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Conductive Polymeric-Based Electroactive Scaffolds for Tissue Engineering Applications: Current Progress and Challenges from Biomaterials and Manufacturing Perspectives

The practice of combining external stimulation therapy alongside stimuli-responsive bio-scaffolds has shown massive potential for tissue engineering applications. One promising example is the combination of electrical stimulation (ES) and electroactive scaffolds because ES could enhance cell adhesio...

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Autores principales: Marsudi, Maradhana Agung, Ariski, Ridhola Tri, Wibowo, Arie, Cooper, Glen, Barlian, Anggraini, Rachmantyo, Riska, Bartolo, Paulo J. D. S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8584045/
https://www.ncbi.nlm.nih.gov/pubmed/34768972
http://dx.doi.org/10.3390/ijms222111543
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author Marsudi, Maradhana Agung
Ariski, Ridhola Tri
Wibowo, Arie
Cooper, Glen
Barlian, Anggraini
Rachmantyo, Riska
Bartolo, Paulo J. D. S.
author_facet Marsudi, Maradhana Agung
Ariski, Ridhola Tri
Wibowo, Arie
Cooper, Glen
Barlian, Anggraini
Rachmantyo, Riska
Bartolo, Paulo J. D. S.
author_sort Marsudi, Maradhana Agung
collection PubMed
description The practice of combining external stimulation therapy alongside stimuli-responsive bio-scaffolds has shown massive potential for tissue engineering applications. One promising example is the combination of electrical stimulation (ES) and electroactive scaffolds because ES could enhance cell adhesion and proliferation as well as modulating cellular specialization. Even though electroactive scaffolds have the potential to revolutionize the field of tissue engineering due to their ability to distribute ES directly to the target tissues, the development of effective electroactive scaffolds with specific properties remains a major issue in their practical uses. Conductive polymers (CPs) offer ease of modification that allows for tailoring the scaffold’s various properties, making them an attractive option for conductive component in electroactive scaffolds. This review provides an up-to-date narrative of the progress of CPs-based electroactive scaffolds and the challenge of their use in various tissue engineering applications from biomaterials perspectives. The general issues with CP-based scaffolds relevant to its application as electroactive scaffolds were discussed, followed by a more specific discussion in their applications for specific tissues, including bone, nerve, skin, skeletal muscle and cardiac muscle scaffolds. Furthermore, this review also highlighted the importance of the manufacturing process relative to the scaffold’s performance, with particular emphasis on additive manufacturing, and various strategies to overcome the CPs’ limitations in the development of electroactive scaffolds.
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spelling pubmed-85840452021-11-12 Conductive Polymeric-Based Electroactive Scaffolds for Tissue Engineering Applications: Current Progress and Challenges from Biomaterials and Manufacturing Perspectives Marsudi, Maradhana Agung Ariski, Ridhola Tri Wibowo, Arie Cooper, Glen Barlian, Anggraini Rachmantyo, Riska Bartolo, Paulo J. D. S. Int J Mol Sci Review The practice of combining external stimulation therapy alongside stimuli-responsive bio-scaffolds has shown massive potential for tissue engineering applications. One promising example is the combination of electrical stimulation (ES) and electroactive scaffolds because ES could enhance cell adhesion and proliferation as well as modulating cellular specialization. Even though electroactive scaffolds have the potential to revolutionize the field of tissue engineering due to their ability to distribute ES directly to the target tissues, the development of effective electroactive scaffolds with specific properties remains a major issue in their practical uses. Conductive polymers (CPs) offer ease of modification that allows for tailoring the scaffold’s various properties, making them an attractive option for conductive component in electroactive scaffolds. This review provides an up-to-date narrative of the progress of CPs-based electroactive scaffolds and the challenge of their use in various tissue engineering applications from biomaterials perspectives. The general issues with CP-based scaffolds relevant to its application as electroactive scaffolds were discussed, followed by a more specific discussion in their applications for specific tissues, including bone, nerve, skin, skeletal muscle and cardiac muscle scaffolds. Furthermore, this review also highlighted the importance of the manufacturing process relative to the scaffold’s performance, with particular emphasis on additive manufacturing, and various strategies to overcome the CPs’ limitations in the development of electroactive scaffolds. MDPI 2021-10-26 /pmc/articles/PMC8584045/ /pubmed/34768972 http://dx.doi.org/10.3390/ijms222111543 Text en © 2021 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Review
Marsudi, Maradhana Agung
Ariski, Ridhola Tri
Wibowo, Arie
Cooper, Glen
Barlian, Anggraini
Rachmantyo, Riska
Bartolo, Paulo J. D. S.
Conductive Polymeric-Based Electroactive Scaffolds for Tissue Engineering Applications: Current Progress and Challenges from Biomaterials and Manufacturing Perspectives
title Conductive Polymeric-Based Electroactive Scaffolds for Tissue Engineering Applications: Current Progress and Challenges from Biomaterials and Manufacturing Perspectives
title_full Conductive Polymeric-Based Electroactive Scaffolds for Tissue Engineering Applications: Current Progress and Challenges from Biomaterials and Manufacturing Perspectives
title_fullStr Conductive Polymeric-Based Electroactive Scaffolds for Tissue Engineering Applications: Current Progress and Challenges from Biomaterials and Manufacturing Perspectives
title_full_unstemmed Conductive Polymeric-Based Electroactive Scaffolds for Tissue Engineering Applications: Current Progress and Challenges from Biomaterials and Manufacturing Perspectives
title_short Conductive Polymeric-Based Electroactive Scaffolds for Tissue Engineering Applications: Current Progress and Challenges from Biomaterials and Manufacturing Perspectives
title_sort conductive polymeric-based electroactive scaffolds for tissue engineering applications: current progress and challenges from biomaterials and manufacturing perspectives
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8584045/
https://www.ncbi.nlm.nih.gov/pubmed/34768972
http://dx.doi.org/10.3390/ijms222111543
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