成年心肌细胞纤维内和核周线粒体异质性。

Intrafibrillar and perinuclear mitochondrial heterogeneity in adult cardiac myocytes.

机构信息

Division of Cardiology, State Key Laboratory for Oncogenes and Related Genes, Renji Hospital School of Medicine, Shanghai Cancer Institute, Jiaotong University, Shanghai, China; Department of Pharmacology, University of California Davis, Davis, CA, USA.

Department of Internal Medicine, University of California Davis, Davis, CA, USA.

出版信息

J Mol Cell Cardiol. 2019 Nov;136:72-84. doi: 10.1016/j.yjmcc.2019.08.013. Epub 2019 Sep 3.

Abstract

Mitochondria are involved in multiple cellular functions, in addition to their core role in energy metabolism. Mitochondria localized in different cellular locations may have different morphology, Ca handling and biochemical properties and may interact differently with other intracellular structures, causing functional specificity. However, most prior studies have utilized isolated mitochondria, removed from their intracellular environment. Mitochondria in cardiac ventricular myocytes are highly organized, with a majority squeezed between the myofilaments in longitudinal chains (intrafibrillar mitochondria, IFM). There is another population of perinuclear mitochondria (PNM) around and between the two nuclei typical in myocytes. Here, we take advantage of live myocyte imaging to test for quantitative morphological and functional differences between IFM and PNM with respect to calcium fluxes, membrane potential, sensitivity to oxidative stress, shape and dynamics. Our findings show higher mitochondrial Ca uptake and oxidative stress sensitivity for IFM vs. PNM, which may relate to higher local energy demand supporting the contractile machinery. In contrast to IFM which are remarkably static, PNM are relatively mobile, appear to participate readily in fission/fusion dynamics and appear to play a central role in mitochondrial genesis and turnover. We conclude that while IFM may be physiologically tuned to support local myofilament energy demands, PNM may be more critical in mitochondrial turnover and regulation of nuclear function and import/export. Thus, important functional differences are present in intrafibrillar vs. perinuclear mitochondrial subpopulations.

摘要

线粒体除了在能量代谢中发挥核心作用外,还参与多种细胞功能。定位于不同细胞位置的线粒体可能具有不同的形态、Ca 处理和生化特性,并可能与其他细胞内结构以不同的方式相互作用,从而产生功能特异性。然而,大多数先前的研究都利用了从细胞内环境中分离出来的线粒体。心肌细胞中的线粒体高度组织化,大部分被挤在肌原纤维之间的纵链中(纤维内线粒体,IFM)。还有另一群核周线粒体(PNM)围绕着和存在于肌细胞的两个核之间。在这里,我们利用活心肌细胞成像来测试 IFM 和 PNM 之间在钙通量、膜电位、对氧化应激的敏感性、形态和动力学方面的定量形态和功能差异。我们的研究结果表明,IFM 比 PNM 具有更高的线粒体 Ca 摄取和氧化应激敏感性,这可能与支持收缩机制的局部能量需求较高有关。与 IFM 相比,IFM 非常稳定,PNM 相对活跃,它们似乎很容易参与裂变/融合动力学,并在粒体生成和周转中起着核心作用。我们得出结论,虽然 IFM 可能在生理上被调整以支持局部肌原纤维的能量需求,但 PNM 可能在粒体周转和核功能以及进口/出口的调节中更为关键。因此,纤维内和核周线粒体亚群之间存在重要的功能差异。

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