An essential component of functional articular cartilage tissue engineering is a mechano-active scaffold, which responds to applied compression stress and causes little permanent deformation. As the first paper of a series on mechano-active scaffold-based cartilage tissue engineering, this study focused on mechanical responses to various modes of loading of compression forces and subsequent selection of mechano-active scaffolds from the biomechanical viewpoint. Scaffolds made of elastomeric microporous poly(L-lactide-co-epsilon-caprolactone) (PLCL) with open-cell structured pores (300 approximately 500 microm) and with different porosities ranging from 71 to 86% were used. The PLCL sponges and rabbit articular cartilage tissue were subjecte...
A highly interconnecting and accessible pore network has been suggested as one of a number of prereq...
A model is proposed to assess mechanical behaviour of tissue engineering scaffolds and predict their...
The goal of this study was to produce and characterize the scaffolds by combining the advantages of...
Compressive mechanical stimuli are crucial in regenerating cartilage with tissue engineering, which ...
[EN] Polymeric scaffolds used in regenerative therapies are implanted in the damaged tissue and subm...
Regenerating the load-bearing tissues requires 3D scaffolds that balance the temporary mechanical fu...
Engineered scaffolds for tissue-engineering should be designed to match the stiffness and strength o...
In this study, we present and characterize a fiber deposition technique for producing three-dimensio...
Engineered scaffolds for tissue-engineering should be designed to match the stiffness and strength o...
In this study, we present and characterize a fiber deposition technique for producing three-dimensio...
Cartilage tissue engineering is a multifactorial problem requiring a wide range of material property...
Biodegradable polymers, either as porous scaffolds or microspheres, have been investigated broadly f...
Scaffolds are used in diverse tissue engineering applications as hosts for cell proliferation and ex...
The aim of this experimental study is to predict the long-term mechanical behavior of a porous scaff...
grantor: University of TorontoThe development of tissue-engineered constructs formed 'in v...
A highly interconnecting and accessible pore network has been suggested as one of a number of prereq...
A model is proposed to assess mechanical behaviour of tissue engineering scaffolds and predict their...
The goal of this study was to produce and characterize the scaffolds by combining the advantages of...
Compressive mechanical stimuli are crucial in regenerating cartilage with tissue engineering, which ...
[EN] Polymeric scaffolds used in regenerative therapies are implanted in the damaged tissue and subm...
Regenerating the load-bearing tissues requires 3D scaffolds that balance the temporary mechanical fu...
Engineered scaffolds for tissue-engineering should be designed to match the stiffness and strength o...
In this study, we present and characterize a fiber deposition technique for producing three-dimensio...
Engineered scaffolds for tissue-engineering should be designed to match the stiffness and strength o...
In this study, we present and characterize a fiber deposition technique for producing three-dimensio...
Cartilage tissue engineering is a multifactorial problem requiring a wide range of material property...
Biodegradable polymers, either as porous scaffolds or microspheres, have been investigated broadly f...
Scaffolds are used in diverse tissue engineering applications as hosts for cell proliferation and ex...
The aim of this experimental study is to predict the long-term mechanical behavior of a porous scaff...
grantor: University of TorontoThe development of tissue-engineered constructs formed 'in v...
A highly interconnecting and accessible pore network has been suggested as one of a number of prereq...
A model is proposed to assess mechanical behaviour of tissue engineering scaffolds and predict their...
The goal of this study was to produce and characterize the scaffolds by combining the advantages of...