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Updated: Jan 14, 2026

Microfluidic Model to Mimic Initial Event of Neovascularization
Published on: April 10, 2021
Complex relationship among vessel diameter, shear stress and blood pressure controlling vessel pruning during
Vivek Kumar1,2, Yosuke Hasegawa1, Prashant Kumar1
1Center for Research on Innovative Simulation and Software, Institute of Industrial Science, The University of Tokyo, Tokyo, Japan.
Abstract:
Blood vessel pruning during angiogenesis is the optimization process of the branching pattern to improve the transport properties of a vascular network. Recent studies show that part of endothelial cells (ECs) subjected to lower shear stress migrate toward vessels with higher shear stress in opposition to the blood flow for vessel regression. While dynamic changes of blood flow and local mechano-stress could coordinately modulate EC migration for vessel regression within the closed circulatory system, the effect of complexity of haemodynamic forces and vessel properties on vessel pruning remains elusive. Here, we reconstructed a 3-dimentsional (3D) vessel structure from 2D confocal images of the growing vessels in the mouse retina, and numerically obtained the local information of blood flow, shear stress and blood pressure in the vasculature. Moreover, we developed a predictive model for vessel pruning based on machine learning. We found that the combination of shear stress and blood pressure with vessel radius was tightly correlated to vessel pruning sites. Our results highlighted that orchestrated contribution of local haemodynamic parameters was important for the vessel pruning.
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