| Literature DB >> 33464853 |
Afsoon Fallahi1,2, Iman K Yazdi1,2, Ludovic Serex1, Emal Lesha1, Negar Faramarzi1, Farhang Tarlan1, Huseyin Avci3, Raquel Costa-Almeida1,4,5, Fatemeh Sharifi1, Chiara Rinoldi1,6, Manuela E Gomes4,5, Su Ryon Shin1, Ali Khademhosseini7,8, Mohsen Akbari1,2,9, Ali Tamayol1,10,11.
Abstract
Engineering tissue-like scaffolds that can mimic the microstructure, architecture, topology, and mechanical properties of native tissues while offering an excellent environment for cellular growth has remained an unmet need. To address these challenges, multicompartment composite fibers are fabricated. These fibers can be assembled through textile processes to tailor tissue-level mechanical and electrical properties independent of cellular level components. Textile technologies also allow control of the distribution of different cell types and the microstructure of fabricated constructs and the direction of cellular growth within the 3D microenvironment. Here, we engineered composite fibers from biocompatible cores and biologically relevant hydrogel sheaths. The fibers are mechanically robust to being assembled using textile processes and could support adhesion, proliferation, and maturation of cell populations important for the engineering of skeletal muscles. We also demonstrated that the changes in the coating of the multicompartment fibers could potentially enhance myogenesis in vitro.Keywords: biotextiles; interpenetrating network hydrogels; organ weaving; reinforced fibers; skeletal muscles; tissue engineering
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Year: 2020 PMID: 33464853 DOI: 10.1021/acsbiomaterials.9b00992
Source DB: PubMed Journal: ACS Biomater Sci Eng ISSN: 2373-9878