Issue 4, 2025

Design, fabrication, and application of bioengineering vascular networks based on microfluidic strategies

Abstract

Vascularization is a critical component of tissue engineering research and is essential for enhancing the success rate of tissue construction and function. Over the past decade, researchers have explored various methods to construct in vitro vascular networks, including 3D printing, cell sphere technology, and microfluidics. Microfluidic technology has garnered significant attention due to its notable advantages in precision, controllability, flexibility, and applicability. It can be primarily classified into two modes: (i) the pre-designed mode, which involves creating vascular networks by pre-designing vascular channels and seeding endothelial cells, encompassing microfluidic chips and microfluidic spinning technologies; and (ii) the self-assembly mode, where cell spheres are fabricated using microfluidic technology and subsequently self-assemble into vascular networks. In this review, we first provide a brief overview of the normal physiological and pathological characteristics of vascular networks, followed by a discussion of the factors to be considered in designing in vitro vascular networks, and conclude with an examination of the classification of technologies for the preparation of microfluidic vascular networks and recent advancements. It is anticipated that in vitro vascular network models will soon be successfully applied in regenerative medicine and drug development.

Graphical abstract: Design, fabrication, and application of bioengineering vascular networks based on microfluidic strategies

Article information

Article type
Review Article
Submitted
11 Sep 2024
Accepted
07 Dec 2024
First published
11 Dec 2024

J. Mater. Chem. B, 2025,13, 1252-1269

Design, fabrication, and application of bioengineering vascular networks based on microfluidic strategies

X. Miao, T. Chen, Z. Lang, Y. Wu, X. Wu, Z. Zhu and R. X. Xu, J. Mater. Chem. B, 2025, 13, 1252 DOI: 10.1039/D4TB02047B

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