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Three-Dimensional Culture of Cells and Matrix Biomolecules for Engineered Tissue Development and Biokinetics Model Validation

机译:细胞和基质生物分子的三维培养用于工程组织的发展和生物动力学模型的验证

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摘要

There has been considerable progress in cellular and molecular engineering due to recent advances in multiscale technology. Such technologies allow controlled manipulation of physiochemical interactions among cells in tissue culture. In particular, a novel chemomechanical bioreactor has recently been designed for the study of bone and cartilage tissue development, with particular focus on extracellular matrix formation. The bioreactor is equally significant as a tool for validation of mathematical models that explore biokinetic regulatory thresholds (Saha, A. K., and Kohles, S. S., 2010, “A Distinct Catabolic to Anabolic Threshold Due to Single-Cell Nanomechanical Stimulation in a Cartilage Biokinetics Model,” J. Nanotechnol. Eng. Med., >1(3), p. 031005; 2010, “Periodic Nanomechanical Stimulation in a Biokinetics Model Identifying Anabolic and Catabolic Pathways Associated With Cartilage Matrix Homeostasis,” J. Nanotechnol. Eng. Med., >1(4), p. 041001). In the current study, three-dimensional culture protocols are described for maintaining the cellular and biomolecular constituents within defined parameters. Preliminary validation of the bioreactor’s form and function, expected bioassays of the resulting matrix components, and application to biokinetic models are described. This approach provides a framework for future detailed explorations combining multiscale experimental and mathematical analyses, at nanoscale sensitivity, to describe cell and biomolecule dynamics in different environmental regimes.
机译:由于多尺度技术的最新发展,细胞和分子工程学已取得了长足的进步。这样的技术允许在组织培养中细胞之间的物理化学相互作用的受控操纵。特别地,最近已经设计了一种新型的化学机械生物反应器,用于研究骨骼和软骨组织的发育,特别着重于细胞外基质的形成。生物反应器作为验证探索生物动力学调节阈值的数学模型的工具同样重要(Saha,AK和Kohles,SS,2010,“由于软骨生物动力学模型中的单细胞纳米机械刺激,分解代谢与合成代谢阈值不同, ” J. Nanotechnol。Eng。Med。,> 1 (3),第031005页; 2010年,“生物动力学模型中的周期性纳米力学刺激,确定与软骨基质稳态相关的合成代谢和分解代谢途径,” J。 Nanotechnol.Eng.Med。,> 1 (4),第041001页)。在当前的研究中,描述了三维培养方案,用于将细胞和生物分子成分保持在定义的参数范围内。描述了生物反应器的形式和功能的初步验证,所得基质成分的预期生物测定以及在生物动力学模型中的应用。这种方法为未来的详细探索提供了一个框架,在纳米灵敏度下结合了多尺度实验和数学分析,以描述不同环境条件下的细胞和生物分子动力学。

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