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Natural Polymer-Based Micronanostructured Scaffolds for Bone Tissue Engineering.
Katebifar, Sara; Jaiswal, Devina; Arul, Michael R; Novak, Sanja; Nip, Jonathan; Kalajzic, Ivo; Rudraiah, Swetha; Kumbar, Sangamesh G.
Afiliação
  • Katebifar S; Department of Biomedical Engineering, University of Connecticut, Storrs, CT, USA.
  • Jaiswal D; Department of Orthopedic Surgery, University of Connecticut Health, Farmington, CT, USA.
  • Arul MR; Department of Biomedical Engineering, Western New England University, Springfield, MA, USA.
  • Novak S; Department of Orthopedic Surgery, University of Connecticut Health, Farmington, CT, USA.
  • Nip J; Department of Reconstructive Sciences, University of Connecticut Health, Farmington, CT, USA.
  • Kalajzic I; Department of Biomedical Engineering, University of Connecticut, Storrs, CT, USA.
  • Rudraiah S; Department of Orthopedic Surgery, University of Connecticut Health, Farmington, CT, USA.
  • Kumbar SG; Department of Reconstructive Sciences, University of Connecticut Health, Farmington, CT, USA.
Methods Mol Biol ; 2394: 669-691, 2022.
Article em En | MEDLINE | ID: mdl-35094352
ABSTRACT
Although bone tissue allografts and autografts aremoften used as a regenerative tissue during the bone healing, their availability, donor site morbidity, and immune response to grafted tissue are limiting factors their more common usage. Tissue engineered implants, such as acellular or cellular polymeric structures, can be an alternative solution. A variety of scaffold fabrication techniques including electrospinning, particulate leaching, particle sintering, and more recently 3D printing have been used to create scaffolds with interconnected pores and mechanical properties for tissue regeneration. Simply combining particle sintering and molecular self-assembly to create porous microstructures with imbued nanofibers to produce micronanostructures for tissue regeneration applications. Natural polymers like polysaccharides, proteins and peptides of plant or animal origin have gained significant attention due to their assured biocompatibility in tissue regeneration. However, majority of these polymers are water soluble and structures derived from them are in the form of hydrogels and require additional stabilization via cross-linking. For bone healing applications scaffolds are required to be strong, and support attachment, proliferation and differentiation of osteoprogenitors into osteoblasts. Our ongoing work utilizes plant polysaccharide cellulose derivatives and collagen to create mechanically stable and bioactive micronanostructured scaffold for bone tissue engineering. Scaffold microstructure is essentially solvent sintered cellulose acetate (CA) microspheres in the form of a negative template for trabecular bone with defined pore and mechanical properties. Collagen nanostructures are imbued into the 3D environment of CA scaffolds using collagen molecular self-assembly principles. The resultant CA-collagen micronanostructures provide the benefits of combined polymers and serve as an alternative material platform to many FDA approved polyesters. Our ongoing studies and published work confirm improved osteoprogenitor adhesion, proliferation, migration, differentiation, extracellular matrix (ECM) secretion in promoting bone healing. In this chapter we will provide a detailed protocol on the creation of micronanostructured CA-collagen scaffolds and their characterization for bone tissue engineering using human mesenchymal stem cells.
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Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Engenharia Tecidual / Nanofibras Limite: Animals Idioma: En Revista: Methods Mol Biol Ano de publicação: 2022 Tipo de documento: Article

Texto completo: 1 Coleções: 01-internacional Base de dados: MEDLINE Assunto principal: Engenharia Tecidual / Nanofibras Limite: Animals Idioma: En Revista: Methods Mol Biol Ano de publicação: 2022 Tipo de documento: Article