Scaffolds are used in diverse tissue engineering applications as hosts for cell proliferation and extracellular matrix formation. One of the most used tissue engineering materials is collagen, which is well known to be a natural biomaterial, also frequently used as cell substrate, given its natural abundance and intrinsic biocompatibility. This study aims to evaluate how the macroscopic biomechanical stimuli applied on a construct made of polycaprolactone scaffold embedded in a collagen substrate translate into microscopic stimuli at the cell level. Eight poro-hyperelastic finite element models of 3D printed hybrid scaffolds from the same batch were created, along with an equivalent model of the idealized geometry of that scaffold. When app...
INTRODUCTION: Advantages of synthetic polymers as a scaffolding material include the ability to prod...
Degradable porous polymeric structures are attractive candidates for biological tissue scaffolds, an...
Thesis (Sc. D.)--Massachusetts Institute of Technology, Dept. of Mechanical Engineering, 2006.Includ...
Scaffolds are used in diverse tissue engineering applications as hosts for cell proliferation and ex...
The permeability of scaffolds and other three-dimensional constructs used for tissue engineering app...
Among various natural biopolymers, type I collagen gels have demonstrated the highest potential as b...
The anisotropic collagen architecture of an engineered cardiovascular tissue has a major impact on i...
This work presents a combined experimental-numerical framework for the biomechanical characterizatio...
Small diameter tissue-engineered arteries improve their mechanical and functional properties when th...
As mechanical properties of cell culture substrates matter, methods for mechanical characterization ...
A model is proposed to assess mechanical behaviour of tissue engineering scaffolds and predict their...
Mechanical stimulation in terms of fluid flow and mechanical strain can enhance the osteogenesis. Bi...
Construction of scaffolds is crucial for tissue engineering applications. Three dimensional (3D) sca...
Scaffolds for regenerative medicine applications should instruct cells with the appropriate signals,...
Tissue engineering has traditionally relied on the use of scaffolds as inert, durable materials for ...
INTRODUCTION: Advantages of synthetic polymers as a scaffolding material include the ability to prod...
Degradable porous polymeric structures are attractive candidates for biological tissue scaffolds, an...
Thesis (Sc. D.)--Massachusetts Institute of Technology, Dept. of Mechanical Engineering, 2006.Includ...
Scaffolds are used in diverse tissue engineering applications as hosts for cell proliferation and ex...
The permeability of scaffolds and other three-dimensional constructs used for tissue engineering app...
Among various natural biopolymers, type I collagen gels have demonstrated the highest potential as b...
The anisotropic collagen architecture of an engineered cardiovascular tissue has a major impact on i...
This work presents a combined experimental-numerical framework for the biomechanical characterizatio...
Small diameter tissue-engineered arteries improve their mechanical and functional properties when th...
As mechanical properties of cell culture substrates matter, methods for mechanical characterization ...
A model is proposed to assess mechanical behaviour of tissue engineering scaffolds and predict their...
Mechanical stimulation in terms of fluid flow and mechanical strain can enhance the osteogenesis. Bi...
Construction of scaffolds is crucial for tissue engineering applications. Three dimensional (3D) sca...
Scaffolds for regenerative medicine applications should instruct cells with the appropriate signals,...
Tissue engineering has traditionally relied on the use of scaffolds as inert, durable materials for ...
INTRODUCTION: Advantages of synthetic polymers as a scaffolding material include the ability to prod...
Degradable porous polymeric structures are attractive candidates for biological tissue scaffolds, an...
Thesis (Sc. D.)--Massachusetts Institute of Technology, Dept. of Mechanical Engineering, 2006.Includ...