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Three-Dimensional Bioprinting of Functional Skeletal Muscle Tissue Using Gelatin Methacryloyl-Alginate Bioinks

C2C12型 自愈水凝胶 组织工程 3D生物打印 生物医学工程 明胶 心肌细胞 材料科学 化学 生物物理学 再生(生物学) 细胞生物学 肌发生 生物化学 生物 高分子化学 医学
作者
Rasoul Seyedmahmoud,Betül Çelebi‐Saltik,Natan Roberto de Barros,Rohollah Nasiri,Ethan A. Banton,Amir Shamloo,Nureddin Ashammakhi,Mehmet R. Dokmeci,Samad Ahadian
出处
期刊:Micromachines [Multidisciplinary Digital Publishing Institute]
卷期号:10 (10): 679-679 被引量:119
标识
DOI:10.3390/mi10100679
摘要

Skeletal muscle tissue engineering aims to fabricate tissue constructs to replace or restore diseased or injured skeletal muscle tissues in the body. Several biomaterials and microscale technologies have been used in muscle tissue engineering. However, it is still challenging to mimic the function and structure of the native muscle tissues. Three-dimensional (3D) bioprinting is a powerful tool to mimic the hierarchical structure of native tissues. Here, 3D bioprinting was used to fabricate tissue constructs using gelatin methacryloyl (GelMA)-alginate bioinks. Mechanical and rheological properties of GelMA-alginate hydrogels were characterized. C2C12 myoblasts at the density 8 × 106 cells/mL were used as the cell model. The effects of alginate concentration (0, 6, and 8% (w/v)) and crosslinking mechanism (UV crosslinking or ionic crosslinking with UV crosslinking) on printability, cell viability, proliferation, and differentiation of bioinks were studied. The results showed that 10% (w/v) GelMA-8% (w/v) alginate crosslinked using UV light and 0.1 M CaCl2 provided the optimum niche to induce muscle tissue formation compared to other hydrogel compositions. Furthermore, metabolic activity of cells in GelMA bioinks was improved by addition of oxygen-generating particles to the bioinks. It is hoped that such bioprinted muscle tissues may find wide applications in drug screening and tissue regeneration.
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