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Schwann cell-matrix coated PCL-MWCNT multifunctional nanofibrous scaffolds for neural regeneration

Nerve tissue engineering aims to create scaffolds that promote nerve regeneration in the damaged peripheral nervous system. However, there remain some challenges in the construction of scaffolds in terms of mechanical properties and cellular behaviour. The present work aims to develop multifunctiona...

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Autores principales: Al-Hadeethi, Yas, Nagarajan, Aishwarya, Hanuman, Srividya, Mohammed, Hiba, Vetekar, Aakanksha M., Thakur, Goutam, Dinh, Le N. M., Yao, Yin, Mkawi, E. M., Hussein, Mahmoud Ali, Agarwal, Vipul, Nune, Manasa
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9814035/
https://www.ncbi.nlm.nih.gov/pubmed/36712918
http://dx.doi.org/10.1039/d2ra05368c
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author Al-Hadeethi, Yas
Nagarajan, Aishwarya
Hanuman, Srividya
Mohammed, Hiba
Vetekar, Aakanksha M.
Thakur, Goutam
Dinh, Le N. M.
Yao, Yin
Mkawi, E. M.
Hussein, Mahmoud Ali
Agarwal, Vipul
Nune, Manasa
author_facet Al-Hadeethi, Yas
Nagarajan, Aishwarya
Hanuman, Srividya
Mohammed, Hiba
Vetekar, Aakanksha M.
Thakur, Goutam
Dinh, Le N. M.
Yao, Yin
Mkawi, E. M.
Hussein, Mahmoud Ali
Agarwal, Vipul
Nune, Manasa
author_sort Al-Hadeethi, Yas
collection PubMed
description Nerve tissue engineering aims to create scaffolds that promote nerve regeneration in the damaged peripheral nervous system. However, there remain some challenges in the construction of scaffolds in terms of mechanical properties and cellular behaviour. The present work aims to develop multifunctional implantable nanofibrous scaffolds for nerve regeneration. Using electrospinning, nanofibrous neat polycaprolactone (PCL) and PCL/multiwalled carbon nanotubes (PCL-MWCNT) composite scaffolds were prepared in random and aligned morphology. Schwann cells and their secreted biochemical factors are responsible for neuronal survival in the peripheral nervous system. Therefore, the acellular matrix of Schwann cells was spin-coated on the PCL-MWCNT scaffolds to aid nerve regeneration. Physicochemical and mechanical properties, and the in vitro cellular response of the developed nanofibrous were investigated. We observed no significant change in fibre diameter between neat PCL and PCL-MWCNT scaffolds regardless of the morphology. However, the inclusion of MWCNT reduced the mechanical strength of nanocomposite scaffolds compared to neat PCL. In vitro study revealed biocompatibility of the developed scaffolds both with and without an acellular matrix. Gene expression study revealed a significant increase in peripheral myelin protein (PMP22) expression on acellular matrix-coated PCL-MWCNT scaffolds compared to neat PCL counterparts. Overall, the results suggested Schwann cell matrix-coated PCL-MWCNT nanofibers as a promising conduit for peripheral nerve regeneration.
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spelling pubmed-98140352023-01-26 Schwann cell-matrix coated PCL-MWCNT multifunctional nanofibrous scaffolds for neural regeneration Al-Hadeethi, Yas Nagarajan, Aishwarya Hanuman, Srividya Mohammed, Hiba Vetekar, Aakanksha M. Thakur, Goutam Dinh, Le N. M. Yao, Yin Mkawi, E. M. Hussein, Mahmoud Ali Agarwal, Vipul Nune, Manasa RSC Adv Chemistry Nerve tissue engineering aims to create scaffolds that promote nerve regeneration in the damaged peripheral nervous system. However, there remain some challenges in the construction of scaffolds in terms of mechanical properties and cellular behaviour. The present work aims to develop multifunctional implantable nanofibrous scaffolds for nerve regeneration. Using electrospinning, nanofibrous neat polycaprolactone (PCL) and PCL/multiwalled carbon nanotubes (PCL-MWCNT) composite scaffolds were prepared in random and aligned morphology. Schwann cells and their secreted biochemical factors are responsible for neuronal survival in the peripheral nervous system. Therefore, the acellular matrix of Schwann cells was spin-coated on the PCL-MWCNT scaffolds to aid nerve regeneration. Physicochemical and mechanical properties, and the in vitro cellular response of the developed nanofibrous were investigated. We observed no significant change in fibre diameter between neat PCL and PCL-MWCNT scaffolds regardless of the morphology. However, the inclusion of MWCNT reduced the mechanical strength of nanocomposite scaffolds compared to neat PCL. In vitro study revealed biocompatibility of the developed scaffolds both with and without an acellular matrix. Gene expression study revealed a significant increase in peripheral myelin protein (PMP22) expression on acellular matrix-coated PCL-MWCNT scaffolds compared to neat PCL counterparts. Overall, the results suggested Schwann cell matrix-coated PCL-MWCNT nanofibers as a promising conduit for peripheral nerve regeneration. The Royal Society of Chemistry 2023-01-05 /pmc/articles/PMC9814035/ /pubmed/36712918 http://dx.doi.org/10.1039/d2ra05368c Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Al-Hadeethi, Yas
Nagarajan, Aishwarya
Hanuman, Srividya
Mohammed, Hiba
Vetekar, Aakanksha M.
Thakur, Goutam
Dinh, Le N. M.
Yao, Yin
Mkawi, E. M.
Hussein, Mahmoud Ali
Agarwal, Vipul
Nune, Manasa
Schwann cell-matrix coated PCL-MWCNT multifunctional nanofibrous scaffolds for neural regeneration
title Schwann cell-matrix coated PCL-MWCNT multifunctional nanofibrous scaffolds for neural regeneration
title_full Schwann cell-matrix coated PCL-MWCNT multifunctional nanofibrous scaffolds for neural regeneration
title_fullStr Schwann cell-matrix coated PCL-MWCNT multifunctional nanofibrous scaffolds for neural regeneration
title_full_unstemmed Schwann cell-matrix coated PCL-MWCNT multifunctional nanofibrous scaffolds for neural regeneration
title_short Schwann cell-matrix coated PCL-MWCNT multifunctional nanofibrous scaffolds for neural regeneration
title_sort schwann cell-matrix coated pcl-mwcnt multifunctional nanofibrous scaffolds for neural regeneration
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9814035/
https://www.ncbi.nlm.nih.gov/pubmed/36712918
http://dx.doi.org/10.1039/d2ra05368c
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