Mimicking arterial thrombosis in a 3D-printed microfluidic in vitro vascular model based on computed tomography angiography data

被引:160
作者
Costa, Pedro F. [1 ,2 ]
Albers, Hugo J. [3 ,4 ]
Linssen, John E. A. [2 ]
Middelkamp, Heleen H. T. [4 ]
van der Hout, Linda [3 ]
Passier, Robert [4 ]
van den Berg, Albert [3 ]
Malda, Jos [1 ,2 ,5 ]
van der Meer, Andries D. [4 ]
机构
[1] Univ Utrecht, Utrecht Biofabricat Facil, Uppsalalaan 8, NL-3584 CT Utrecht, Netherlands
[2] Univ Med Ctr Utrecht, Dept Orthopaed, Heidelberglaan 100, NL-3584 CX Utrecht, Netherlands
[3] Univ Twente, BIOS Lab On A Chip Grp, MESA Inst Nanotechnol, MIRA Inst Biomed Technol & Tech Med, NL-7500 AE Enschede, Netherlands
[4] Univ Twente, Appl Stem Cell Technol Grp, MIRA Inst Biomed Technol & Tech Med, NL-7500 AE Enschede, Netherlands
[5] Univ Utrecht, Fac Vet Med, Dept Equine Sci, Yalelaan 112, NL-3584 CM Utrecht, Netherlands
基金
欧洲研究理事会;
关键词
SHEAR; COAGULATION; VIVO; PLATFORM; DEVICES; GUIDE; RATES; CHIP; FLOW;
D O I
10.1039/c7lc00202e
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Arterial thrombosis is the main instigating factor of heart attacks and strokes, which result in over 14 million deaths worldwide every year. The mechanism of thrombosis involves factors from the blood and the vessel wall, and it also relies strongly on 3D vessel geometry and local blood flow patterns. Microfluidic chip-based vascular models allow controlled in vitro studies of the interaction between vessel wall and blood in thrombosis, but until now, they could not fully recapitulate the 3D geometry and blood flow patterns of real-life healthy or diseased arteries. Here we present a method for fabricating microfluidic chips containing miniaturized vascular structures that closely mimic architectures found in both healthy and stenotic blood vessels. By applying stereolithography (SLA) 3D printing of computed tomography angiography (CTA) data, 3D vessel constructs were produced with diameters of 400 mu m, and resolution as low as 25 mu m. The 3D-printed templates in turn were used as moulds for polydimethylsiloxane (PDMS)-based soft lithography to create microfluidic chips containing miniaturized replicates of in vivo vessel geometries. By applying computational fluid dynamics (CFD) modeling a correlation in terms of flow fields and local wall shear rate was found between the original and miniaturized artery. The walls of the microfluidic chips were coated with human umbilical vein endothelial cells (HUVECs) which formed a confluent monolayer as confirmed by confocal fluorescence microscopy. The endothelialised microfluidic devices, with healthy and stenotic geometries, were perfused with human whole blood with fluorescently labeled platelets at physiologically relevant shear rates. After 15 minutes of perfusion the healthy geometries showed no sign of thrombosis, while the stenotic geometries did induce thrombosis at and downstream of the stenotic area. Overall, the novel methodology reported here, overcomes important design limitations found in typical 2D wafer-based soft lithography microfabrication techniques and shows great potential for controlled studies of the role of 3D vessel geometries and blood flow patterns in arterial thrombosis.
引用
收藏
页码:2785 / 2792
页数:8
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