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X-ray phase-contrast computed tomography visualizes the microstructure and degradation profile of implanted biodegradable scaffolds after spinal cord injury

Tissue engineering strategies for spinal cord repair are a primary focus of translational medicine after spinal cord injury (SCI). Many tissue engineering strategies employ three-dimensional scaffolds, which are made of biodegradable materials and have microstructure incorporated with viable cells a...

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Autores principales: Takashima, Kenta, Hoshino, Masato, Uesugi, Kentaro, Yagi, Naoto, Matsuda, Shojiro, Nakahira, Atsushi, Osumi, Noriko, Kohzuki, Masahiro, Onodera, Hiroshi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: International Union of Crystallography 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4294026/
https://www.ncbi.nlm.nih.gov/pubmed/25537600
http://dx.doi.org/10.1107/S160057751402270X
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author Takashima, Kenta
Hoshino, Masato
Uesugi, Kentaro
Yagi, Naoto
Matsuda, Shojiro
Nakahira, Atsushi
Osumi, Noriko
Kohzuki, Masahiro
Onodera, Hiroshi
author_facet Takashima, Kenta
Hoshino, Masato
Uesugi, Kentaro
Yagi, Naoto
Matsuda, Shojiro
Nakahira, Atsushi
Osumi, Noriko
Kohzuki, Masahiro
Onodera, Hiroshi
author_sort Takashima, Kenta
collection PubMed
description Tissue engineering strategies for spinal cord repair are a primary focus of translational medicine after spinal cord injury (SCI). Many tissue engineering strategies employ three-dimensional scaffolds, which are made of biodegradable materials and have microstructure incorporated with viable cells and bioactive molecules to promote new tissue generation and functional recovery after SCI. It is therefore important to develop an imaging system that visualizes both the microstructure of three-dimensional scaffolds and their degradation process after SCI. Here, X-ray phase-contrast computed tomography imaging based on the Talbot grating interferometer is described and it is shown how it can visualize the polyglycolic acid scaffold, including its microfibres, after implantation into the injured spinal cord. Furthermore, X-ray phase-contrast computed tomography images revealed that degradation occurred from the end to the centre of the braided scaffold in the 28 days after implantation into the injured spinal cord. The present report provides the first demonstration of an imaging technique that visualizes both the microstructure and degradation of biodegradable scaffolds in SCI research. X-ray phase-contrast imaging based on the Talbot grating interferometer is a versatile technique that can be used for a broad range of preclinical applications in tissue engineering strategies.
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spelling pubmed-42940262015-01-15 X-ray phase-contrast computed tomography visualizes the microstructure and degradation profile of implanted biodegradable scaffolds after spinal cord injury Takashima, Kenta Hoshino, Masato Uesugi, Kentaro Yagi, Naoto Matsuda, Shojiro Nakahira, Atsushi Osumi, Noriko Kohzuki, Masahiro Onodera, Hiroshi J Synchrotron Radiat Research Papers Tissue engineering strategies for spinal cord repair are a primary focus of translational medicine after spinal cord injury (SCI). Many tissue engineering strategies employ three-dimensional scaffolds, which are made of biodegradable materials and have microstructure incorporated with viable cells and bioactive molecules to promote new tissue generation and functional recovery after SCI. It is therefore important to develop an imaging system that visualizes both the microstructure of three-dimensional scaffolds and their degradation process after SCI. Here, X-ray phase-contrast computed tomography imaging based on the Talbot grating interferometer is described and it is shown how it can visualize the polyglycolic acid scaffold, including its microfibres, after implantation into the injured spinal cord. Furthermore, X-ray phase-contrast computed tomography images revealed that degradation occurred from the end to the centre of the braided scaffold in the 28 days after implantation into the injured spinal cord. The present report provides the first demonstration of an imaging technique that visualizes both the microstructure and degradation of biodegradable scaffolds in SCI research. X-ray phase-contrast imaging based on the Talbot grating interferometer is a versatile technique that can be used for a broad range of preclinical applications in tissue engineering strategies. International Union of Crystallography 2015-01-01 /pmc/articles/PMC4294026/ /pubmed/25537600 http://dx.doi.org/10.1107/S160057751402270X Text en © Kenta Takashima et al. 2015 http://creativecommons.org/licenses/by/2.0/uk/ This is an open-access article distributed under the terms of the Creative Commons Attribution Licence, which permits unrestricted use, distribution, and reproduction in any medium, provided the original authors and source are cited.
spellingShingle Research Papers
Takashima, Kenta
Hoshino, Masato
Uesugi, Kentaro
Yagi, Naoto
Matsuda, Shojiro
Nakahira, Atsushi
Osumi, Noriko
Kohzuki, Masahiro
Onodera, Hiroshi
X-ray phase-contrast computed tomography visualizes the microstructure and degradation profile of implanted biodegradable scaffolds after spinal cord injury
title X-ray phase-contrast computed tomography visualizes the microstructure and degradation profile of implanted biodegradable scaffolds after spinal cord injury
title_full X-ray phase-contrast computed tomography visualizes the microstructure and degradation profile of implanted biodegradable scaffolds after spinal cord injury
title_fullStr X-ray phase-contrast computed tomography visualizes the microstructure and degradation profile of implanted biodegradable scaffolds after spinal cord injury
title_full_unstemmed X-ray phase-contrast computed tomography visualizes the microstructure and degradation profile of implanted biodegradable scaffolds after spinal cord injury
title_short X-ray phase-contrast computed tomography visualizes the microstructure and degradation profile of implanted biodegradable scaffolds after spinal cord injury
title_sort x-ray phase-contrast computed tomography visualizes the microstructure and degradation profile of implanted biodegradable scaffolds after spinal cord injury
topic Research Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4294026/
https://www.ncbi.nlm.nih.gov/pubmed/25537600
http://dx.doi.org/10.1107/S160057751402270X
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