| Literature DB >> 32805500 |
Claire Yu1, Kathleen L Miller1, Jacob Schimelman1, Pengrui Wang2, Wei Zhu1, Xuanyi Ma3, Min Tang1, Shangting You1, Deepak Lakshmipathy1, Frank He3, Shaochen Chen4.
Abstract
Recent advances in 3D bioprinting have transformed the tissue engineering landscape by enabling the controlled placement of cells, biomaterials, and bioactive agents for the biofabrication of living tissues and organs. However, the application of 3D bioprinting is limited by the availability of cytocompatible and printable biomaterials that recapitulate properties of native tissues. Here, we developed an integrated 3D projection bioprinting and orthogonal photoconjugation platform for precision tissue engineering of tailored microenvironments. By using a photoreactive thiol-ene gelatin bioink, soft hydrogels can be bioprinted into complex geometries and photopatterned with bioactive moieties in a rapid and scalable manner via digital light projection (DLP) technology. This enables localized modulation of biophysical properties such as stiffness and microarchitecture as well as precise control over spatial distribution and concentration of immobilized functional groups. As such, well-defined properties can be directly incorporated using a single platform to produce desired tissue-specific functions within bioprinted constructs. We demonstrated high viability of encapsulated endothelial cells and human cardiomyocytes using our dual process and fabricated tissue constructs functionalized with VEGF peptide mimics to induce guided endothelial cell growth for programmable vascularization. This work represents a pivotal step in engineering multifunctional constructs with unprecedented control, precision, and versatility for the rational design of biomimetic tissues.Entities:
Keywords: 3D bioprinting; Biomaterials; Orthogonal photopatterning; Thiol-ene click chemistry; Tissue engineering
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Year: 2020 PMID: 32805500 PMCID: PMC7489302 DOI: 10.1016/j.biomaterials.2020.120294
Source DB: PubMed Journal: Biomaterials ISSN: 0142-9612 Impact factor: 12.479