Electrohydrodynamic cell concentration for biofabrication of agar-based 3D microtissues

被引:0
|
作者
Vembadi, Abhishek [1 ]
Menachery, Anoop [1 ]
Qasaimeh, Mohammad A. [1 ,2 ]
机构
[1] New York Univ Abu Dhabi, Div Engn, Abu Dhabi, U Arab Emirates
[2] NYU, Tandon Sch Engn, Dept Mech & Aerosp Engn, 6 Metrotech Ctr, Brooklyn, NY 11201 USA
来源
MICROFLUIDICS, BIOMEMS, AND MEDICAL MICROSYSTEMS XVII | 2019年 / 10875卷
关键词
Dielectrophoresis; Buoyancy; Convection; Tissue; Biofabrication; Electrohydrodynamic; Agar; Cell;
D O I
10.1117/12.2516036
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
We have developed a rapid and novel technique for concentrating cells into 3D clusters which are then embedded in an agar hydrogel. This method supports cell growth and proliferation with a steady nutrient supply through the porous hydrogel. For tissue engineering studies, the creation of cell clusters within a controlled size range is necessary to perform precise biological experiments and measure functions. Our precisely controlled cell clusters can be reproducibly formed for different sizes between 0.1 mm to 5 mm in diameter, with cell numbers up to 10(6) cells/cluster. The concentration of cells is achieved using a device we previously developed, that utilizes a combination of electrical and hydrodynamic phenomena. The results were obtained using an 80 mu L drop containing HeLa cancer cells placed over an interdigitated electrode array. The electrohydrodynamic phenomena was produced using a sinusoidal voltage (10 Vpk-pk and 50 kHz). This voltage application creates Joule heating resulting in a buoyancy driven convective flow pattern directed towards the center of the droplet. In addition, the same interdigitated electrode structure also induces dielectrophoretic (DEP) levitation of the suspended cells which prevents cell settling and non-specific adhesion. The dense clustering of cells is achieved within 10 minutes of AC voltage application. Furthermore, using staining we have demonstrated that cell viability was measured as 90% after the formation of agar-embedded cell clusters and 80% over 72 hours.
引用
收藏
页数:6
相关论文
共 50 条
  • [21] Biofabrication of glass scaffolds by 3D printing for tissue engineering
    Liliana Sofia Oliveira Pires
    Maria Helena Figueira Vaz Fernandes
    José Martinho Marques de Oliveira
    The International Journal of Advanced Manufacturing Technology, 2018, 98 : 2665 - 2676
  • [22] 3D Printing and Biofabrication for Load Bearing Tissue Engineering
    Jeong, Claire G.
    Atala, Anthony
    ENGINEERING MINERALIZED AND LOAD BEARING TISSUES, 2015, 881 : 3 - 14
  • [23] Biofabrication of the osteochondral unit and its applications: Current and future directions for 3D bioprinting
    Santos-Beato, Patricia
    Midha, Swati
    Pitsillides, Andrew A.
    Miller, Aline
    Torii, Ryo
    Kalaskar, Deepak M.
    JOURNAL OF TISSUE ENGINEERING, 2022, 13
  • [24] Necking and failure of constrained 3D microtissues induced by cellular tension
    Wang, Hailong
    Svoronos, Alexander A.
    Boudou, Thomas
    Sakar, Mahmut Selman
    Schell, Jacquelyn Youssef
    Morgan, Jeffrey R.
    Chen, Christopher S.
    Shenoy, Vivek B.
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2013, 110 (52) : 20923 - 20928
  • [25] Designing Gelatin Methacryloyl (GelMA)-Based Bioinks for Visible Light Stereolithographic 3D Biofabrication
    Kumar, Hitendra
    Sakthivel, Kabilan
    Mohamed, Mohamed G. A.
    Boras, Emilie
    Shin, Su Ryon
    Kim, Keekyoung
    MACROMOLECULAR BIOSCIENCE, 2021, 21 (01)
  • [26] Advancements in Extracellular Matrix-Based Biomaterials and Biofabrication of 3D Organotypic Skin Models
    Phang, Shou Jin
    Basak, Soumyadeep
    Teh, Huey Xhin
    Packirisamy, Gopinath
    Fauzi, Mh Busra
    Kuppusamy, Umah Rani
    Neo, Yun Ping
    Looi, Mee Lee
    ACS BIOMATERIALS SCIENCE & ENGINEERING, 2022, 8 (08): : 3220 - 3241
  • [27] Biofabrication of 3D cell-encapsulated tubular constructs using dynamic optical projection stereolithography
    Wadnap, Soham
    Krishnamoorthy, Srikumar
    Zhang, Zhengyi
    Xu, Changxue
    JOURNAL OF MATERIALS SCIENCE-MATERIALS IN MEDICINE, 2019, 30 (03)
  • [28] Advances in the Biofabrication of 3D Skin in vitro: Healthy and Pathological Models
    Randall, Matthew J.
    Juengel, Astrid
    Rimann, Markus
    Wuertz-Kozak, Karin
    FRONTIERS IN BIOENGINEERING AND BIOTECHNOLOGY, 2018, 6
  • [29] A Review of 3D Printing Techniques and the Future in Biofabrication of Bioprinted Tissue
    Satyajit Patra
    Vanesa Young
    Cell Biochemistry and Biophysics, 2016, 74 : 93 - 98
  • [30] 3D Biofabrication of a Cardiac Tissue Construct for Sustained Longevity and Function
    Alonzo, Matthew
    El Khoury, Raven
    Nagiah, Naveen
    Thakur, Vikram
    Chattopadhyay, Munmun
    Joddar, Binata
    ACS APPLIED MATERIALS & INTERFACES, 2022, 14 (19) : 21800 - 21813