The integration of 3-D cell printing and mesoscopic fluorescence molecular tomography of vascular constructs within thick hydrogel scaffolds.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 22531221.
- Also identified by DOI 10.1016/j.biomaterials.2012.04.004 and PMC identifier 3356461.
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Abstract
Developing methods that provide adequate vascular perfusion is an important step toward engineering large functional tissues. Meanwhile, an imaging modality to assess the three-dimensional (3-D) structures and functions of the vascular channels is lacking for thick matrices (>2 ≈ 3 mm). Herein, we report on an original approach to construct and image 3-D dynamically perfused vascular structures in thick hydrogel scaffolds. In this work, we integrated a robotic 3-D cell printing technology with a mesoscopic fluorescence molecular tomography imaging system, and demonstrated the capability of the platform to construct perfused collagen scaffolds with endothelial lining and to image both the fluid flow and fluorescent-labeled living endothelial cells at high-frame rates, with high sensitivity and accuracy. These results establish the potential of integrating both 3-D cell printing and fluorescence mesoscopic imaging for functional and molecular studies in complex tissue-engineered tissues.
Medical subject headings
- Blood Vessel Prosthesis
- Cell Culture Techniques
- Hydrogel, Polyethylene Glycol Dimethacrylate
- Tissue Engineering
- Tissue Scaffolds
- Tomography