Ruel Jean, Lachance Geneviève
Department of Mechanical Engineering, Laval University, Québec, QC, Canada.
Heart Int. 2010 Jun 23;5(1):e1. doi: 10.4081/hi.2010.e1.
This paper presents an experimental study of three bioreactor configurations. The bioreactor is intended to be used for the development of tissue-engineered heart valve substitutes. Therefore it must be able to reproduce physiological flow and pressure waveforms accurately. A detailed analysis of three bioreactor arrangements is presented using mathematical models based on the windkessel (WK) approach. First, a review of the many applications of this approach in medical studies enhances its fundamental nature and its usefulness. Then the models are developed with reference to the actual components of the bioreactor. This study emphasizes different conflicting issues arising in the design process of a bioreactor for biomedical purposes, where an optimization process is essential to reach a compromise satisfying all conditions. Two important aspects are the need for a simple system providing ease of use and long-term sterility, opposed to the need for an advanced (thus more complex) architecture capable of a more accurate reproduction of the physiological environment. Three classic WK architectures are analyzed, and experimental results enhance the advantages and limitations of each one.
本文介绍了三种生物反应器配置的实验研究。该生物反应器旨在用于组织工程心脏瓣膜替代品的开发。因此,它必须能够准确再现生理流动和压力波形。使用基于风箱(WK)方法的数学模型对三种生物反应器布置进行了详细分析。首先,回顾该方法在医学研究中的众多应用,增强了其基本性质和实用性。然后,参照生物反应器的实际组件开发模型。本研究强调了用于生物医学目的的生物反应器设计过程中出现的不同冲突问题,其中优化过程对于达成满足所有条件的折衷方案至关重要。两个重要方面是,一方面需要一个简单易用且能长期保持无菌的系统,另一方面需要一个先进(因而更复杂)的架构,能够更准确地再现生理环境。分析了三种经典的WK架构,实验结果突出了每种架构的优缺点。