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dc.contributor.advisorWarnke, Patrick
dc.contributor.authorAlamein, Mohammad A
dc.date.accessioned2018-01-23T02:53:45Z
dc.date.available2018-01-23T02:53:45Z
dc.date.issued2014
dc.identifier.doi10.25904/1912/2248
dc.identifier.urihttp://hdl.handle.net/10072/367480
dc.description.abstractWe aimed to provide optimal and controlled growth mechanisms that determine the fate of cells by designing a novel polymeric, bio-functionalised 3-dimensional artificial Nanofibrous Extracellular Matrix (NF-ECM) that recapitulates the natural microenvironment of cells. We initially reviewed current cell-expansion methods, and clinically feasible protocols for tissue engineering applications. They are often based on conventional 2-dimensional tissue culture plates that usually require xenogenic coating substrates or feeder-cells to maintain their characteristics. Propagating cells in a 3-dimensional architecture, rather than in the conventional 2-dimensional flat monolayers, can be advantageous for many regenerative applications and biological or disease modelling studies. Furthermore, such 3-dimensional culture systems might be crucial in developing a bioreactor-based design that provides finely controlled environmental conditions that would reliably propagate 3-dimensional multilayered cell organisation or spheroids on a large scale. Furthermore, the ability to expand cells in the absence of animal-derived products is a necessary condition for clinical application.
dc.languageEnglish
dc.publisherGriffith University
dc.publisher.placeBrisbane
dc.rights.copyrightThe author owns the copyright in this thesis, unless stated otherwise.
dc.subject.keywordsNanofibrous Extracellular Matrix (NF-ECM)
dc.subject.keywordsStem cells
dc.subject.keywordsNanofiber Electrospinning
dc.subject.keywordsRecreation of the Optimal 3-Dimensional Extracellular Niche
dc.titleGuiding Stem Cells for Tissue and Organ Engineering: Clinical Grade Nanofiber Electrospinning for Recreation of the Optimal 3-Dimensional Extracellular Niche to Control Cellular Fate
dc.typeGriffith thesis
dc.date.embargoEnd2019-04-10
gro.facultyGriffith Health
gro.description.notepublicIn order to comply with copyright some material has not been published here.
gro.rights.copyrightThe author owns the copyright in this thesis, unless stated otherwise.
gro.hasfulltextFull Text
dc.contributor.otheradvisorIvanovski, Saso
gro.identifier.gurtIDgu1425854240574
gro.source.ADTshelfnoADT0
gro.source.GURTshelfnoGURT
gro.thesis.degreelevelThesis (PhD Doctorate)
gro.thesis.degreeprogramDoctor of Philosophy (PhD)
gro.departmentSchool of Dentistry and Oral Health
gro.griffith.authorAlamein, Mohammad


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