动物细胞培养中的细胞粘附:生理和流体力学意义。

Manfred R. Koller, E. Papoutsakis
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引用次数: 9

摘要

我们回顾了细胞在第一次非特异性接触时与基质相互作用的一般力。本文对复杂的、快速发展的特异性细胞粘附生物学和细胞外基质结构进行了详细的综述,并从过去的努力和新的文献数据中组装了最新的生物细胞粘附概念模型。过去已经对各种可能的细胞粘附基质的化学性质进行了广泛的回顾,这里只做一个简要的总结,特别强调了传统和多孔微载体的材料。本文详细回顾了细胞粘附的分子和细胞意义,以确定细胞粘附和细胞外基质不仅为细胞及其组装提供结构支持,而且实际上它们是细胞功能、代谢和分化的基本调节因子。我们回顾了微载体系统中细胞损伤的流体力学机制,并提供了实验证据,证明细胞粘附质量对细胞在生物反应器中承受流体力的能力的重要性。我们提供的证据表明,细胞粘附和流体作用力的相互作用可能产生比简单的生与死更复杂的细胞反应,我们建议这种反应正在等待新的应用和培养可能性的研究和探索。我们还回顾了细胞黏附在细胞和微载体聚集中的重要性的实验证据,并讨论了这种聚集对培养环境和生物反应器运行的影响。最后,我们以骨髓培养为例,讨论了细胞粘附的可能含义,因为它与组织工程的发展领域有关,骨髓培养涉及大量细胞,构成了最复杂的细胞培养系统之一。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cell adhesion in animal cell culture: physiological and fluid-mechanical implications.
We have reviewed the general forces through which cells interact with substrata in their first nonspecific contact. The complex, fast-emerging biology of specific cell adhesion and the structure of the extracellular matrix were reviewed in substantial detail, and the most updated conceptual model of biological cell adhesion was assembled from past efforts and new literature data. The chemistries of the various possible substrata for cell adhesion have been reviewed extensively in the past, and here only a brief summary was presented, with particular emphasis on the materials for traditional and porous microcarriers. The fascinating molecular and cellular implications of cell adhesion were reviewed in detail to establish that cell adhesion and the extracellular matrix provide more than structural support for the cells and their assemblies, and that in fact they constitute fundamental regulators of cell function, metabolism, and differentiation. We reviewed the fluid-mechanical mechanisms of cell damage in microcarrier systems and provided experimental evidence for the importance of the cell-adhesion quality in the ability of cells to withstand fluid forces in bioreactors. We provided evidence that the interplay of cell adhesion and fluid forces is likely to produce cell responses more complex than that of simple life and death, and we suggested that such responses are awaiting investigation and exploration for new applications and culturing possibilities. We also reviewed the experimental evidence on the importance of cell adhesion in cell and microcarrier aggregation and discussed the implications of such aggregation on the culturing environment and the operation of bioreactors. Finally, we discussed the possible implications of cell adhesion as it relates to the developing field of tissue engineering, using the example of bone marrow culture, which involves a large variety of cells and constitutes one of the most complex cell culture systems.
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