DocumentCode :
3286792
Title :
Stem cells differentiation induced by physical stimulation using piezoelectric nanocomposite material
Author :
Rouxel, D. ; Thouvenin, A. ; Courtout, F. ; Nguyen, V.S. ; Vincent, B. ; Prieur, G. ; Velot, É ; Merakchi, N. ; Menu, P.
Author_Institution :
Inst. Jean Lamour, Univ. de Lorraine, Vandœuvre-lès-Nancy, France
fYear :
2012
fDate :
9-13 July 2012
Firstpage :
1
Lastpage :
2
Abstract :
Bioengineering has become one of the most promising fields in regenerative medicine. Many of its applications have been settled through stem cell research in order to develop innovative stimuli to differentiate the cells into a specific lineage via physical stimulation such as thermal, mechanical or electrical stimuli to avoid the use of biochemical products. Many examples are found in literature, however none of them could provide conclusive answers in this research field. Piezoelectric materials are able to combine mechanical and electrical stimulation. Environments mimicking in vivo conditions are supposed to be the best to induce differentiation process, but these mechanisms are still not fully mastered and very much dependent on cell type. In this poster, we will introduce the experimental setup used to study the effects of physical (i.e. electrical and/or mechanical) stimulation on human mesenchymal stem cells. An overview of the thought process leading to our project is exposed, as well as a brief bibliographical study of electrical stimulation effects on cells. The emphasis will be focused on the piezoelectric materials used in this project. We selected a nanocomposite material, a copolymer P(VDF-TrFE) matrix charged with ZnO nanoparticles, in order to modulate the mechanical and piezoelectric properties of the matrix as well as to provide a better sticking surface favouring cell adhesion.
Keywords :
adhesion; biomedical materials; cellular biophysics; filled polymers; nanocomposites; nanomedicine; nanoparticles; particle reinforced composites; piezoelectric materials; piezoelectricity; polymer blends; zinc compounds; ZnO; bioengineering; cell adhesion; copolymer; electrical stimulation; human mesenchymal stem cells; mechanical properties; mechanical stimulation; nanoparticles; physical stimulation; piezoelectric nanocomposite material; piezoelectric properties; regenerative medicine; stem cell research; stem cells differentiation; thermal stimulation; Electrical stimulation; Humans; Nanoparticles; Nanostructured materials; Piezoelectric materials; Stem cells; Zinc oxide; Piezoelectricity applications; nanoscale phenomena; thick and thin films;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Applications of Ferroelectrics held jointly with 2012 European Conference on the Applications of Polar Dielectrics and 2012 International Symp Piezoresponse Force Microscopy and Nanoscale Phenomena in Polar Materials (ISAF/ECAPD/PFM), 2012 Intl Symp
Conference_Location :
Aveiro
Print_ISBN :
978-1-4673-2668-1
Type :
conf
DOI :
10.1109/ISAF.2012.6297810
Filename :
6297810
Link To Document :
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