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Characterization of local fluid flow in 3D porous construct characterized by fourier domain doppler optical coherence tomography

机译:用傅里叶域多普勒光学相干断层扫描表征3D多孔结构中的局部流体流动

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In order to achieve functional tissue with the correct biomechanical properties it is critical to stimulate mechanically the cells. Perfusion bioreactor induces fluid shear stress that has been well characterized for two-dimensional culture where both simulation and experimental data are available. However these results can't be directly translated to tissue engineering that makes use of complex three-dimensional porous scaffold. Moreover, stimulated cells produce extensive extra-cellular matrix (ECM) that alter dramatically the micro-architecture of the constructs, changing the local flow dynamic. In this study a Fourier domain Doppler optical coherent tomography (FD-DOCT) system working at 1300nm with a bandwidth of 50nm has been used to determine the local flow rate inside different types of porous scaffolds used in tissue engineering. Local flow rates can then be linearly related, for Newtonian fluid, to the fluid shear stress occurring on the pores wall. Porous chitosan scaffolds (φ1.5mm × 3mm) with and without a central 250 um microchannel have been produced by a freeze-drying technique. This techniques allow us to determine the actual shear stress applied to the cells and to optimise the input flow rate consequently, but also to relate the change of the flow distribution to the amount of ECM production allowing the monitoring of tissue formation.
机译:为了获得具有正确生物力学性能的功能组织,机械刺激细胞至关重要。灌注生物反应器会产生流体剪切应力,对于二维培养,该流体剪切应力已得到很好的表征,其中可以提供模拟和实验数据。然而,这些结果不能直接转化为利用复杂的三维多孔支架的组织工程。此外,受刺激的细胞产生大量的细胞外基质(ECM),从而极大地改变了构建体的微结构,从而改变了局部流动动态。在这项研究中,使用傅立叶域多普勒光学相干断层扫描(FD-DOCT)系统在1300nm下工作,带宽为50nm,以确定组织工程中使用的不同类型多孔支架内部的局部流速。然后,对于牛顿流体,局部流速可以与发生在孔壁上的流体剪切应力线性相关。通过冷冻干燥技术生产了有和没有中央250微米微通道的多孔壳聚糖支架(φ1.5mm×3mm)。这种技术使我们能够确定施加到细胞上的实际剪切应力,从而优化输入流量,而且还可以将流量分布的变化与ECM产生量相关联,从而可以监测组织的形成。

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