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An inverse problem approach to identify the internal force of a mechanosensation process in a cardiac myocyte

机译:一种逆问题方法,用于识别心肌细胞中机械感觉过程的内力

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摘要

Mechanosensation and mechanotransduction are fundamental processes in understanding the link between physical stimuli and biological responses which currently still remain not well understood. The precise molecular mechanism involved in stress and strain detection in cells is unclear. Sarcomeres are the contractile machines of a cardiac myocyte and two main sarcomeric components that are directly involved in the sensation and transmission of mechanical stimuli are titin and filaments (thin and thick). Titin is known as the largest protein in biology with a mass of up to 4.2 MDa. Its flexible region (I-band region) may function as a length sensor (ε=l/l0) while its Z-disc domain may be involved in the sensation of tension and stress (σView the MathML source). Filaments act as contractile machineries by converting biochemical signals into mechanical work which in response cells either shorten or relax. Based on these considerations and a qualitative understanding of the maladaptation contribution to the development of heart failure, an inverse problem approach is taken to evaluate the contractile force in a mathematical model that describes mechanosensation in normal heart cells. Different functional forms to describe the contractile force are presented and for each of them we study the computational efficiency and accuracy of two numerical techniques.
机译:机械感觉和机械转导是理解物理刺激和生物学反应之间的联系的基本过程,目前仍然尚不清楚。细胞中应力和应变检测涉及的精确分子机制尚不清楚。肉瘤是心肌细胞的收缩机,直接参与机械刺激的感觉和传递的两个主要的肌节成分是纤丝和细丝(细而粗)。 Titin是生物学上最大的蛋白质,质量高达4.2 MDa。它的柔性区域(I波段区域)可以用作长度传感器(ε= 1 / l0),而其Z盘区域可能涉及张力和应力感。细丝通过将生化信号转换为机械功来充当收缩机械,从而响应细胞缩短或松弛。基于这些考虑和对适应不良对心力衰竭发展的定性理解,采用反问题方法在描述正常心脏细胞机械感觉的数学模型中评估收缩力。介绍了描述收缩力的不同函数形式,并且针对每种形式,我们研究了两种数值技术的计算效率和准确性。

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