Yuan Tai-Yi, Huang Chun-Yuh, Yong Gu Wei
Department of Biomedical Engineering, Tissue Biomechanics Laboratory, College of Engineering, University of Miami, Coral Gables, FL 33146, USA.
J Biomech Eng. 2011 Sep;133(9):094504. doi: 10.1115/1.4004920.
The goal of tissue engineering is to use substitutes to repair and restore organ function. Bioreactors are an indispensable tool for monitoring and controlling the unique environment for engineered constructs to grow. However, in order to determine the biochemical properties of engineered constructs, samples need to be destroyed. In this study, we developed a novel technique to nondestructively online-characterize the water content and fixed charge density of cartilaginous tissues. A new technique was developed to determine the tissue mechano-electrochemical properties nondestructively. Bovine knee articular cartilage and lumbar annulus fibrosus were used in this study to demonstrate that this technique could be used on different types of tissue. The results show that our newly developed method is capable of precisely predicting the water volume fraction (less than 3% disparity) and fixed charge density (less than 16.7% disparity) within cartilaginous tissues. This novel technique will help to design a new generation of bioreactors which are able to actively determine the essential properties of the engineered constructs, as well as regulate the local environment to achieve the optimal conditions for cultivating constructs.
组织工程的目标是使用替代物来修复和恢复器官功能。生物反应器是监测和控制工程构建体生长的独特环境不可或缺的工具。然而,为了确定工程构建体的生化特性,需要破坏样本。在本研究中,我们开发了一种新技术,用于无损在线表征软骨组织的含水量和固定电荷密度。开发了一种新技术来无损确定组织的机械电化学特性。本研究使用牛膝关节软骨和腰椎纤维环来证明该技术可用于不同类型的组织。结果表明,我们新开发的方法能够精确预测软骨组织内的水体积分数(差异小于3%)和固定电荷密度(差异小于16.7%)。这项新技术将有助于设计新一代生物反应器,能够主动确定工程构建体的基本特性,并调节局部环境以实现培养构建体的最佳条件。