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首页> 外文期刊>Journal of biomechanical engineering. >Dynamics of Interstitial Fluid Pressure in Extracellular Matrix Hydrogels in Microfluidic Devices
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Dynamics of Interstitial Fluid Pressure in Extracellular Matrix Hydrogels in Microfluidic Devices

机译:微流控装置中细胞外基质水凝胶中组织液压力的动力学

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摘要

In order to understand how interstitial fluid pressure and flow affect cell behavior, many studies use microfluidic approaches to apply externally controlled pressures to the boundary of a cell-containing gel. It is generally assumed that the resulting interstitial pressure distribution quickly reaches a steady-state, but this assumption has not been rigorously tested. Here, we demonstrate experimentally and computationally that the interstitial fluid pressure within an extracellular matrix gel in a microfluidic device can, in some cases, react with a long time delay to external loading. Remarkably, the source of this delay is the slight (similar to 100 nm in the cases examined here) distension of the walls of the device under pressure. Finite-element models show that the dynamics of interstitial pressure can be described as an instantaneous jump, followed by axial and transverse diffusion, until the steady pressure distribution is reached. The dynamics follow scaling laws that enable estimation of a gel's poroelastic constants from time-resolved measurements of interstitial fluid pressure.
机译:为了了解间质液压力和流动如何影响细胞行为,许多研究使用微流体方法将外部控制的压力施加到含细胞凝胶的边界。通常假设所得的组织压力分布迅速达到稳态,但是此假设尚未经过严格测试。在这里,我们通过实验和计算证明了,在某些情况下,微流体装置中细胞外基质凝胶内的组织液压力在某些情况下可能会对外部加载产生较长时间的反应。值得注意的是,这种延迟的根源是在压力下设备壁的轻微膨胀(在此处检查的情况下约为100 nm)。有限元模型表明,间隙压力的动力学可以描述为瞬时跳跃,然后是轴向和横向扩散,直到达到稳定的压力分布。动力学遵循定标定律,该定律可根据时间分辨的组织液压力测量值估算凝胶的多孔弹性常数。

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