| Literature DB >> 33708030 |
Guoliang Ying1, Nan Jiang2, Carolina Parra1, Guosheng Tang1, Jingyi Zhang3, Hongjun Wang4, Shixuan Chen4, Ning-Ping Huang5, Jingwei Xie4, Yu Shrike Zhang1.
Abstract
Direct injection of cell-laden hydrogels shows high potentials in tissue regeneration for translational therapy. The traditional cell-laden hydrogels are often used as bulk space fillers to tissue defects after injection, likely limiting their structural controllability. On the other hand, patterned cell-laden hydrogel constructs often necessitate invasive surgical procedures. To overcome these problems, herein, we report a unique strategy for encapsulating living human cells in a pore-forming gelatin methacryloyl (GelMA)-based bioink to ultimately produce injectable hierarchically macro-micro-nanoporous cell-laden GelMA hydrogel constructs through three-dimensional (3D) extrusion bioprinting. The hydrogel constructs can be fabricated into various shapes and sizes that are defect-specific. Due to the hierarchically macro-micro-nanoporous structures, the cell-laden hydrogel constructs can readily recover to their original shapes, and sustain high cell viability, proliferation, spreading, and differentiation after compression and injection. Besides, in vivo studies further reveal that the hydrogel constructs can integrate well with the surrounding host tissues. These findings suggest that our unique 3D-bioprinted pore-forming GelMA hydrogel constructs are promising candidates for applications in minimally invasive tissue regeneration and cell therapy.Entities:
Keywords: 3D bioprinting; Injectable cell-laden hydrogel; minimally invasive tissue repair; pore-forming hydrogel; shape-memory hydrogel
Year: 2020 PMID: 33708030 PMCID: PMC7941201 DOI: 10.1002/adfm.202003740
Source DB: PubMed Journal: Adv Funct Mater ISSN: 1616-301X Impact factor: 18.808