Dual Extruder 3D-Bioprinter for Computer Designed Cardiac Structures

被引:2
作者
De la Nava, A. S. [1 ,2 ]
Liberos, A. [1 ]
Nieva, E. G. [1 ]
Hernandez-Romero, I. [1 ]
Simon, A. [1 ,2 ]
Fernandez-Santos, M. E. [1 ]
Atienza, F. [1 ]
Climent, A. M. [1 ]
Fernandez-Aviles, F. [1 ]
机构
[1] Hosp GU Gregorio Maranon, IiSGM, CIBERCV, Madrid, Spain
[2] Univ Carlos III Madrid, Madrid, Spain
来源
2017 COMPUTING IN CARDIOLOGY (CINC) | 2017年 / 44卷
关键词
D O I
10.22489/CinC.2017.146-273
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
A precise location of cells is of high interest for the characterization of cell interaction in in-vitro studies. Bioprinters can be a useful and automatized tool to produce these biological structures with precision. The objective of this study is to develop and validate a low-cost novel dual-extruder 3D bioprinter with enough resolution to study the electrophysiological interaction between different cell types. An open source classical 3D printer was adapted to incorporate two syringe extruders, allowing controlled delivery of hydrogel-cell ink. Four different parameters were studied to adjust precision: the needle lumen (G), the density of the hydrogel (%), the linear velocity of the extruder in the platform (mm/s) and the extrusion velocity (steps of the NEMA 17 extruder motor). Cell viability was tested with alamarBlue test and spatial distribution of cells was studied with fluorescence microscopy. As a result of this study, thin lines of 1.18 mm in width with 85% viability after 24h of printing process were obtained.
引用
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页数:4
相关论文
共 6 条
[1]   HL-1 cells: A cardiac muscle cell line that contracts and retains phenotypic characteristics of the adult cardiomyocyte [J].
Claycomb, WC ;
Lanson, NA ;
Stallworth, BS ;
Egeland, DB ;
Delcarpio, JB ;
Bahinski, A ;
Izzo, NJ .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1998, 95 (06) :2979-2984
[2]  
Fisher MB, 2013, TISSUE ENG PART B-RE, V19, P1, DOI [10.1089/ten.teb.2012.0723, 10.1089/ten.TEB.2012.0723]
[3]   Three-dimensional printing of complex biological structures by freeform reversible embedding of suspended hydrogels [J].
Hinton, Thomas J. ;
Jallerat, Quentin ;
Palchesko, Rachelle N. ;
Park, Joon Hyung ;
Grodzicki, Martin S. ;
Shue, Hao-Jan ;
Ramadan, Mohamed H. ;
Hudson, Andrew R. ;
Feinberg, Adam W. .
SCIENCE ADVANCES, 2015, 1 (09)
[4]   Hydrogels for biomedical applications [J].
Hoffman, Allan S. .
ADVANCED DRUG DELIVERY REVIEWS, 2012, 64 :18-23
[5]   Engineering alginate as bioink for bioprinting [J].
Jia, Jia ;
Richards, Dylan J. ;
Pollard, Samuel ;
Tan, Yu ;
Rodriguez, Joshua ;
Visconti, Richard P. ;
Trusk, Thomas C. ;
Yost, Michael J. ;
Yao, Hai ;
Markwald, Roger R. ;
Mei, Ying .
ACTA BIOMATERIALIA, 2014, 10 (10) :4323-4331
[6]  
Merceron T.K., 2015, Hydrogels for 3D bioprinting applications, DOI DOI 10.1016/B978-0-12-800972-7.00014-1