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Advances in biodegradable 3D printed scaffolds with carbon-based nanomaterials for bone regeneration

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IIT-20-142A.pdf (3.595Mb)
Date
2020-11-02
Author
López de Armentia Hernández, Sara
del Real Romero, Juan Carlos
Paz Jiménez, Eva
Dunne, Nicholas
Estado
info:eu-repo/semantics/publishedVersion
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Abstract
 
 
Bone possesses an inherent capacity to fix itself. However, when a defect larger than a critical size appears, external solutions must be applied. Traditionally, an autograft has been the most used solution in these situations. However, it presents some issues such as donor-site morbidity. In this context, porous biodegradable scaffolds have emerged as an interesting solution. They act as external support for cell growth and degrade when the defect is repaired. For an adequate performance, these scaffolds must meet specific requirements: biocompatibility, interconnected porosity, mechanical properties and biodegradability. To obtain the required porosity, many methods have conventionally been used (e.g., electrospinning, freeze-drying and salt-leaching). However, from the development of additive manufacturing methods a promising solution for this application has been proposed since such methods allow the complete customisation and control of scaffold geometry and porosity. Furthermore, carbon-based nanomaterials present the potential to impart osteoconductivity and antimicrobial properties and reinforce the matrix from a mechanical perspective. These properties make them ideal for use as nanomaterials to improve the properties and performance of scaffolds for bone tissue engineering. This work explores the potential research opportunities and challenges of 3D printed biodegradable composite-based scaffolds containing carbon-based nanomaterials for bone tissue engineering applications.
 
URI
https:doi.org10.3390ma13225083
Advances in biodegradable 3D printed scaffolds with carbon-based nanomaterials for bone regeneration
Tipo de Actividad
Artículos en revistas
ISSN
1996-1944
Materias/ categorías / ODS
Instituto de Investigación Tecnológica (IIT)
Palabras Clave

biodegradable scaffolds; bone tissue engineering; carbon-based nanomaterials; additive manufacturing
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