Regulatory mechanism of length-dependent activation in skinned porcine ventricular muscle: role of thin filament cooperative activation in the Frank-Starling relation.

Takako Terui, Yuta Shimamoto, Mitsunori Yamane, Fuyu Kobirumaki, Iwao Ohtsuki, Shin'ichi Ishiwata, Satoshi Kurihara, Norio Fukuda
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引用次数: 26

Abstract

Cardiac sarcomeres produce greater active force in response to stretch, forming the basis of the Frank-Starling mechanism of the heart. The purpose of this study was to provide the systematic understanding of length-dependent activation by investigating experimentally and mathematically how the thin filament "on-off" switching mechanism is involved in its regulation. Porcine left ventricular muscles were skinned, and force measurements were performed at short (1.9 µm) and long (2.3 µm) sarcomere lengths. We found that 3 mM MgADP increased Ca(2+) sensitivity of force and the rate of rise of active force, consistent with the increase in thin filament cooperative activation. MgADP attenuated length-dependent activation with and without thin filament reconstitution with the fast skeletal troponin complex (sTn). Conversely, 20 mM of inorganic phosphate (Pi) decreased Ca(2+) sensitivity of force and the rate of rise of active force, consistent with the decrease in thin filament cooperative activation. Pi enhanced length-dependent activation with and without sTn reconstitution. Linear regression analysis revealed that the magnitude of length-dependent activation was inversely correlated with the rate of rise of active force. These results were quantitatively simulated by a model that incorporates the Ca(2+)-dependent on-off switching of the thin filament state and interfilament lattice spacing modulation. Our model analysis revealed that the cooperativity of the thin filament on-off switching, but not the Ca(2+)-binding ability, determines the magnitude of the Frank-Starling effect. These findings demonstrate that the Frank-Starling relation is strongly influenced by thin filament cooperative activation.

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去皮猪心室肌长度依赖性激活的调控机制:细丝协同激活在Frank-Starling关系中的作用。
心肌肌节对拉伸产生更大的主动力,形成心脏弗兰克-斯塔林机制的基础。本研究的目的是通过实验和数学研究细丝“开-关”开关机制如何参与其调节,为长度依赖性激活提供系统的理解。猪左心室肌肉被剥皮,在短(1.9µm)和长(2.3µm)肌节长度处进行力测量。我们发现,3mm MgADP增加了Ca(2+)对力的敏感性和活性力的上升速率,这与细丝协同活化的增加一致。MgADP在快速骨骼肌钙蛋白复合物(sTn)重建细丝时减弱了长度依赖性激活。相反,20 mM的无机磷酸盐(Pi)降低了Ca(2+)对力的敏感性和活性力的上升速率,这与细丝协同活化的降低一致。无论有无sTn重构,Pi都增强了长度依赖性激活。线性回归分析表明,长度依赖激活的大小与主动力的上升速率呈负相关。这些结果通过一个包含Ca(2+)依赖的细丝状态开关和丝间晶格间距调制的模型进行了定量模拟。我们的模型分析表明,决定Frank-Starling效应大小的不是Ca(2+)结合能力,而是细丝开关的协同性。这些发现表明,细丝协同活化对Frank-Starling关系有很大的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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