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George C Engelmayr

Showing results (21-30 of 28) with videos related to

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Biomaterials|December 15, 2010
The significance of pore microarchitecture in a multi-layered elastomeric scaffold for contractile cardiac muscle constructsHyoungshin Park, Benjamin L Larson, Maxime D Guillemette, et al.
Circulation|September 14, 2007
Protein precoating of elastomeric tissue-engineering scaffolds increased cellularity, enhanced extracellular matrix protein production, and differentially regulated the phenotypes of circulating endothelial progenitor cellsVirna L Sales, George C Engelmayr, John A Johnson, et al.
Tissue Engineering. Part A|November 30, 2012
Three-dimensional elastomeric scaffolds designed with cardiac-mimetic structural and mechanical featuresRebekah A Neal, Aurélie Jean, Hyoungshin Park, et al.
Annals of Biomedical Engineering|February 7, 2008
A novel flex-stretch-flow bioreactor for the study of engineered heart valve tissue mechanobiologyGeorge C Engelmayr, Lorenzo Soletti, Sarah C Vigmostad, et al.
Biomaterials|December 1, 2009
The role of organ level conditioning on the promotion of engineered heart valve tissue development in-vitro using mesenchymal stem cellsSharan Ramaswamy, Danielle Gottlieb, George C Engelmayr, et al.
The Journal of Thoracic and Cardiovascular Surgery|February 24, 2010
In vivo monitoring of function of autologous engineered pulmonary valveDanielle Gottlieb, Tandon Kunal, Sitaram Emani, et al.
Tissue Engineering. Part A|August 25, 2009
Endothelial progenitor cells as a sole source for ex vivo seeding of tissue-engineered heart valvesVirna L Sales, Bret A Mettler, George C Engelmayr, et al.
Circulation|June 2, 2005
From stem cells to viable autologous semilunar heart valveFraser W H Sutherland, Tjorvi E Perry, Ying Yu, et al.
Pageof 3

Showing results (21-30 of 28) with videos related to

Sort By:
Pageof 3
You have reached the last page of results.This site can display upto 28 results.
Biomaterials|December 15, 2010
The significance of pore microarchitecture in a multi-layered elastomeric scaffold for contractile cardiac muscle constructsHyoungshin Park, Benjamin L Larson, Maxime D Guillemette, et al.
Circulation|September 14, 2007
Protein precoating of elastomeric tissue-engineering scaffolds increased cellularity, enhanced extracellular matrix protein production, and differentially regulated the phenotypes of circulating endothelial progenitor cellsVirna L Sales, George C Engelmayr, John A Johnson, et al.
Tissue Engineering. Part A|November 30, 2012
Three-dimensional elastomeric scaffolds designed with cardiac-mimetic structural and mechanical featuresRebekah A Neal, Aurélie Jean, Hyoungshin Park, et al.
Annals of Biomedical Engineering|February 7, 2008
A novel flex-stretch-flow bioreactor for the study of engineered heart valve tissue mechanobiologyGeorge C Engelmayr, Lorenzo Soletti, Sarah C Vigmostad, et al.
Biomaterials|December 1, 2009
The role of organ level conditioning on the promotion of engineered heart valve tissue development in-vitro using mesenchymal stem cellsSharan Ramaswamy, Danielle Gottlieb, George C Engelmayr, et al.
The Journal of Thoracic and Cardiovascular Surgery|February 24, 2010
In vivo monitoring of function of autologous engineered pulmonary valveDanielle Gottlieb, Tandon Kunal, Sitaram Emani, et al.
Tissue Engineering. Part A|August 25, 2009
Endothelial progenitor cells as a sole source for ex vivo seeding of tissue-engineered heart valvesVirna L Sales, Bret A Mettler, George C Engelmayr, et al.
Circulation|June 2, 2005
From stem cells to viable autologous semilunar heart valveFraser W H Sutherland, Tjorvi E Perry, Ying Yu, et al.
Pageof 3