Integrating biological vasculature into a multi-organ-chip microsystem

被引:133
作者
Schimek, Katharina [1 ]
Busek, Mathias [1 ,2 ]
Brincker, Sven [1 ]
Groth, Benjamin [1 ]
Hoffmann, Silke [1 ]
Lauster, Roland [1 ]
Lindner, Gerd [1 ]
Lorenz, Alexandra [1 ]
Menzel, Ulrike [3 ]
Sonntag, Frank [2 ]
Walles, Heike [4 ]
Marx, Uwe [1 ]
Horland, Reyk [1 ]
机构
[1] Tech Univ Berlin, Inst Biotechnol, Dept Med Biotechnol, D-13355 Berlin, Germany
[2] Fraunhofer Inst Mat & Beam, D-01277 Dresden, Germany
[3] Univ Klinikum Magdeburg, D-39120 Magdeburg, Germany
[4] Fraunhofer Inst Interfacial Engn, D-70569 Stuttgart, Germany
关键词
ENDOTHELIAL-CELL MORPHOLOGY; SHEAR-STRESS; MICROFLUIDIC PLATFORM; PLASMA TREATMENT; OXYGEN-PLASMA; CULTURE; PDMS; TISSUE; FLOW; ABSORPTION;
D O I
10.1039/c3lc50217a
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
A chip-based system mimicking the transport function of the human cardiovascular system has been established at minute but standardized microsystem scale. A peristaltic on-chip micropump generates pulsatile shear stress in a widely adjustable physiological range within a microchannel circuit entirely covered on all fluid contact surfaces with human dermal microvascular endothelial cells. This microvascular transport system can be reproducibly established within four days, independently of the individual endothelial cell donor background. It interconnects two standard tissue culture compartments, each of 5 mm diameter, through microfluidic channels of 500 mm width. Further vessel branching and vessel diameter reduction down to a microvessel scale of approximately 40 mm width was realised by a two-photon laser ablation technique applied to inserts, designed for the convenient establishment of individual organ equivalents in the tissue culture compartments at a later time. The chip layout ensures physiological fluid-to-tissue ratios. Moreover, an in-depth microscopic analysis revealed the fine-tuned adjustment of endothelial cell behaviour to local shear stresses along the microvasculature of the system. Time-lapse and 3D imaging two-photon microscopy were used to visualise details of spatiotemporal adherence of the endothelial cells to the channel system and to each other. The first indicative long-term experiments revealed stable performance over two and four weeks. The potential application of this system for the future establishment of human-on-a-chip systems and basic human endothelial cell research is discussed.
引用
收藏
页码:3588 / 3598
页数:11
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