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PMID: 41573364 Published · epublish English Journal Article

Three-dimensional modeling of flow through microvascular beds and surrounding interstitial spaces.

Bioengineering & translational medicine ·Vol. 11 ·No. 1 ·2026-01-00 ·页码 e70085

Rajeeva Pandian NK, Farrell A, Davis E, Sundaram S, van Steen ACI, Teo JLC, Eyckmans J, Chen CS

Abstract

The health and function of microvascular beds are dramatically impacted by the mechanical forces that they experience due to fluid flow. These fluid flow-generated forces are challenging to measure directly and are typically calculated from experimental flow data. However, current computational fluid dynamics (CFD) models either employ truncated 2D models or overlook the presence of extraluminal flows within the interstitial space between vessels that result from the permeability of the endothelium lining the vessels, which are crucial components affecting flow dynamics. To address this, we present a bottom-up modeling approach that assesses fluid flow in 3D-engineered vessel networks featuring an endothelial lining and interstitial space. Using image processing algorithms to segment 3D confocal image stacks from engineered capillary networks, we reconstructed a 3D computational model of the networks. We incorporated vascular permeability and matrix porosity values to model the contributions of the endothelial lining and interstitial spaces to the flow dynamics in the networks. Simulations suggest that including the endothelial monolayer and the interstitium significantly affects the predicted flow magnitude in the vessels and flow profiles in the interstitium. To demonstrate the importance of these factors, we showed experimentally and computationally that while cytokine (IL-1β) treatment did not affect the network architecture, it significantly increased vessel permeability and resulted in a dramatic decrease in wall shear stresses and flow velocities intraluminally within the networks. In conclusion, this framework offers a robust methodology for studying flow dynamics in 3D in vitro vessel networks, enhancing our understanding of vascular physiology and pathology.

作者与单位
共 8 位作者,点击展开单位 / ORCID
Rajeeva Pandian Navaneeth Krishna ORCID
Harvard Wyss Institute for Biologically Inspired Engineering Boston Massachusetts USA. | Biological Design Center, Department of Biomedical Engineering Boston University Boston Massachusetts USA.
Farrell Alanna
Harvard Wyss Institute for Biologically Inspired Engineering Boston Massachusetts USA. | Biological Design Center, Department of Biomedical Engineering Boston University Boston Massachusetts USA.
Davis Emily
Harvard Wyss Institute for Biologically Inspired Engineering Boston Massachusetts USA. | Biological Design Center, Department of Biomedical Engineering Boston University Boston Massachusetts USA.
Sundaram Subramanian ORCID
Harvard Wyss Institute for Biologically Inspired Engineering Boston Massachusetts USA. | Biological Design Center, Department of Biomedical Engineering Boston University Boston Massachusetts USA.
van Steen Abraham Christoffel Ignatius
Harvard Wyss Institute for Biologically Inspired Engineering Boston Massachusetts USA. | Biological Design Center, Department of Biomedical Engineering Boston University Boston Massachusetts USA.
Teo Jessica Li Chang
Harvard Wyss Institute for Biologically Inspired Engineering Boston Massachusetts USA. | Biological Design Center, Department of Biomedical Engineering Boston University Boston Massachusetts USA.
Eyckmans Jeroen ORCID
Harvard Wyss Institute for Biologically Inspired Engineering Boston Massachusetts USA. | Biological Design Center, Department of Biomedical Engineering Boston University Boston Massachusetts USA.
Chen Christopher S
Harvard Wyss Institute for Biologically Inspired Engineering Boston Massachusetts USA. | Biological Design Center, Department of Biomedical Engineering Boston University Boston Massachusetts USA.
Article Info
Journal
Bioengineering & translational medicine
Abbr.
Bioeng Transl Med
ISSN
2380-6761
Published
2026-01-00
电子出版
2025-00-14
页码
e70085
Language
English
Country/Region
United States
NLM ID
101689146
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