To engineer tissue-like structures, cells must organize themselves into three-dimensional (3D) networks that mimic the native tissue microarchitecture. Microfabricated hydrogel substrates provide a potentially useful platform for directing cells into biomimetic tissue architecture in vitro. Here, we present microgrooved methacrylated gelatin hydrogels as a suitable platform to build muscle-like fibrous structures in a facile and highly reproducible fashion. Microgrooved hydrogel substrates with two different ridge sizes (50 and 100 [mu m) were fabricated to assess the effect of the distance between engineered myofibers on the orientation of the bridging C2C12 myoblasts and the formation of the resulting multinucleated myotubes. It was shown...
This thesis focuses on using microtechnology to advance the field of tissue engineering by using wav...
Tissue engineering methods that aim to mimic the hierarchical structure of skeletal muscle tissue ha...
This thesis focuses on using microtechnology to advance the field of tissue engineering by using wav...
To engineer tissue-like structures, cells must organize themselves into three-dimensional (3D) netwo...
In this work, the influence of mechanical stiffness and geometrical confinement on the 3D culture of...
In this work, the influence of mechanical stiffness and geometrical confinement on the 3D culture of...
In this work, the influence of mechanical stiffness and geometrical confinement on the 3D culture of...
In this work, the influence of mechanical stiffness and geometrical confinement on the 3D culture of...
In this work, the influence of mechanical stiffness and geometrical confinement on the 3D culture of...
The development of new, viable, and functional engineered tissue is a complex and challenging task. ...
The skeletal muscle is the largest tissue of the human body. Its main function is to generate contra...
We present a new strategy for the fabrication of artificial skeletal muscle tissue with functional m...
We present a new strategy for the fabrication of artificial skeletal muscle tissue with functional m...
We present a new strategy for the fabrication of artificial skeletal muscle tissue with functional m...
The development of new, viable, and functional engineered tissue is a complex and challenging task. ...
This thesis focuses on using microtechnology to advance the field of tissue engineering by using wav...
Tissue engineering methods that aim to mimic the hierarchical structure of skeletal muscle tissue ha...
This thesis focuses on using microtechnology to advance the field of tissue engineering by using wav...
To engineer tissue-like structures, cells must organize themselves into three-dimensional (3D) netwo...
In this work, the influence of mechanical stiffness and geometrical confinement on the 3D culture of...
In this work, the influence of mechanical stiffness and geometrical confinement on the 3D culture of...
In this work, the influence of mechanical stiffness and geometrical confinement on the 3D culture of...
In this work, the influence of mechanical stiffness and geometrical confinement on the 3D culture of...
In this work, the influence of mechanical stiffness and geometrical confinement on the 3D culture of...
The development of new, viable, and functional engineered tissue is a complex and challenging task. ...
The skeletal muscle is the largest tissue of the human body. Its main function is to generate contra...
We present a new strategy for the fabrication of artificial skeletal muscle tissue with functional m...
We present a new strategy for the fabrication of artificial skeletal muscle tissue with functional m...
We present a new strategy for the fabrication of artificial skeletal muscle tissue with functional m...
The development of new, viable, and functional engineered tissue is a complex and challenging task. ...
This thesis focuses on using microtechnology to advance the field of tissue engineering by using wav...
Tissue engineering methods that aim to mimic the hierarchical structure of skeletal muscle tissue ha...
This thesis focuses on using microtechnology to advance the field of tissue engineering by using wav...