Projects per year
Abstract
Objective: Seeding and patterning of cells with an engineered scaffold is a critical process in artificial tissue construction and regeneration. To date, many engineered scaffolds exhibit simple intrinsic designs, which fail to mimic the geometrical complexity of native tissues. In this study, a novel scaffold that can automatically seed cells into multilayer honeycomb patterns for bone tissue engineering application was designed and examined. Methods: The scaffold incorporated dielectrophoresis for noncontact manipulation of cells and intrinsic honeycomb architectures were integrated in each scaffold layer. When a voltage was supplied to the stacked scaffold layers, three-dimensional electric fields were generated, thereby manipulating cells to form into honeycomb-like cellular patterns for subsequent culture. Results: The biocompatibility of the scaffold material was confirmed through the cell viability test. Experiments were conducted to evaluate the cell viability during DEP patterning at different voltage amplitudes, frequencies, and manipulating time. Three different mammalian cells were examined and the effects of the cell size and the cell concentration on the resultant cellular patterns were evaluated. Conclusion: Results showed that the proposed scaffold structure was able to construct multilayer honeycomb cellular patterns in a manner similar to the natural tissue. Significance: This honeycomb-like scaffold and the dielectrophoresis-based patterning technique examined in this study could provide the field with a promising tool to enhance seeding and patterning of a wide range of cells for the development of high-quality artificial tissues.
| Original language | English |
|---|---|
| Pages (from-to) | 755-764 |
| Journal | IEEE Transactions on Biomedical Engineering |
| Volume | 64 |
| Issue number | 4 |
| Online published | 1 Jun 2016 |
| DOIs | |
| Publication status | Published - Apr 2017 |
Research Keywords
- Cell patterning
- cell viability
- dielectrophoresis
- Scaffold
RGC Funding Information
- RGC-funded
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Dive into the research topics of 'Characterization of a honeycomb-like scaffold with dielectrophoresis-based patterning for tissue engineering'. Together they form a unique fingerprint.Projects
- 3 Finished
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CRF: Development of Cell Manipulation Tools for Probing Functional Mechanism of Hematopoietic Cells: Robotics, Optical tweezers, and Hematopoiesis
YANG, M. (Principal Investigator / Project Coordinator)
1/06/14 → 31/05/17
Project: Research
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CRF: Development of Cell Manipulation Tools for Probing Functional Mechanism of Hematopoietic Cells: Robotics, Optical tweezers, and Hematopoiesis
SUN, D. (Principal Investigator / Project Coordinator), FENG, G. G. (Co-Principal Investigator), LU, J. (Co-Principal Investigator), WANG, Z. (Co-Principal Investigator), YANG, M. (Co-Principal Investigator), Leung, A. Y. H. (Co-Investigator) & Liang, R. (Co-Investigator)
1/06/14 → 30/05/18
Project: Research
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GRF: Automation of Batch Spatial Manipulation and Assembly of Vells through Dielectrophoresis for Tissue Engineering
SUN, D. (Principal Investigator / Project Coordinator), CHU, K. H. H. (Co-Investigator), LAM, H. W. R. (Co-Investigator) & Mills, J. K. (Co-Investigator)
1/01/14 → 30/11/17
Project: Research
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