to the understanding of cell function and its deterioration. Existing methods either allow measurements of the volume of isolated mitochondria, which are an inferior model to that of isolated cells, or they allow short time measurements that are toxic to the cells. Recent studies have discovered that mitochondrial deformation along a given cell axis can be measured by using the Fourier transformation on the variation in transmitted light intensity induced by the periodic lattice of myofilaments alternating with mitochondrial rows. However, this method was used only offline and in a line scan mode, making it impossible to measure both axes. We designed an open source program in LabVIEW to take advantage of the transmitted light diffraction technique and quantify mitochondrial two dimension (2D) deformation in cardiomyocytes, in situ in real time for long periods (more than several seconds). We validated the program on synthetic and on experimental images from rabbit and rat ventricular myocytes. The program can analyze offline and real time simultaneous 2D mitochondrial deformation dynamics as well as also sarcomere length dynamics. Moreover, the program can accurately analyze images acquired from different cameras. Quantification of mitochondrial 2D deformations is a powerful tool for exploring cell biophysics and bioenergetics mechanisms and will lay the foundation for a future clinical tool for quantifying mitochondrial volume changes associated with different cardiac diseases.
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