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Deformation and dynamics of erythrocytes govern their traversal through microfluidic devices with a deterministic lateral displacement architecture

机译:红细胞的变形和动力学通过具有确定性横向位移架构的微流体装置来控制其遍历

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摘要

Deterministic lateral displacement (DLD) microfluidic devices promise versatile and precise processing of biological samples. However, this prospect has been realized so far only for rigid spherical particles and remains limited for biological cells due to the complexity of cell dynamics and deformation in microfluidic flow. We employ mesoscopic hydrodynamics simulations of red blood cells (RBCs) in DLD devices with circular posts to better understand the interplay between cell behavior in complex microfluidic flow and sorting capabilities of such devices. We construct a mode diagram of RBC behavior (e.g., displacement, zig-zagging, and intermediate modes) and identify several regimes of RBC dynamics (e.g., tumbling, tank-treading, and trilobe motion). Furthermore, we link the complex interaction dynamics of RBCs with the post to their effective cell size and discuss relevant physical mechanisms governing the dynamic cell states. In conclusion, sorting of RBCs in DLD devices based on their shear elasticity is, in general, possible but requires fine-tuning of flow conditions to targeted mechanical properties of the RBCs.
机译:确定性横向位移(DLD)微流体装置承诺多功能和精确加工生物样品。然而,到目前为止,该前景仅实现了刚性球形颗粒,并且由于细胞动力学和微流体流动变形的复杂性而对生物细胞仍然有限。我们在DLD器件中采用了红细胞(RBC)的思科流体动力学模拟,具有循环柱,以更好地理解细胞行为之间的相互作用在复杂的微流体流动和这些装置的分选能力中。我们构建RBC行为的模式图(例如,位移,Zig Zagging和中间模式),并识别RBC动力学的若干方案(例如,翻滚,坦克踩踏和三叶镜运动)。此外,我们将RBC的复杂交互动态与其有效小区大小的帖子联系起来,并讨论了控制动态细胞状态的相关物理机制。总之,基于其剪切弹性的DLD器件中的RBC分类是可能的,但需要对RBC的靶向机械性能进行微调。

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