In regenerative medicine and tissue engineering, the possibility to: (I) customize the shape and size of scaffolds, (II) develop highly mimicked tissues with a precise digital control, (III) manufacture complex structures and (IV) reduce the wastes related to the production process, are the main advantages of additive manufacturing technologies such as three-dimensional (3D) bioprinting. Specifically, this technique, which uses suitable hydrogel-based bioinks, enriched with cells and/or growth factors, has received significant consideration, especially in cartilage tissue engineering (CTE). In this field of interest, it may allow mimicking the complex native zonal hyaline cartilage organization by further enhancing its biological cues. Howe...
Bioprinting is a growing field with significant potential for developing engineered tissues with com...
Three-dimensional (3D) bioprinting techniques can be used for the fabrication of personalized, regen...
It has been widely perceived that three-dimensional bioprinted synthetic tissues and organ can be a ...
In regenerative medicine and tissue engineering, the possibility to: (I) customize the shape and siz...
Three-dimensional (3D) bioprinting is an emerging technology based on 3D digital imaging technology ...
Cartilage is an avascular tissue with extremely limited self-regeneration capabilities. At present, ...
Cartilage is an avascular tissue with extremely limited self-regeneration capabilities. At present, ...
Cartilage is an avascular tissue with extremely limited self-regeneration capabilities. At present, ...
Cartilage is an avascular tissue with extremely limited self-regeneration capabilities. At present, ...
Three-dimensional (3D) bioprinting has been applied to fabricate constructs that facilitate cartilag...
3D Bioprinting is a dynamically developing technology for tissue engineering and regenerative medici...
Bioprinting has gained immense attention and achieved the revolutionized progress for application in...
Bioprinting is a promising tool to fabricate well-organized cell-laden constructs for repair and reg...
The replacement of damaged, diseased, or non-functional organs and tissues through tissue engineerin...
Bioprinting is a growing field with significant potential for developing engineered tissues with com...
Bioprinting is a growing field with significant potential for developing engineered tissues with com...
Three-dimensional (3D) bioprinting techniques can be used for the fabrication of personalized, regen...
It has been widely perceived that three-dimensional bioprinted synthetic tissues and organ can be a ...
In regenerative medicine and tissue engineering, the possibility to: (I) customize the shape and siz...
Three-dimensional (3D) bioprinting is an emerging technology based on 3D digital imaging technology ...
Cartilage is an avascular tissue with extremely limited self-regeneration capabilities. At present, ...
Cartilage is an avascular tissue with extremely limited self-regeneration capabilities. At present, ...
Cartilage is an avascular tissue with extremely limited self-regeneration capabilities. At present, ...
Cartilage is an avascular tissue with extremely limited self-regeneration capabilities. At present, ...
Three-dimensional (3D) bioprinting has been applied to fabricate constructs that facilitate cartilag...
3D Bioprinting is a dynamically developing technology for tissue engineering and regenerative medici...
Bioprinting has gained immense attention and achieved the revolutionized progress for application in...
Bioprinting is a promising tool to fabricate well-organized cell-laden constructs for repair and reg...
The replacement of damaged, diseased, or non-functional organs and tissues through tissue engineerin...
Bioprinting is a growing field with significant potential for developing engineered tissues with com...
Bioprinting is a growing field with significant potential for developing engineered tissues with com...
Three-dimensional (3D) bioprinting techniques can be used for the fabrication of personalized, regen...
It has been widely perceived that three-dimensional bioprinted synthetic tissues and organ can be a ...