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一种基于高分辨率热电模块的量热计,用于测量体温下离体心室小梁的能量学。

A high-resolution thermoelectric module-based calorimeter for measuring the energetics of isolated ventricular trabeculae at body temperature.

作者信息

Johnston Callum M, Han June-Chiew, Ruddy Bryan P, Nielsen Poul M F, Taberner Andrew J

机构信息

Auckland Bioengineering Institute, The University of Auckland, Auckland, New Zealand; and

Auckland Bioengineering Institute, The University of Auckland, Auckland, New Zealand; and.

出版信息

Am J Physiol Heart Circ Physiol. 2015 Jul 15;309(2):H318-24. doi: 10.1152/ajpheart.00194.2015. Epub 2015 May 22.

Abstract

Isolated ventricular trabeculae are the most common experimental preparations used in the study of cardiac energetics. However, the experiments have been conducted at subphysiological temperatures. We have overcome this limitation by designing and constructing a novel calorimeter with sufficiently high thermal resolution for simultaneously measuring the heat output and force production of isolated, contracting, ventricular trabeculae at body temperature. This development was largely motivated by the need to better understand cardiac energetics by performing such measurements at body temperature to relate tissue performance to whole heart behavior in vivo. Our approach uses solid-state thermoelectric modules, tailored for both temperature sensing and temperature control. The thermoelectric modules have high sensitivity and low noise, which, when coupled with a multilevel temperature control system, enable an exceptionally high temperature resolution with a noise-equivalent power an order of magnitude greater than those of other existing muscle calorimeters. Our system allows us to rapidly and easily change the experimental temperature without disturbing the state of the muscle. Our calorimeter is useful in many experiments that explore the energetics of normal physiology as well as pathophysiology of cardiac muscle.

摘要

离体心室肌小梁是心脏能量学研究中最常用的实验标本。然而,以往实验是在低于生理温度的条件下进行的。我们设计并构建了一种新型量热计,其具有足够高的热分辨率,能够在体温下同时测量离体收缩心室肌小梁的热输出和力产生,从而克服了这一局限性。这一进展主要是出于通过在体温下进行此类测量,以便将组织性能与体内全心行为相关联,从而更好地理解心脏能量学的需求。我们的方法使用了专门为温度传感和温度控制而定制的固态热电模块。这些热电模块具有高灵敏度和低噪声,与多级温度控制系统相结合时,能够实现极高的温度分辨率,其等效噪声功率比其他现有的肌肉量热计高一个数量级。我们的系统使我们能够在不干扰肌肉状态的情况下快速轻松地改变实验温度。我们的量热计在许多探索正常生理学能量学以及心肌病理生理学的实验中都很有用。

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