In this study, a novel robotic bioreactor is presented with capabilities of closed-loop control of force and displacement applied to a tissue scaffold and tissue scaffold stiffness calculation. These characteristics bring the potential of a robotic bioreactor that can optimize the mechanical properties of tissue constructs in order for them to match those of native tissues. Custom position and force control signals are designed to maintain a steady tensioning of the tissue scaffold while the latter one’s mechanical properties evolve in time. We propose a simple model to support the hypothesis that the stiffness of a cell-seeded scaffold increases over time, and thus force control signals need to be adjusted accordingly. The robotic bioreact...
Any significant in vitro evaluation of cartilage tissue engineering and cartilage repair strategies ...
The Regenerative medicine, or tissue engineering, is a multidisciplinary field involving engineering...
Three-dimensional (3D) printing represents a key technology for rapid prototyping, allowing easy, ra...
We report on the development of a bioreactor system for mechanical stimulation of musculoskeletal ti...
Physical stimuli are crucial for the structural and functional maturation of tissues both in vivo an...
Objective: Implantable technologies should be mechanically compliant with the tissue in order to max...
Tissue growth and remodeling are essential processes that should ensure long-term functionality of t...
132 p.The thesis reports on the design, fabrication and validation of a new generation of bioreactor...
Biological tissues are complex structures with changing mechanical properties depending on physiolog...
Mechanical loading is an important cue for directing stem cell fate and engineered tissue formation ...
The aim of tissue engineering (TE) is to restore tissue and organ functions with minimal host reject...
After myocardial infarction, the implantation of stem cell seeded scaffolds on the ischemic zone rep...
Tissue engineering has emerged as a promising approach to repair, replace or regenerate damaged tiss...
A range of bioreactors use linear actuators to apply tensile forces in vitro, but differences in the...
Any significant in vitro evaluation of cartilage tissue engineering and cartilage repair strategies ...
The Regenerative medicine, or tissue engineering, is a multidisciplinary field involving engineering...
Three-dimensional (3D) printing represents a key technology for rapid prototyping, allowing easy, ra...
We report on the development of a bioreactor system for mechanical stimulation of musculoskeletal ti...
Physical stimuli are crucial for the structural and functional maturation of tissues both in vivo an...
Objective: Implantable technologies should be mechanically compliant with the tissue in order to max...
Tissue growth and remodeling are essential processes that should ensure long-term functionality of t...
132 p.The thesis reports on the design, fabrication and validation of a new generation of bioreactor...
Biological tissues are complex structures with changing mechanical properties depending on physiolog...
Mechanical loading is an important cue for directing stem cell fate and engineered tissue formation ...
The aim of tissue engineering (TE) is to restore tissue and organ functions with minimal host reject...
After myocardial infarction, the implantation of stem cell seeded scaffolds on the ischemic zone rep...
Tissue engineering has emerged as a promising approach to repair, replace or regenerate damaged tiss...
A range of bioreactors use linear actuators to apply tensile forces in vitro, but differences in the...
Any significant in vitro evaluation of cartilage tissue engineering and cartilage repair strategies ...
The Regenerative medicine, or tissue engineering, is a multidisciplinary field involving engineering...
Three-dimensional (3D) printing represents a key technology for rapid prototyping, allowing easy, ra...