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波浪壁生物反应器中的组织生长建模

Tissue growth modeling in a wavy-walled bioreactor.

作者信息

Bilgen Bahar, Uygun Korkut, Bueno Ericka M, Sucosky Philippe, Barabino Gilda A

机构信息

Department of Orthopaedics, Alpert Medical School of Brown University and Rhode Island Hospital, Providence, Rhode Island, USA.

出版信息

Tissue Eng Part A. 2009 Apr;15(4):761-71. doi: 10.1089/ten.tea.2008.0078.

Abstract

Bioreactors have played a crucial role in recent approaches to cartilage tissue engineering, providing an environment that promotes efficient cell seeding, nutrient and waste transport, and essential physical stimuli. This study employed a wavy-walled bioreactor to investigate the effects of the hydrodynamic environment on the properties of engineered cartilage. Its unique design provides multiple hydrodynamic environments within one setting. A tissue growth model was developed to characterize the tissue growth and extracellular matrix synthesis by chondrocytes seeded and cultivated on polyglycolic acid scaffolds in the wavy-walled bioreactor for a period of 4 weeks. This model consists of four components: 1) a computational fluid dynamics model, 2) a kinetic growth model, 3) an artificial neural network that empirically correlates hydrodynamic parameters with kinetic constants, and 4) a second artificial neural network that correlates the biochemical composition of constructs with their material properties. In tandem, these components enable the prediction of the dynamics of tissue growth, as well as the final compositional and mechanical properties of engineered cartilage. The growth model methodology developed in this study serves as a tool to predict the optimal bioprocessing conditions required to achieve desired tissue properties.

摘要

生物反应器在近期的软骨组织工程方法中发挥了关键作用,它提供了一个能促进高效细胞接种、营养物质和废物运输以及必要物理刺激的环境。本研究采用了一种波浪壁生物反应器来研究流体动力环境对工程化软骨特性的影响。其独特的设计在一个装置内提供了多种流体动力环境。开发了一个组织生长模型,以表征在波浪壁生物反应器中接种并培养于聚乙醇酸支架上的软骨细胞的组织生长和细胞外基质合成情况,为期4周。该模型由四个部分组成:1)计算流体动力学模型;2)动力学生长模型;3)一个根据经验将流体动力参数与动力学常数相关联的人工神经网络;4)另一个将构建体的生化组成与其材料特性相关联的人工神经网络。这些部分协同作用,能够预测组织生长的动态变化以及工程化软骨的最终组成和力学性能。本研究中开发的生长模型方法可作为一种工具,用于预测实现所需组织特性所需的最佳生物加工条件。

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