(2022) Synthetic electrospun nanofibers as a supportive matrix in osteogenic differentiation of induced pluripotent stem cells. Journal of Biomaterials Science, Polymer Edition. pp. 1469-1493.
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Abstract
Continuous remodeling is not able to repair large bone defects. Bone tissue engineering is aimed to repair these defects by creating bone grafts. To do this, several technologies and biomaterials have been employed to fabricate an in vivo-like supportive matrix. Electrospinning is a versatile technique to fabricate porous matrices with interconnected pores and high surface area, replicating in vivo microenvironment. Electrospun scaffolds have been used in a large number of studies to provide a matrix for bone regeneration and osteogenic differentiation of stem cells such as induced pluripotent stem cells (iPSCs). Electrospinning uses both natural and synthetic polymers, either alone or in combination, to fabricate scaffolds. Among them, synthetic polymers have had a great promise in bone regeneration and repair. They allow the fabrication of biocompatible and biodegradable scaffolds with high mechanical properties, suitable for bone engineering. Furthermore, several attempts have done to increase the osteogenic properties of these scaffolds. This paper reviewed the potential of synthetic electrospun scaffolds in osteogenic differentiation of iPSCs. In addition, the approaches to improve the osteogenic differentiation of these scaffolds are addressed. © 2022 Informa UK Limited, trading as Taylor & Francis Group.
Item Type: | Article |
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Keywords: | Biocompatibility; Biomechanics; Bone; Cytology; Fabrication; Natural polymers; Repair; Scaffolds (biology); Stem cells; Synthetic polymers, Bone defect; Bone regeneration; Electrospun nanofibers; Electrospun scaffolds; In-vivo; Induced pluripotent stem cells; matrix; Osteogenic differentiation; Scaffold modification; Synthetic polymers, Electrospinning, ascorbic acid; biomaterial; dexamethasone; glycerol 2 phosphate; graphene oxide; growth factor; hydroxyapatite; nanofiber; nanoparticle; plant extract; polycaprolactone; polyethersulfone; polyglactin; polylactic acid; polymer; polyvinylidene fluoride, bone cell; bone development; bone graft; bone regeneration; cell differentiation; cell fate; cell function; chemical structure; controlled study; electromagnetism; electrospinning; freeze drying; gene expression profiling; hydrophobicity; induced pluripotent stem cell; phase separation; physical chemistry; Review; signal transduction; surface area; tensile strength; thrombocyte rich plasma; tissue engineering; bone development; cell differentiation; procedures; tissue scaffold; transplantation, Cell Differentiation; Induced Pluripotent Stem Cells; Nanofibers; Osteogenesis; Polymers; Tissue Engineering; Tissue Scaffolds |
Page Range: | pp. 1469-1493 |
Journal or Publication Title: | Journal of Biomaterials Science, Polymer Edition |
Volume: | 33 |
Number: | 11 |
Publisher: | Taylor and Francis Ltd. |
Depositing User: | ms soheila Bazm |
URI: | http://eprints.ssu.ac.ir/id/eprint/12351 |
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