National Heart, Lung, and Blood Institute, National Institutes of Health, Bethesda, MD, 20892, United States.
National Institute of Arthritis and Musculoskeletal and Skin Diseases, National Institutes of Health, Bethesda, MD, 20892, United States.
Nat Commun. 2018 Nov 30;9(1):5111. doi: 10.1038/s41467-018-07676-y.
Mapping biological circuit connectivity has revolutionized our understanding of structure-function relationships. Although connectomic analyses have primarily focused on neural systems, electrical connectivity within muscle mitochondrial networks was recently demonstrated to provide a rapid mechanism for cellular energy distribution. However, tools to evaluate organelle connectivity with high spatial fidelity within single cells are currently lacking. Here, we developed a framework to quantitatively assess mitochondrial network connectivity and interactions with cellular sites of energy storage, utilization, and calcium cycling in cardiac, oxidative, and glycolytic muscle. We demonstrate that mitochondrial network configuration, individual mitochondrial size and shape, and the junctions connecting mitochondria within each network are consistent with the differing contraction demands of each muscle type. Moreover, mitochondria-lipid droplet interaction analyses suggest that individual mitochondria within networks may play specialized roles regarding energy distribution and calcium cycling within the cell and reveal the power of connectomic analyses of organelle interactions within single cells.
绘制生物电路连接图谱极大地促进了我们对结构-功能关系的理解。尽管连接组学分析主要集中在神经系统,但最近发现肌肉线粒体网络中的电连接为细胞能量分布提供了一种快速机制。然而,目前还缺乏能够在单细胞内以高空间分辨率评估细胞器连接的工具。在这里,我们开发了一个框架来定量评估线粒体网络连接以及与心脏、氧化和糖酵解肌肉中细胞能量储存、利用和钙循环位点的相互作用。我们证明了线粒体网络的配置、每个线粒体的大小和形状以及每个网络中连接线粒体的连接点与每种肌肉类型的不同收缩需求一致。此外,线粒体-脂滴相互作用分析表明,网络内的单个线粒体可能在细胞内的能量分布和钙循环方面发挥专门作用,并揭示了对单细胞内细胞器相互作用进行连接组学分析的强大功能。