In vitro tissue engineering is emerging as a potential tool to meet the high demand for replacement tissue, caused by the increased incidence of tissue degeneration and damage. A key challenge in this field is ensuring that the mechanical properties of the engineered tissue are appropriate for the in vivo environment. Achieving this goal will require detailed understanding of the interplay between cell proliferation, extracellular matrix (ECM) deposition and scaffold degradation. In this paper, we use a mathematical model (based upon a multiphase continuum framework) to investigate the interplay between tissue growth and scaffold degradation during tissue construct evolution in vitro. Our model accommodates a cell population and culture med...
Tissue formation within tissue engineering (TE) scaffolds is preceded by growth of the cells through...
A contemporary procedure to grow artificial tissue is to seed cells onto a porous biomaterial scaffo...
Tissue-engineered bone shows promise in meeting the huge demand for bone grafts caused by up to 4 mi...
In vitro tissue engineering is emerging as a potential tool to meet the high demand for replacement ...
Stem cell expansion on 3D porous scaffolds cultured in bioreactor systems has been shown to be benef...
A three phase model for the growth of a tissue construct within a perfusion bioreactor is examined. ...
peer reviewed3D porous scaffolds are frequently used in tissue engineering (TE) applications in comb...
The growth of a cell population within a rigid porous scaffold in a perfusion bioreactor is studied,...
A three phase model for the growth of a tissue construct within a perfusion bioreactor is examined. ...
In natural tissues, the extracellular matrix composition, cell density and physiological properties ...
A three phase model for the growth of a tissue construct within a perfusion bioreactor is examined. ...
A three phase model for the growth of a tissue construct within a perfusion bioreactor is examined. ...
AbstractIn natural tissues, the extracellular matrix composition, cell density and physiological pro...
Cell proliferation within a fluid-filled porous tissue-engineering scaffold depends on a sensitive c...
Tissue formation within tissue engineering (TE) scaffolds is preceded by growth of the cells through...
A contemporary procedure to grow artificial tissue is to seed cells onto a porous biomaterial scaffo...
Tissue-engineered bone shows promise in meeting the huge demand for bone grafts caused by up to 4 mi...
In vitro tissue engineering is emerging as a potential tool to meet the high demand for replacement ...
Stem cell expansion on 3D porous scaffolds cultured in bioreactor systems has been shown to be benef...
A three phase model for the growth of a tissue construct within a perfusion bioreactor is examined. ...
peer reviewed3D porous scaffolds are frequently used in tissue engineering (TE) applications in comb...
The growth of a cell population within a rigid porous scaffold in a perfusion bioreactor is studied,...
A three phase model for the growth of a tissue construct within a perfusion bioreactor is examined. ...
In natural tissues, the extracellular matrix composition, cell density and physiological properties ...
A three phase model for the growth of a tissue construct within a perfusion bioreactor is examined. ...
A three phase model for the growth of a tissue construct within a perfusion bioreactor is examined. ...
AbstractIn natural tissues, the extracellular matrix composition, cell density and physiological pro...
Cell proliferation within a fluid-filled porous tissue-engineering scaffold depends on a sensitive c...
Tissue formation within tissue engineering (TE) scaffolds is preceded by growth of the cells through...
A contemporary procedure to grow artificial tissue is to seed cells onto a porous biomaterial scaffo...
Tissue-engineered bone shows promise in meeting the huge demand for bone grafts caused by up to 4 mi...