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首页> 外文期刊>American Journal of Physiology >Modular regulation analysis of heart contraction: application to in situ demonstration of a direct mitochondrial activation by calcium in beating heart.
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Modular regulation analysis of heart contraction: application to in situ demonstration of a direct mitochondrial activation by calcium in beating heart.

机译:心脏收缩的模块化调节分析:在跳动心脏中钙直接激活线粒体中的应用。

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Heart contraction is characterized by the absence of changes in energetic intermediates in response to a large increase of activity. Until now no experimental approach could address this question concerning the intact beating heart. Ca(2+) plays a crucial role in the excitation-contraction coupling, and in vitro studies have evidenced that Ca(2+) may also directly activate mitochondrial oxidative phosphorylation. We applied our new in situ modular control and regulation analysis on isolated beating rat heart perfused under two different calcium concentrations with pyruvate or glucose as the substrate. Modular control analysis demonstrated experimentally that, although control by energy production was slightly higher under glucose conditions compared with pyruvate, most of the control of heart contraction resides in energy utilization. This behavior is the direct consequence of the high sensitivity (elasticity) of the energy producer processes to ATP utilization. Interestingly, the increase in heart metabolic rate by Ca(2+) did not significantly change the pattern of control distribution. The regulation analysis performed under the two calcium conditions demonstrated a balanced activation of myofibrils ATPases, and mitochondrial ATP synthesis in response to Ca(2+) increase. This first study demonstrates in situ the hypothesis that the energetic adequation in heart contraction is mediated by a parallel activation of both processes of energy production and utilization by Ca(2+). The results presented here show that modular control and regulation analyses allow in situ study of internal regulations in intact beating heart energetics and function and may now be applied to heart dysfunctions and therapeutic effects.
机译:心脏收缩的特征是响应于活动的大量增加,高能中间体没有变化。到目前为止,还没有实验方法可以解决关于完整的跳动心脏的问题。 Ca(2+)在激发-收缩耦合中起关键作用,并且体外研究证明Ca(2+)也可能直接激活线粒体氧化磷酸化。我们将新的原位模块化控制和调节分析应用于在两种不同钙浓度下以丙酮酸或葡萄糖为底物灌注的离体跳动大鼠心脏。模块化控制分析实验表明,尽管在葡萄糖条件下,通过能量产生的控制比丙酮酸略高,但心脏收缩的大部分控制仍在能量利用上。这种行为是能量生产过程对ATP利用的高度敏感性(弹性)的直接结果。有趣的是,由Ca(2+)引起的心脏代谢率的增加并未显着改变控制分布的模式。在两个钙条件下进行的法规分析表明肌原纤维ATPases的平衡激活和响应Ca(2+)的线粒体ATP合成。这项第一项研究就地证明了这一假设,即心脏收缩中的能量充足是由Ca(2+)的能量产生和利用过程的并行激活介导的。此处显示的结果表明,模块化的控制和调节分析可对内部调节进行原位研究,从而完整地击败心脏的能量和功能,现在可将其应用于心脏功能障碍和治疗效果。

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