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Real-time model-based control of afterload for in vitro cardiac tissue experimentation

机译:基于实时模型的内载性的体外心脏组织实验的控制

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The performance of mechanical work by isolated cardiac muscle samples has typically been studied by subjecting their tissues to an isotonic shortening protocol, which results in "flat-topped" work-loop profiles. In order to better replicate the forces experienced by these tissues in vivo, we have developed a system for imposing a model-based, time-varying, load on isolated cardiac tissue preparations. A model of systemic afterload was developed from the combination of a Windkessel-type model of vascular fluid impedance, and the Laplace law of the heart, and encoded into a hardware-based control system. The model-predicted length change was then imposed on an isolated cardiac trabecula in a work-loop calorimeter, giving rise to force-length work-loops that more closely resemble those experienced by these tissues in vivo.
机译:通过对其组织进行对等渗缩短方案来研究孤立心肌样品的机械工作的性能通常研究,这导致“平顶”的工作环剖面。为了更好地复制这些组织在体内经历的力,我们开发了一种施加基于模型,时变的负荷的系统,孤立的心脏组织制剂。从血管流体阻抗的Windkessel型模型和心脏拉普拉斯型模型的组合开发了一个系统性的型号,并编码到基于硬件的控制系统中。然后将模型预测的长度变化施加在工作回路量热表中的孤立的心脏小编上,从而产生力长的工作回路,其更紧密地类似于这些组织在体内经历的工作。

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