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A Modular Microfluidic System Based on a Multilayered Configuration to Generate Large-scale Perfusable Microvascular Networks

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Date 2021 Jan 18
PMID 33456784
Citations 23
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Abstract

The vascular network of the circulatory system plays a vital role in maintaining homeostasis in the human body. In this paper, a novel modular microfluidic system with a vertical two-layered configuration is developed to generate large-scale perfused microvascular networks in vitro. The two-layer polydimethylsiloxane (PDMS) configuration allows the tissue chambers and medium channels not only to be designed and fabricated independently but also to be aligned and bonded accordingly. This method can produce a modular microfluidic system that has high flexibility and scalability to design an integrated platform with multiple perfused vascularized tissues with high densities. The medium channel was designed with a rhombic shape and fabricated to be semiclosed to form a capillary burst valve in the vertical direction, serving as the interface between the medium channels and tissue chambers. Angiogenesis and anastomosis at the vertical interface were successfully achieved by using different combinations of tissue chambers and medium channels. Various large-scale microvascular networks were generated and quantified in terms of vessel length and density. Minimal leakage of the perfused 70-kDa FITC-dextran confirmed the lumenization of the microvascular networks and the formation of tight vertical interconnections between the microvascular networks and medium channels in different structural layers. This platform enables the culturing of interconnected, large-scale perfused vascularized tissue networks with high density and scalability for a wide range of multiorgan-on-a-chip applications, including basic biological studies and drug screening.

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References
1.
Khademhosseini A, Langer R, Borenstein J, Vacanti J . Microscale technologies for tissue engineering and biology. Proc Natl Acad Sci U S A. 2006; 103(8):2480-7. PMC: 1413775. DOI: 10.1073/pnas.0507681102. View

2.
Chung B, Kang L, Khademhosseini A . Micro- and nanoscale technologies for tissue engineering and drug discovery applications. Expert Opin Drug Discov. 2013; 2(12):1653-68. DOI: 10.1517/17460441.2.12.1653. View

3.
Yue T, Nakajima M, Takeuchi M, Hu C, Huang Q, Fukuda T . On-chip self-assembly of cell embedded microstructures to vascular-like microtubes. Lab Chip. 2014; 14(6):1151-61. DOI: 10.1039/c3lc51134k. View

4.
Logsdon E, Finley S, Popel A, Mac Gabhann F . A systems biology view of blood vessel growth and remodelling. J Cell Mol Med. 2013; 18(8):1491-508. PMC: 4190897. DOI: 10.1111/jcmm.12164. View

5.
Jeon J, Bersini S, Gilardi M, Dubini G, Charest J, Moretti M . Human 3D vascularized organotypic microfluidic assays to study breast cancer cell extravasation. Proc Natl Acad Sci U S A. 2014; 112(1):214-9. PMC: 4291627. DOI: 10.1073/pnas.1417115112. View