Generation of cell-laden hydrogel microspheres using 3D printing-enabled microfluidics

被引:0
作者
Sanika Suvarnapathaki
Rafael Ramos
Stephen W. Sawyer
Shannon McLoughlin
Andrew Ramos
Sarah Venn
Pranav Soman
机构
[1] Syracuse University,Department of Biomedical and Chemical Engineering
来源
Journal of Materials Research | 2018年 / 33卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
3D printing has been shown to be a robust and inexpensive manufacturing tool for a range of applications within biomedical science. Here we report the design and fabrication of a 3D printer-enabled microfluidic device used to generate cell-laden hydrogel microspheres of tunable sizes. An inverse mold was printed using a 3D printer, and replica molding was used to fabricate a PDMS microfluidic device. Intersecting channel geometry was used to generate perfluorodecalin oil-coated gelatin methacrylate (GelMA) microspheres of varying sizes (35–250 µm diameters). Process parameters such as viscosity profile and UV cross-linking times were determined for a range of GelMA concentrations (7–15% w/v). Empirical relationships between flow rates of GelMA and oil phases, microspheres size, and associated swelling properties were determined. For cell experiments, GelMA was mixed with human osteosarcoma Saos-2 cells, to generate cell-laden GelMA microspheres with high long-term viability. This simple, inexpensive method does not require the use of traditional cleanroom facilities and when combined with the appropriate flow setup is robust enough to yield tunable cell-laden hydrogel microspheres for potential tissue engineering applications.
引用
收藏
页码:2012 / 2018
页数:6
相关论文
共 50 条
[31]   Fabrication of hydrogels with adjustable mechanical properties through 3D cell-laden printing technology [J].
Han, Xu ;
Huang, Chuanzhen ;
Wang, Zhichao ;
Li, Shuying ;
Chen, Zhuang ;
Huang, Jun ;
Liu, Hanlian ;
Yan, Yonggan .
COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2022, 646
[32]   3D printing of HEK 293FT cell-laden hydrogel into macroporous constructs with high cell viability and normal biological functions [J].
Ouyang, Liliang ;
Yao, Rui ;
Chen, Xi ;
Na, Jie ;
Sun, Wei .
BIOFABRICATION, 2015, 7 (01)
[33]   Fabrication of 3D cell-laden hydrogel microstructures through photo-mold patterning [J].
Occhetta, P. ;
Sadr, N. ;
Piraino, F. ;
Redaelli, A. ;
Moretti, M. ;
Rasponi, M. .
BIOFABRICATION, 2013, 5 (03)
[34]   HIGH RESOLUTION LIGHT-BASED 3D PRINTING OF CELL-LADEN BIO CONSTRUCTS [J].
Madrid-Wolff, Jorge ;
Boniface, Antoine ;
Loterie, Damien ;
Delrot, Paul ;
Moser, Christophe .
TISSUE ENGINEERING PART A, 2023, 29 (11-12) :188-188
[35]   Coaxial nozzle-assisted electrohydrodynamic printing for microscale 3D cell-laden constructs [J].
Liang, Hongtao ;
He, Jiankang ;
Chang, Jinke ;
Zhang, Bing ;
Li, Dichen .
INTERNATIONAL JOURNAL OF BIOPRINTING, 2018, 4 (01)
[36]   Development of dynamically cross-linked hydrogels for 3D printing of cell-laden bioinks [J].
Baker, Matthew .
ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2019, 257
[37]   3D Printing-Enabled DNA Extraction for Long-Read Genomics [J].
Agrawal, Paridhi ;
Reifenberger, Jeffrey G. ;
Dorfman, Kevin D. .
ACS OMEGA, 2020, 5 (33) :20817-20824
[38]   Modeling-Based Assessment of 3D Printing-Enabled Meniscus Transplantation [J].
Zhang, Zimeng ;
Wu, Qian ;
Zeng, Li ;
Wang, Shiren .
HEALTHCARE, 2019, 7 (02)
[39]   Controlled generation of cell-laden hydrogel microspheres with core-shell scaffold mimicking microenvironment of tumor [J].
Li, Yuenan ;
Hai, Miaomiao ;
Zhao, Yu ;
Lv, Yalei ;
He, Yi ;
Chen, Guo ;
Liu, Liyu ;
Liu, Ruchuan ;
Zhang, Guigen .
CHINESE PHYSICS B, 2018, 27 (12)
[40]   Development of multiparametric bioprinting method for generation of 3D printed cell-laden structures [J].
Lipshutz, Sophie ;
Kim, Yoontae ;
Curtis, Micaila ;
Friedrich, Leanne ;
Alimperti, Stella .
BIOTECHNOLOGY PROGRESS, 2025,