Direct 3D-printing of cell-laden constructs in microfluidic architectures

被引:42
作者
Liu, Justin [1 ]
Hwang, Henry H. [2 ]
Wang, Pengrui [1 ]
Whang, Grace [2 ]
Chen, Shaochen [1 ,2 ]
机构
[1] Univ Calif San Diego, Mat Sci & Engn Program, La Jolla, CA 92093 USA
[2] Univ Calif San Diego, Dept NanoEngn, La Jolla, CA 92093 USA
基金
美国国家科学基金会;
关键词
FLUIDIC DEVICE; STEM-CELLS; MICROSTRUCTURES; STEREOLITHOGRAPHY; FABRICATION; HYDROGELS; CHIP;
D O I
10.1039/c6lc00144k
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Microfluidic platforms have greatly benefited the biological and medical fields, however standard practices require a high cost of entry in terms of time and energy. The utilization of three-dimensional (3D) printing technologies has greatly enhanced the ability to iterate and build functional devices with unique functions. However, their inability to fabricate within microfluidic devices greatly increases the cost of producing several different devices to examine different scientific questions. In this work, a variable height micromixer (VHM) is fabricated using projection 3D-printing combined with soft lithography. Theoretical and flow experiments demonstrate that altering the local z-heights of VHM improved mixing at lower flow rates than simple geometries. Mixing of two fluids occurs as low as 320 mu L min(-1) in VHM whereas the planar zigzag region requires a flow rate of 2.4 mL min(-1) before full mixing occurred. Following device printing, to further demonstrate the ability of this projection-based method, complex, user-defined cell-laden scaffolds are directly printed inside the VHM. The utilization of this unique ability to produce 3D tissue models within a microfluidic system could offer a unique platform for medical diagnostics and disease modeling.
引用
收藏
页码:1430 / 1438
页数:9
相关论文
共 37 条
[21]   Characterization of 3D-printed microfluidic chip interconnects with integrated O-rings [J].
Paydar, O. H. ;
Paredes, C. N. ;
Hwang, Y. ;
Paz, J. ;
Shah, N. B. ;
Candler, R. N. .
SENSORS AND ACTUATORS A-PHYSICAL, 2014, 205 :199-203
[22]   Relative impact of uniaxial alignment vs. form-induced stress on differentiation of human adipose derived stem cells [J].
Qu, Xin ;
Zhu, Wei ;
Huang, Samuel ;
Li, Yi-Shuan ;
Chien, Shu ;
Zhang, Kang ;
Chen, Shaochen .
BIOMATERIALS, 2013, 34 (38) :9812-9818
[23]   3D printed microfluidic devices with integrated valves [J].
Rogers, Chad I. ;
Qaderi, Kamran ;
Woolley, Adam T. ;
Nordin, Gregory P. .
BIOMICROFLUIDICS, 2015, 9 (01)
[24]   Simple 3D Printed Scaffold-Removal Method for the Fabrication of Intricate Microfluidic Devices [J].
Saggiomo, Vittorio ;
Velders, Aldrik H. .
ADVANCED SCIENCE, 2015, 2 (09)
[25]   Cost-Effective Three-Dimensional Printing of Visibly Transparent Microchips within Minutes [J].
Shallan, Aliaa I. ;
Smejkal, Petr ;
Corban, Monika ;
Guijt, Rosanne M. ;
Breadmore, Michael C. .
ANALYTICAL CHEMISTRY, 2014, 86 (06) :3124-3130
[26]   Digital Microfabrication of User-Defined 3D Microstructures in Cell-Laden Hydrogels [J].
Soman, Pranav ;
Chung, Peter H. ;
Zhang, A. Ping ;
Chen, Shaochen .
BIOTECHNOLOGY AND BIOENGINEERING, 2013, 110 (11) :3038-3047
[27]   Cancer cell migration within 3D layer-by-layer microfabricated photocrosslinked PEG scaffolds with tunable stiffness [J].
Soman, Pranav ;
Kelber, Jonathan A. ;
Lee, Jin Woo ;
Wright, Tracy N. ;
Vecchio, Kenneth S. ;
Klemke, Richard L. ;
Chen, Shaochen .
BIOMATERIALS, 2012, 33 (29) :7064-7070
[28]   3D-Printed Microfluidic Microdissector for High-Throughput Studies of Cellular Aging [J].
Spivey, Eric C. ;
Xhemalce, Blerta ;
Shear, Jason B. ;
Finkelstein, Ilya J. .
ANALYTICAL CHEMISTRY, 2014, 86 (15) :7406-7412
[29]   A Review on Mixing in Microfluidics [J].
Suh, Yong Kweon ;
Kang, Sangmo .
MICROMACHINES, 2010, 1 (03) :82-111
[30]   Solid freeform fabrication of designer scaffolds of hyaluronic acid for nerve tissue engineering [J].
Suri, Shalu ;
Han, Li-Hsin ;
Zhang, Wande ;
Singh, Ankur ;
Chen, Shaochen ;
Schmidt, Christine E. .
BIOMEDICAL MICRODEVICES, 2011, 13 (06) :983-993