© AlphaMed Press. Bone requires dynamic mechanical stimulation to form and maintain functional tissue, yet mechanical stimuli are often lacking in many therapeutic approaches for bone regeneration. Magnetic nanoparticles provide a method for delivering these stimuli by directly targeting cell-surface mechanosensors and transducing forces from an external magnetic field, resulting in remotely controllable mechanotransduction. In this investigation, functionalized magnetic nanoparticles were attached to either the mechanically gated TREK1 K+ channel or the (integrin) RGD-binding domains of human mesenchymal stem cells. These cells were microinjected into an ex vivo chick fetal femur (embryonic day 11) that was cultured organotypically in vitr...
Mechanical cues are employed to promote stem cell differentiation and functional tissue formation in...
Stem cells have tremendous applications in the field of regenerative medicine and tissue engineering...
Cells can sense physical cues in the surrounding microenvironment and react by changing their functi...
© AlphaMed Press. Bone requires dynamic mechanical stimulation to form and maintain functional tissu...
The role of biomechanical stimuli, or mechanotransduction, in normal bone homeostasis and repair is ...
Targeting and differentiating stem cells at sites of injury and repair is an exciting and promising ...
Magnetic ion channel activation technology uses superparamagnetic nanoparticles conjugated with targ...
The role of biomechanical stimuli, or mechanotransduction, in normal bone homeostasis and repair is ...
The use of magnetic nanoparticles (MNPs) towards the musculoskeletal tissues has been the focus of m...
Chondrogenic commitments of mesenchymal stem cells (MSCs) require 3D cellular organization. Furtherm...
The necessity of new clinical approaches regarding musculoskeletal system regeneration is evident. N...
Large bone defects with limited intrinsic regenerative potential represent a major surgical challeng...
Magnetic nanoparticles are promising new tools for therapeutic applications, such as magnetic nanopa...
Mechanical cues are employed to promote stem cell differentiation and functional tissue formation in...
Purpose: Iron oxide based magnetic nanoparticles (MNP) are versatile tools in biology and medicine. ...
Mechanical cues are employed to promote stem cell differentiation and functional tissue formation in...
Stem cells have tremendous applications in the field of regenerative medicine and tissue engineering...
Cells can sense physical cues in the surrounding microenvironment and react by changing their functi...
© AlphaMed Press. Bone requires dynamic mechanical stimulation to form and maintain functional tissu...
The role of biomechanical stimuli, or mechanotransduction, in normal bone homeostasis and repair is ...
Targeting and differentiating stem cells at sites of injury and repair is an exciting and promising ...
Magnetic ion channel activation technology uses superparamagnetic nanoparticles conjugated with targ...
The role of biomechanical stimuli, or mechanotransduction, in normal bone homeostasis and repair is ...
The use of magnetic nanoparticles (MNPs) towards the musculoskeletal tissues has been the focus of m...
Chondrogenic commitments of mesenchymal stem cells (MSCs) require 3D cellular organization. Furtherm...
The necessity of new clinical approaches regarding musculoskeletal system regeneration is evident. N...
Large bone defects with limited intrinsic regenerative potential represent a major surgical challeng...
Magnetic nanoparticles are promising new tools for therapeutic applications, such as magnetic nanopa...
Mechanical cues are employed to promote stem cell differentiation and functional tissue formation in...
Purpose: Iron oxide based magnetic nanoparticles (MNP) are versatile tools in biology and medicine. ...
Mechanical cues are employed to promote stem cell differentiation and functional tissue formation in...
Stem cells have tremendous applications in the field of regenerative medicine and tissue engineering...
Cells can sense physical cues in the surrounding microenvironment and react by changing their functi...