AbstractIn the creation of engineered tissue constructs, the successful transport of nutrients and oxygen to the contained cells is a significant challenge. In highly porous scaffolds subject to cyclic strain, the mechanical deformations can induce substantial fluid pressure gradients, which affect the transport of solutes. In this article, we describe a poroelastic model to predict the solid and fluid mechanics of a highly porous hydrogel subject to cyclic strain. The model was validated by matching the predicted penetration of a bead into the hydrogel from the model with experimental observations and provides insight into nutrient transport. Additionally, the model provides estimates of the wall-shear stresses experienced by the cells emb...
International audienceOver the last decade hydrogels, and more recently porous hydrogels, have shown...
\emph{In vitro} experiments in which tumour cells are seeded in a gelatinous medium, or hydrogel, sh...
Development and characterization of porous scaffolds for tissue engineering and regenerative medicin...
AbstractIn the creation of engineered tissue constructs, the successful transport of nutrients and o...
Tissue formation within tissue engineering (TE) scaffolds is preceded by growth of the cells through...
Reconstituted collagen hydrogels are often used for in vitro studies of cell-matrix interaction and ...
The mechanical induction of specific cell phenotypes can only be properly controlled if the local st...
Cell proliferation within a fluid-filled porous tissue-engineering scaffold depends on a sensitive c...
Scaffolds are used in diverse tissue engineering applications as hosts for cell proliferation and ex...
Tissue engineering aims to grow artificial tissues in vitro to replace those in the body that have b...
Tissue engineering aims to grow artificial tissues in vitro to replace those in the body that have b...
The relationship between cells and their environment is one of dynamic reciprocity, whereby cells ca...
The permeability of scaffolds and other three-dimensional constructs used for tissue engineering app...
Collagen gels hold great promise in the field of tissue engineering as collagen is highly biocompati...
<div><p>Collagen I hydrogels are commonly used to mimic the extracellular matrix (ECM) for tissue en...
International audienceOver the last decade hydrogels, and more recently porous hydrogels, have shown...
\emph{In vitro} experiments in which tumour cells are seeded in a gelatinous medium, or hydrogel, sh...
Development and characterization of porous scaffolds for tissue engineering and regenerative medicin...
AbstractIn the creation of engineered tissue constructs, the successful transport of nutrients and o...
Tissue formation within tissue engineering (TE) scaffolds is preceded by growth of the cells through...
Reconstituted collagen hydrogels are often used for in vitro studies of cell-matrix interaction and ...
The mechanical induction of specific cell phenotypes can only be properly controlled if the local st...
Cell proliferation within a fluid-filled porous tissue-engineering scaffold depends on a sensitive c...
Scaffolds are used in diverse tissue engineering applications as hosts for cell proliferation and ex...
Tissue engineering aims to grow artificial tissues in vitro to replace those in the body that have b...
Tissue engineering aims to grow artificial tissues in vitro to replace those in the body that have b...
The relationship between cells and their environment is one of dynamic reciprocity, whereby cells ca...
The permeability of scaffolds and other three-dimensional constructs used for tissue engineering app...
Collagen gels hold great promise in the field of tissue engineering as collagen is highly biocompati...
<div><p>Collagen I hydrogels are commonly used to mimic the extracellular matrix (ECM) for tissue en...
International audienceOver the last decade hydrogels, and more recently porous hydrogels, have shown...
\emph{In vitro} experiments in which tumour cells are seeded in a gelatinous medium, or hydrogel, sh...
Development and characterization of porous scaffolds for tissue engineering and regenerative medicin...