Department of Biochemistry and Molecular Biology, The Huck Institute of the Life Sciences, Pennsylvania State University, State College, PA 16801, USA.
Department of Molecular Physiology and Biophysics, Vanderbilt University, Nashville, TN 37232, USA.
Trends Biochem Sci. 2024 Apr;49(4):346-360. doi: 10.1016/j.tibs.2024.01.011. Epub 2024 Feb 23.
Mitochondrial structure often determines the function of these highly dynamic, multifunctional, eukaryotic organelles, which are essential for maintaining cellular health. The dynamic nature of mitochondria is apparent in descriptions of different mitochondrial shapes [e.g., donuts, megamitochondria (MGs), and nanotunnels] and crista dynamics. This review explores the significance of dynamic alterations in mitochondrial morphology and regulators of mitochondrial and cristae shape. We focus on studies across tissue types and also describe new microscopy techniques for detecting mitochondrial morphologies both in vivo and in vitro that can improve understanding of mitochondrial structure. We highlight the potential therapeutic benefits of regulating mitochondrial morphology and discuss prospective avenues to restore mitochondrial bioenergetics to manage diseases related to mitochondrial dysfunction.
线粒体的结构通常决定了这些高度动态、多功能的真核细胞器的功能,这些细胞器对于维持细胞健康至关重要。线粒体的动态性质在不同的线粒体形状[例如,甜甜圈、巨线粒体(MGs)和纳米隧道]和嵴动力学的描述中显而易见。本综述探讨了线粒体形态的动态变化以及线粒体和嵴形状调节剂的意义。我们专注于跨组织类型的研究,还描述了用于检测体内和体外线粒体形态的新显微镜技术,这可以提高对线粒体结构的理解。我们强调了调节线粒体形态的潜在治疗益处,并讨论了恢复线粒体生物能量学以治疗与线粒体功能障碍相关疾病的有前途的途径。