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Appropriate Scaffold Selection for CNS Tissue Engineering

Cellular transplantation, due to the low regenerative capacity of the Central Nervous System (CNS), is one of the promising strategies in the treatment of neurodegenerative diseases. The design and application of scaffolds mimicking the CNS extracellular matrix features (biochemical, bioelectrical,...

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Autores principales: Shafiee, Akram, Ahmadi, Hanie, Taheri, Behnaz, Hosseinzadeh, Simzar, Fatahi, Yousef, Soleimani, Masoud, Atyabi, Fatemeh, Dinarvand, Rassoul
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Avicenna Research Institute 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7502166/
https://www.ncbi.nlm.nih.gov/pubmed/33014312
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author Shafiee, Akram
Ahmadi, Hanie
Taheri, Behnaz
Hosseinzadeh, Simzar
Fatahi, Yousef
Soleimani, Masoud
Atyabi, Fatemeh
Dinarvand, Rassoul
author_facet Shafiee, Akram
Ahmadi, Hanie
Taheri, Behnaz
Hosseinzadeh, Simzar
Fatahi, Yousef
Soleimani, Masoud
Atyabi, Fatemeh
Dinarvand, Rassoul
author_sort Shafiee, Akram
collection PubMed
description Cellular transplantation, due to the low regenerative capacity of the Central Nervous System (CNS), is one of the promising strategies in the treatment of neurodegenerative diseases. The design and application of scaffolds mimicking the CNS extracellular matrix features (biochemical, bioelectrical, and biomechanical), which affect the cellular fate, are important to achieve proper efficiency in cell survival, proliferation, and differentiation as well as integration with the surrounding tissue. Different studies on natural materials demonstrated that hydrogels made from natural materials mimic the extracellular matrix and supply microenvironment for cell adhesion and proliferation. The design and development of cellular microstructures suitable for neural tissue engineering purposes require a comprehensive knowledge of neuroscience, cell biology, nanotechnology, polymers, mechanobiology, and biochemistry. In this review, an attempt was made to investigate this multidisciplinary field and its multifactorial effects on the CNS microenvironment. Many strategies have been used to simulate extrinsic cues, which can improve cellular behavior toward neural lineage. In this study, parallel and align, soft and injectable, conductive, and bioprinting scaffolds were reviewed which have indicated some successes in the field. Among different systems, three-Dimensional (3D) bioprinting is a powerful, highly modifiable, and highly precise strategy, which has a high architectural similarity to tissue structure and is able to construct controllable tissue models. 3D bioprinting scaffolds induce cell attachment, proliferation, and differentiation and promote the diffusion of nutrients. This method provides exceptional versatility in cell positioning that is very suitable for the complex Extracellular Matrix (ECM) of the nervous system.
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spelling pubmed-75021662020-10-02 Appropriate Scaffold Selection for CNS Tissue Engineering Shafiee, Akram Ahmadi, Hanie Taheri, Behnaz Hosseinzadeh, Simzar Fatahi, Yousef Soleimani, Masoud Atyabi, Fatemeh Dinarvand, Rassoul Avicenna J Med Biotechnol Review Article Cellular transplantation, due to the low regenerative capacity of the Central Nervous System (CNS), is one of the promising strategies in the treatment of neurodegenerative diseases. The design and application of scaffolds mimicking the CNS extracellular matrix features (biochemical, bioelectrical, and biomechanical), which affect the cellular fate, are important to achieve proper efficiency in cell survival, proliferation, and differentiation as well as integration with the surrounding tissue. Different studies on natural materials demonstrated that hydrogels made from natural materials mimic the extracellular matrix and supply microenvironment for cell adhesion and proliferation. The design and development of cellular microstructures suitable for neural tissue engineering purposes require a comprehensive knowledge of neuroscience, cell biology, nanotechnology, polymers, mechanobiology, and biochemistry. In this review, an attempt was made to investigate this multidisciplinary field and its multifactorial effects on the CNS microenvironment. Many strategies have been used to simulate extrinsic cues, which can improve cellular behavior toward neural lineage. In this study, parallel and align, soft and injectable, conductive, and bioprinting scaffolds were reviewed which have indicated some successes in the field. Among different systems, three-Dimensional (3D) bioprinting is a powerful, highly modifiable, and highly precise strategy, which has a high architectural similarity to tissue structure and is able to construct controllable tissue models. 3D bioprinting scaffolds induce cell attachment, proliferation, and differentiation and promote the diffusion of nutrients. This method provides exceptional versatility in cell positioning that is very suitable for the complex Extracellular Matrix (ECM) of the nervous system. Avicenna Research Institute 2020 /pmc/articles/PMC7502166/ /pubmed/33014312 Text en Copyright© 2020 Avicenna Research Institute http://creativecommons.org/licenses/by/3.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Review Article
Shafiee, Akram
Ahmadi, Hanie
Taheri, Behnaz
Hosseinzadeh, Simzar
Fatahi, Yousef
Soleimani, Masoud
Atyabi, Fatemeh
Dinarvand, Rassoul
Appropriate Scaffold Selection for CNS Tissue Engineering
title Appropriate Scaffold Selection for CNS Tissue Engineering
title_full Appropriate Scaffold Selection for CNS Tissue Engineering
title_fullStr Appropriate Scaffold Selection for CNS Tissue Engineering
title_full_unstemmed Appropriate Scaffold Selection for CNS Tissue Engineering
title_short Appropriate Scaffold Selection for CNS Tissue Engineering
title_sort appropriate scaffold selection for cns tissue engineering
topic Review Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7502166/
https://www.ncbi.nlm.nih.gov/pubmed/33014312
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