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Bioprinted microvasculature: progressing from structure to function

delete2022-02-23
delete31
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OA
AI
A
Alexis J. Seymour
A
Ashley D. Westerfield
M
Mark A. Skylar‐Scott
S
Sarah C. Heilshorn *
DOI:10.1088/1758-5090/ac4fb5delete
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Abstract

Abstract

En 中文
Three-dimensional (3D) bioprinting seeks to unlock the rapid generation of complex tissue constructs, but long-standing challenges with efficient in vitro microvascularization must be solved before this can become a reality. Microvasculature is particularly challenging to biofabricate due to the presence of a hollow lumen, a hierarchically branched network topology, and a complex signaling milieu. All of these characteristics are required for proper microvascular-and, thus, tissue-function. While several techniques have been developed to address distinct portions of this microvascularization challenge, no single approach is capable of simultaneously recreating all three microvascular characteristics. In this review, we present a three-part framework that proposes integration of existing techniques to generate mature microvascular constructs. First, extrusion-based 3D bioprinting creates a mesoscale foundation of hollow, endothelialized channels. Second, biochemical and biophysical cues induce endothelial sprouting to create a capillary-mimetic network. Third, the construct is conditioned to enhance network maturity. Across all three of these stages, we highlight the potential for extrusion-based bioprinting to become a central technique for engineering hierarchical microvasculature. We envision that the successful biofabrication of functionally engineered microvasculature will address a critical need in tissue engineering, and propel further advances in regenerative medicine and ex vivo human tissue modeling.
Keywords:
3D printing
extrusion-based bioprinting
microvasculature
endothelial sprouting
vascular structure
vascular function

Journal

Biofabrication cover
Biofabrication
IF:
8
Papers:
1.6K
Citations:
9.3K

Organization

S
Stanford University
Scholars:
9.6W
Papers: 8.2W
Citations: 17.0W