首页> 外文期刊>Journal of biomechanical engineering. >Investigation of the In Vitro Culture Process for Skeletal-Tissue-Engineered Constructs Using Computational Fluid Dynamics and Experimental Methods
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Investigation of the In Vitro Culture Process for Skeletal-Tissue-Engineered Constructs Using Computational Fluid Dynamics and Experimental Methods

机译:利用计算流体力学和实验方法研究骨骼组织工程结构的体外培养过程

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The in vitro culture process via bioreactors is critical to create tissue-engineered constructs (TECs) to repair or replace the damaged tissues/organs in various engineered applications. In the past, the TEC culture process was typically treated as a black box and performed on the basis of trial and error. Recently, computational fluid dynamics (CFD) has demonstrated its potential to analyze the fluid flow inside and around the TECs, therefore, being able to provide insight into the culture process, such as information on the velocity field and shear stress distribution that can significantly affect such cellular activities as cell viability and proliferation during the culture process. This paper briefly reviews the CFD and experimental methods used to investigate the in vitro culture process of skeletal-type TECs in bioreactors, where mechanical deformation of the TEC can be ignored. Specifically, this paper presents CFD modeling approaches for the analysis of the velocity and shear stress fields, mass transfer, and cell growth during the culture process and also describes various particle image velocimetry (PIV) based experimental methods to measure the velocity and shear stress in the in vitro culture process. Some key issues and challenges are also identified and discussed along with recommendations for future research.
机译:通过生物反应器进行的体外培养过程对于创建组织工程构建体(TEC)以修复或替换各种工程应用中的受损组织/器官至关重要。过去,TEC培养过程通常被视为黑匣子,并在反复试验的基础上进行。最近,计算流体力学(CFD)证明了其分析TEC内部和周围流体流动的潜力,因此,能够洞悉培养过程,例如有关速度场和剪切应力分布的信息,这些信息可能会显着影响诸如在培养过程中的细胞活力和增殖等细胞活动。本文简要回顾了CFD和用于研究生物反应器中骨骼型TECs体外培养过程的实验方法,其中TEC的机械变形可忽略不计。具体来说,本文介绍了CFD建模方法,用于分析培养过程中的速度和剪切应力场,传质和细胞生长,并介绍了基于各种粒子图像测速(PIV)的实验方法来测量流体中的速度和剪切应力。体外培养过程。还确定并讨论了一些关键问题和挑战,以及对未来研究的建议。

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