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本文引用的文献

1
Numerical analysis of Ca2+ signaling in rat ventricular myocytes with realistic transverse-axial tubular geometry and inhibited sarcoplasmic reticulum.具有真实的横向轴管状几何形状和抑制的肌浆网的大鼠心室肌细胞中 Ca2+信号的数值分析。
PLoS Comput Biol. 2010 Oct 28;6(10):e1000972. doi: 10.1371/journal.pcbi.1000972.
2
Modeling mitochondrial bioenergetics with integrated volume dynamics.基于体积动态整合的线粒体生物能量学建模。
PLoS Comput Biol. 2010 Jan;6(1):e1000632. doi: 10.1371/journal.pcbi.1000632. Epub 2010 Jan 1.
3
Mitochondrial Ca2+ uptake: tortoise or hare?线粒体钙摄取:龟速还是兔速?
J Mol Cell Cardiol. 2009 Jun;46(6):767-74. doi: 10.1016/j.yjmcc.2008.12.011. Epub 2008 Dec 31.
4
Analysis of cardiac mitochondrial Na+-Ca2+ exchanger kinetics with a biophysical model of mitochondrial Ca2+ handling suggests a 3:1 stoichiometry.利用线粒体钙处理的生物物理模型对心脏线粒体钠钙交换动力学进行分析,结果表明其化学计量比为3:1。
J Physiol. 2008 Jul 1;586(13):3267-85. doi: 10.1113/jphysiol.2008.151977. Epub 2008 May 8.
5
'Pressure-flow'-triggered intracellular Ca2+ transients in rat cardiac myocytes: possible mechanisms and role of mitochondria.大鼠心肌细胞中“压力-流量”触发的细胞内钙离子瞬变:线粒体的可能机制及作用
J Physiol. 2008 Mar 1;586(5):1379-97. doi: 10.1113/jphysiol.2007.149294. Epub 2008 Jan 10.
6
Mitochondrial Ca2+ and the heart.线粒体钙与心脏
Cell Calcium. 2008 Jul;44(1):77-91. doi: 10.1016/j.ceca.2007.11.002. Epub 2008 Feb 21.
7
A model of the guinea-pig ventricular cardiac myocyte incorporating a transverse-axial tubular system.一种包含横向-轴向管状系统的豚鼠心室心肌细胞模型。
Prog Biophys Mol Biol. 2008 Jan-Apr;96(1-3):258-80. doi: 10.1016/j.pbiomolbio.2007.07.022. Epub 2007 Aug 11.
8
Modeling of spatial metabolite distributions in the cardiac sarcomere.心肌肌节中空间代谢物分布的建模。
Biophys J. 2007 May 15;92(10):3492-500. doi: 10.1529/biophysj.106.101352. Epub 2007 Feb 26.
9
ATP regulation in adult rat cardiomyocytes: time-resolved decoding of rapid mitochondrial calcium spiking imaged with targeted photoproteins.成年大鼠心肌细胞中的ATP调节:用靶向光蛋白成像对快速线粒体钙尖峰进行时间分辨解码。
J Biol Chem. 2006 Sep 22;281(38):28058-67. doi: 10.1074/jbc.M604540200. Epub 2006 Jul 31.
10
Elevated cytosolic Na+ decreases mitochondrial Ca2+ uptake during excitation-contraction coupling and impairs energetic adaptation in cardiac myocytes.在兴奋-收缩偶联过程中,胞质内钠离子升高会降低线粒体对钙离子的摄取,并损害心肌细胞的能量适应能力。
Circ Res. 2006 Jul 21;99(2):172-82. doi: 10.1161/01.RES.0000232546.92777.05. Epub 2006 Jun 15.

心肌细胞兴奋-收缩耦联和代谢一体化的三维仿真模型。

A three-dimensional simulation model of cardiomyocyte integrating excitation-contraction coupling and metabolism.

机构信息

Department of Frontier Science, The University of Tokyo, Kashiwa, Chiba, Japan.

出版信息

Biophys J. 2011 Dec 7;101(11):2601-10. doi: 10.1016/j.bpj.2011.10.020.

DOI:10.1016/j.bpj.2011.10.020
PMID:22261047
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3297787/
Abstract

Recent studies have revealed that Ca(2+) not only regulates the contraction of cardiomyocytes, but can also function as a signaling agent to stimulate ATP production by the mitochondria. However, the spatiotemporal resolution of current experimental techniques limits our investigative capacity to understand this phenomenon. Here, we created a detailed three-dimensional (3D) cardiomyocyte model to study the subcellular regulatory mechanisms of myocardial energetics. The 3D cardiomyocyte model was based on the finite-element method, with detailed subcellular structures reproduced, and it included all elementary processes involved in cardiomyocyte electrophysiology, contraction, and ATP metabolism localized to specific loci. The simulation results were found to be reproducible and consistent with experimental data regarding the spatiotemporal pattern of cytosolic, intrasarcoplasmic-reticulum, and mitochondrial changes in Ca(2+); as well as changes in metabolite levels. Detailed analysis suggested that although the observed large cytosolic Ca(2+) gradient facilitated uptake by the mitochondrial Ca(2+) uniporter to produce cyclic changes in mitochondrial Ca(2+) near the Z-line region, the average mitochondrial Ca(2+) changes slowly. We also confirmed the importance of the creatine phosphate shuttle in cardiac energy regulation. In summary, our 3D model provides a powerful tool for the study of cardiac function by overcoming some of the spatiotemporal limitations of current experimental approaches.

摘要

最近的研究表明,钙离子不仅调节心肌细胞的收缩,还可以作为信号分子刺激线粒体产生 ATP。然而,当前实验技术的时空分辨率限制了我们对这一现象的研究能力。在这里,我们创建了一个详细的三维(3D)心肌细胞模型来研究心肌能量学的亚细胞调节机制。3D 心肌细胞模型基于有限元方法,再现了详细的亚细胞结构,包括定位于特定位置的心肌细胞电生理学、收缩和 ATP 代谢的所有基本过程。模拟结果具有可重复性,并与实验数据一致,包括胞质溶胶、肌浆网内和线粒体中 Ca(2+)的时空变化模式;以及代谢物水平的变化。详细分析表明,尽管观察到的大胞质溶胶 Ca(2+)梯度有利于通过线粒体 Ca(2+)单向转运体摄取,从而在线粒体 Z 线区域附近产生线粒体 Ca(2+)的周期性变化,但线粒体 Ca(2+)的平均变化缓慢。我们还证实了磷酸肌酸穿梭在心脏能量调节中的重要性。总之,我们的 3D 模型通过克服当前实验方法的一些时空限制,为心脏功能的研究提供了一个强大的工具。