首页> 外文期刊>American Journal of Physiology >Cross-bridge cycling gives rise to spatiotemporal heterogeneity of dynamic subcellular mechanics in cardiac myocytes probed with atomic force microscopy.
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Cross-bridge cycling gives rise to spatiotemporal heterogeneity of dynamic subcellular mechanics in cardiac myocytes probed with atomic force microscopy.

机译:跨桥循环导致原子力显微镜探测的心肌细胞中动态亚细胞力学的时空异质性。

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摘要

To study how the dynamic subcellular mechanical properties of the heart relate to the fundamental underlying process of actin-myosin cross-bridge cycling, we developed a novel atomic force microscope elastography technique for mapping spatiotemporal stiffness of isolated, spontaneously beating neonatal rat cardiomyocytes. Cells were indented repeatedly at a rate close but unequal to their contractile frequency. The resultant changes in pointwise apparent elastic modulus cycled at a predictable envelope frequency between a systolic value of 26.2 +/- 5.1 kPa and a diastolic value of 7.8 +/- 4.1 kPa at a representative depth of 400 nm. In cells probed along their major axis, spatiotemporal changes in systolic stiffness displayed a heterogeneous pattern, reflecting the banded sarcomeric structure of underlying myofibrils. Treatment with blebbistatin eliminated contractile activity and resulted in a uniform apparent modulus of 6.5 +/- 4.8 kPa. This study represents the first quantitative dynamic mechanical mapping of beating cardiomyocytes. The technique provides a means of probing the micromechanical effects of disease processes and pharmacological treatments on beating cardiomyocytes, providing new insights and relating subcellular cardiac structure and function.
机译:为了研究心脏的动态亚细胞力学特性如何与肌动蛋白-肌球蛋白跨桥循环的基本潜在过程相关,我们开发了一种新颖的原子力显微镜弹性成像技术,用于绘制孤立的,自发性跳动的新生大鼠心肌细胞的时空刚度。细胞以接近但不等于其收缩频率的速率反复缩进。在400 nm的典型深度下,以点的表观弹性模量的最终变化以可预测的包络频率在26.2 +/- 5.1 kPa的收缩值和7.8 +/- 4.1 kPa的舒张值之间循环。在沿其长轴探测的细胞中,收缩期刚度的时空变化显示出异质性模式,反映了潜在的肌原纤维的条带状肌节结构。用blebbistatin处理消除了收缩活性,并产生了6.5 +/- 4.8 kPa的均匀表观模量。这项研究代表了跳动的心肌细胞的第一个定量动态力学映射。该技术提供了一种手段,可探测疾病过程和药物治疗对跳动的心肌细胞的微机械作用,从而提供新的见解并与亚细胞心脏结构和功能相关。

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