Semenov Alexey N, Lugovtsov Andrei E, Ermolinskiy Petr B, Priezzhev Alexander V
Dynamics of Fluids, Department of Experimental Physics, Saarland University, Saarbrücken, Germany.
Department of Physics, M.V. Lomonosov Moscow State University, Moscow, Russia.
J Biophotonics. 2024 Dec;17(12):e202400379. doi: 10.1002/jbio.202400379. Epub 2024 Oct 10.
The blood rheology in vitro in glass or plastic microfluidic chips is different from that in vivo in blood vessels with similar geometry. Absence of vascular endothelium is suggested to cause these discrepancies. This work aims to perform in vitro measurements of blood microrheologic parameters in a slit microfluidic channel covered with endothelial cells (HUVEC). The laser aggregometry was employed to measure the intensity of laser light, backscattered from the blood flow, as a function of shear stress to evaluate the hydrodynamic strength of red blood cells (RBC) aggregates in terms of critical shear stress (CSS). The results demonstrated a decrease in CSS accompanied by an increase in the accuracy of its measurement at similar shear stresses when endothelial cells were present in the channel. The findings hold valuable implications for advanced approaches for endothelization of microfluidic devices, facilitating the study of blood flow dynamics in physiologically more relevant environment.
玻璃或塑料微流控芯片中的体外血液流变学与具有相似几何形状的血管中的体内血液流变学不同。血管内皮的缺失被认为是导致这些差异的原因。这项工作旨在对覆盖有内皮细胞(人脐静脉内皮细胞)的狭缝微流控通道中的血液微观流变学参数进行体外测量。采用激光聚集测定法测量从血流反向散射的激光强度,作为剪切应力的函数,以根据临界剪切应力(CSS)评估红细胞(RBC)聚集体的流体动力学强度。结果表明,当通道中存在内皮细胞时,在相似的剪切应力下,临界剪切应力降低,同时其测量精度提高。这些发现对微流控装置内皮化的先进方法具有重要意义,有助于在生理上更相关的环境中研究血流动力学。