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Design of tissue engineering scaffolds as delivery devices for mechanical and mechanically modulated signals.

机译:组织工程支架的设计,作为机械和机械调制信号的输送装置。

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New approaches to tissue engineering aim to exploit endogenous strategies such as those occurring in prenatal development and recapitulated during postnatal healing. Defining tissue template specifications to mimic the environment of the condensed mesenchyme during development allows for exploitation of tissue scaffolds as delivery devices for extrinsic cues, including biochemical and mechanical signals, to drive the fate of mesenchymal stem cells seeded within. Although a variety of biochemical signals that modulate stem cell fate have been identified, the mechanical signals conducive to guiding pluripotent cells toward specific lineages are less well characterized. Furthermore, not only is spatial and temporal control of mechanical stimuli to cells challenging, but also tissue template geometries vary with time due to tissue ingrowth and/or scaffold degradation. Hence, a case study was carried out to analyze flow regimes in a testbed scaffold as a first step toward optimizing scaffold architecture. Apressure gradient was applied to produce local (nm-micron) flow fields conducive to migration, adhesion, proliferation, and differentiation of cells seeded within, as well as global flow parameters (micron-mm), including flow velocity and permeability, to enhance directed cell infiltration and augment mass transport. Iterative occlusion of flow channel dimensions was carried out to predict virtually the effect of temporal geometric variation (e.g., due to tissue development and growth) on delivery of local and global mechanical signals. Thereafter, insights from the case study were generalized to present an optimization scheme for future development of scaffolds to be implemented in vitro or in vivo. Although it is likely that manufacture and testing will be required to finalize design specifications, it is expected that the use of the rational design optimization will reduce the number of iterations required to determine final prototype geometries and flow conditions. As the range of mechanical signals conducive to guiding cell fate in situ is further elucidated, these refined design criteria can be integrated into the general optimization rubric, providing a technological platform to exploit nature's endogenous tissue engineering strategies for targeted tissue generation in the lab or the clinic.
机译:组织工程学的新方法旨在利用内源性策略,例如在产前发育中发生并在产后愈合过程中概括的策略。定义组织模板规格以在发育过程中模拟浓缩的间充质的环境,可以利用组织支架作为外部线索的传递装置,包括生化和机械信号,以驱动植入其中的间充质干细胞的命运。尽管已鉴定出多种调节干细胞命运的生化信号,但有助于将多能细胞引导向特定谱系的机械信号的表征仍较差。此外,不仅对细胞的机械刺激的空间和时间控制具有挑战性,而且由于组织向内生长和/或支架降解,组织模板的几何形状随时间变化。因此,进行了案例研究以分析测试平台支架中的流动状态,这是优化支架结构的第一步。施加压力梯度以产生局部(nm-micron)流场,有利于植入其中的细胞迁移,粘附,增殖和分化,以及包括流速和通透性在内的整体流参数(micro-mm),以增强定向细胞浸润并增加物质运输。进行流动通道尺寸的迭代闭塞以实际上预测时间几何变化(例如,由于组织发育和生长所致)对局部和整体机械信号的传递的影响。此后,从案例研究中得出的见解得到了概括,提出了一种用于体外或体内实施支架的未来开发的优化方案。虽然可能需要进行制造和测试才能最终确定设计规格,但可以预期,合理设计的优化将减少确定最终原型几何形状和流动条件所需的迭代次数。随着进一步阐明有助于引导原位细胞命运的机械信号范围,这些完善的设计标准可以整合到一般优化规则中,从而提供一个技术平台,以利用自然界的内源性组织工程策略在实验室或实验室中产生目标组织。诊所。

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