Show simple item record

dc.contributor.authorHokmabad, VR
dc.contributor.authorDavaran, S
dc.contributor.authorRamazani, A
dc.contributor.authorSalehi, R
dc.date.accessioned2018-08-26T07:21:36Z
dc.date.available2018-08-26T07:21:36Z
dc.date.issued2017
dc.identifier.urihttp://dspace.tbzmed.ac.ir:8080/xmlui/handle/123456789/46140
dc.description.abstractCurrent strategies of tissue engineering are focused on the reconstruction and regeneration of damaged or deformed tissues by grafting of cells with scaffolds and biomolecules. Recently, much interest is given to scaffolds which are based on mimic the extracellular matrix that have induced the formation of new tissues. To return functionality of the organ, the presence of a scaffold is essential as a matrix for cell colonization, migration, growth, differentiation and extracellular matrix deposition, until the tissues are totally restored or regenerated. A wide variety of approaches has been developed either in scaffold materials and production procedures or cell sources and cultivation techniques to regenerate the tissues/organs in tissue engineering applications. This study has been conducted to present an overview of the different scaffold fabrication techniques such as solvent casting and particulate leaching, electrospinning, emulsion freeze-drying, thermally induced phase separation, melt molding and rapid prototyping with their properties, limitations, theoretical principles and their prospective in tailoring appropriate micro-nanostructures for tissue regeneration applications. This review also includes discussion on recent works done in the field of tissue engineering.
dc.language.isoEnglish
dc.relation.ispartofJOURNAL OF BIOMATERIALS SCIENCE-POLYMER EDITION
dc.subjectTissue engineering
dc.subjectfabrication methods
dc.subjectbiomaterials
dc.subjectcell proliferation
dc.subjectporous scaffolds
dc.subjectAC: Azodicarbonamide
dc.subjectBA: Blowing agent
dc.subjectCAD: Computer aided design
dc.subjectECM: Extracellular matrix
dc.subjectES: Electrospinning
dc.subjectFDM: Fused deposition modeling
dc.subjectT-f: Freezing temperature
dc.subjectHFP: Hexafluoro-2-propanol
dc.subjectHA: Hydroxyapatite
dc.subjectIM
dc.subjectPL: Injection molding
dc.subjectparticulate leaching
dc.subjectNSF: Nanofibrous silk fibroin
dc.subjectPCL: Poly (epsilon-caprolactone)
dc.subjectPDOCL: Poly (dioxanone-b-caprolactone) co-polymer
dc.subjectPEG: Poly (ethylene glycol)
dc.subjectPEI: Poly-(ethyleneimine)
dc.subjectPGD: Poly (glycerol-dodecanedioate)
dc.subjectPGMA: Poly (glycidyl methacrylate)
dc.subjectPGA: Poly (glycolic acid)
dc.subjectPHB: Poly hydroxyl butyrate
dc.subjectPHBV: Poly (hydroxybutyrate-co-hydroxyvalerate)
dc.subjectPLA: Poly (lactic acid)
dc.subjectPLGA: Poly (lactic-co-glycolic acid)
dc.subjectPPF: Poly (propylene fumarate)
dc.subjectPVA: Poly (vinyl alcohol)
dc.subjectPVP: Poly (N-vinyl-2-pyrrolidone)
dc.subjectPUA: Polyurethane acrylate
dc.subjectRP: Rapid prototyping
dc.subjectSLUP: Salt leaching using powder
dc.subjectSLS: Selective laser sintering
dc.subjectNaCl: Sodium chloride
dc.subjectSFF: Solid freeform fabrication
dc.subjectSC
dc.subjectPL: Solvent casting and particulate leaching
dc.subjectSLA: Stereolithography
dc.subjectTIPS: Thermally induced phase separation
dc.subject3D: Three-dimension
dc.subject3DP: Three-Dimensional printing
dc.subject2D: Tow-dimension
dc.subjectTCP: Tricalcium phosphate
dc.subjectTMC: Trimethylene carbonate
dc.titleDesign and fabrication of porous biodegradable scaffolds: a strategy for tissue engineering
dc.typeReview
dc.citation.volume28
dc.citation.issue16
dc.citation.spage1797
dc.citation.epage1825
dc.citation.indexWeb of science
dc.identifier.DOIhttps://doi.org/10.1080/09205063.2017.1354674


Files in this item

FilesSizeFormatView

There are no files associated with this item.

This item appears in the following Collection(s)

Show simple item record