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Precise cell stratification in alginate/gelatin methacrylate based 3D construct using coaxial chaotic bioprinting
Shuaiqi Song1, Tarun Agarwal1, Shengbo Guo1
1Department of Mechanical and Aerospace Engineering, The George Washington University, Washington, DC, 20052, USA.
International Journal of Biological Macromolecules
|October 9, 2025
Summary
A new coaxial-chaotic 3D bioprinting method enables precise layering of cells in large tissue constructs. This innovation advances tissue engineering by creating biomimetic multicellular organization for regenerative medicine applications.
Area of Science:
- Bioprinting
- Tissue Engineering
- Biomaterials
Background:
- Achieving microscale multicellular organization in large 3D bioprinted tissues is challenging.
- Existing methods struggle with precise cell arrangement over significant volumes.
Purpose of the Study:
- To develop a novel 3D bioprinting platform for controlled cell stratification.
- To fabricate large, multicellular, and stratified tissue constructs with biomimetic organization.
Main Methods:
- A coaxial-chaotic 3D bioprinting platform combining coaxial extrusion and static mixers was developed.
- A hybrid bioink (sodium alginate/gelatin methacrylate) with a crosslinking shell was used.
- Printing parameters were optimized for shape fidelity and internal architecture.
Main Results:
- The platform successfully fabricated acellular and cellular stratified 3D constructs.
- Chaotic stratification was achieved through modulated bioink flow via static mixers.
- Incorporated fibroblasts showed stable layered arrangements, viability, and proliferation over 7 days.
Conclusions:
- Coaxial-chaotic bioprinting is an effective strategy for rapid fabrication of large, multicellular, stratified 3D constructs.
- This method offers significant potential for tissue engineering and regenerative medicine.
- Precise control over cellular organization in complex tissue architectures is now achievable.

