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Boundary waves in a microfluidic device as a model for intramural periarterial drainage

机译:微流控装置中的边界波作为壁内动脉周围引流的模型

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摘要

The failure to clear amyloid-Beta from an aging brain leads to its accumulation within the walls of arteries and potentially to Alzheimer's disease. However, the clearance mechanism through the intramural periarterial pathway is not well understood. We previously proposed a hydrodynamic reverse transport model for the cerebral arterial basement membrane pathway. In our model, solute transport results from fluidic forcing driven by the superposition of forward and reverse propagating boundary waves. The aim of this study is to experimentally validate this hydrodynamic reverse transport mechanism in a microfluidic device where reverse transport in a rectangular conduit is driven by applying waveforms along its boundaries. Our results support our theory that while the superimposed boundary waves propagate in the forward direction, a reverse flow in the rectangular conduit can be induced by boundary wave reflections. We quantified the fluid transport velocity and direction under various boundary conditions and analyzed numerical simulations that support our experimental findings. We identified a set of boundary wave parameters that achieved reverse transport, which could be responsible for intramural periarterial drainage of cerebral metabolic waste.
机译:无法从老化的大脑中清除淀粉样蛋白-β会导致其在动脉壁内积聚,并可能导致阿尔茨海默氏病。然而,通过壁内动脉周围通路的清除机制尚不清楚。我们先前提出了脑动脉基底膜通路的流体动力学逆向转运模型。在我们的模型中,溶质的运移是由正向和反向传播边界波叠加驱动的流体强迫造成的。这项研究的目的是通过实验验证这种微流体装置中的流体动力学逆向传输机制,该装置通过沿矩形管道的边界施加波形来驱动矩形管道中的逆向传输。我们的结果支持了我们的理论,即当叠加的边界波沿正向传播时,矩形管道中的反向流动可通过边界波反射引起。我们量化了各种边界条件下的流体传输速度和方向,并分析了支持我们实验结果的数值模拟。我们确定了一组实现反向运输的边界波参数,这可能是脑代谢废物的壁内动脉周围引流的原因。

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