Cargando…

In Vivo Regeneration of Large Bone Defects by Cross-Linked Porous Hydrogel: A Pilot Study in Mice Combining Micro Tomography, Histological Analyses, Raman Spectroscopy and Synchrotron Infrared Imaging

The transplantation of engineered three-dimensional (3D) bone graft substitutes is a viable approach to the regeneration of severe bone defects. For large bone defects, an appropriate 3D scaffold may be necessary to support and stimulate bone regeneration, even when a sufficient number of cells and...

Descripción completa

Detalles Bibliográficos
Autores principales: Adachi, Tetsuya, Boschetto, Francesco, Miyamoto, Nao, Yamamoto, Toshiro, Marin, Elia, Zhu, Wenliang, Kanamura, Narisato, Tahara, Yoshiro, Akiyoshi, Kazunari, Mazda, Osam, Nishimura, Ichiro, Pezzotti, Giuseppe
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7579234/
https://www.ncbi.nlm.nih.gov/pubmed/32992758
http://dx.doi.org/10.3390/ma13194275
_version_ 1783598542779056128
author Adachi, Tetsuya
Boschetto, Francesco
Miyamoto, Nao
Yamamoto, Toshiro
Marin, Elia
Zhu, Wenliang
Kanamura, Narisato
Tahara, Yoshiro
Akiyoshi, Kazunari
Mazda, Osam
Nishimura, Ichiro
Pezzotti, Giuseppe
author_facet Adachi, Tetsuya
Boschetto, Francesco
Miyamoto, Nao
Yamamoto, Toshiro
Marin, Elia
Zhu, Wenliang
Kanamura, Narisato
Tahara, Yoshiro
Akiyoshi, Kazunari
Mazda, Osam
Nishimura, Ichiro
Pezzotti, Giuseppe
author_sort Adachi, Tetsuya
collection PubMed
description The transplantation of engineered three-dimensional (3D) bone graft substitutes is a viable approach to the regeneration of severe bone defects. For large bone defects, an appropriate 3D scaffold may be necessary to support and stimulate bone regeneration, even when a sufficient number of cells and cell cytokines are available. In this study, we evaluated the in vivo performance of a nanogel tectonic 3D scaffold specifically developed for bone tissue engineering, referred to as nanogel cross-linked porous-freeze-dry (NanoCliP-FD) gel. Samples were characterized by a combination of micro-computed tomography scanning, Raman spectroscopy, histological analyses, and synchrotron radiation–based Fourier transform infrared spectroscopy. NanoCliP-FD gel is a modified version of a previously developed nanogel cross-linked porous (NanoCliP) gel and was designed to achieve highly improved functionality in bone mineralization. Spectroscopic imaging of the bone tissue grown in vivo upon application of NanoCliP-FD gel enables an evaluation of bone quality and can be employed to judge the feasibility of NanoCliP-FD gel scaffolding as a therapeutic modality for bone diseases associated with large bone defects.
format Online
Article
Text
id pubmed-7579234
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-75792342020-10-29 In Vivo Regeneration of Large Bone Defects by Cross-Linked Porous Hydrogel: A Pilot Study in Mice Combining Micro Tomography, Histological Analyses, Raman Spectroscopy and Synchrotron Infrared Imaging Adachi, Tetsuya Boschetto, Francesco Miyamoto, Nao Yamamoto, Toshiro Marin, Elia Zhu, Wenliang Kanamura, Narisato Tahara, Yoshiro Akiyoshi, Kazunari Mazda, Osam Nishimura, Ichiro Pezzotti, Giuseppe Materials (Basel) Article The transplantation of engineered three-dimensional (3D) bone graft substitutes is a viable approach to the regeneration of severe bone defects. For large bone defects, an appropriate 3D scaffold may be necessary to support and stimulate bone regeneration, even when a sufficient number of cells and cell cytokines are available. In this study, we evaluated the in vivo performance of a nanogel tectonic 3D scaffold specifically developed for bone tissue engineering, referred to as nanogel cross-linked porous-freeze-dry (NanoCliP-FD) gel. Samples were characterized by a combination of micro-computed tomography scanning, Raman spectroscopy, histological analyses, and synchrotron radiation–based Fourier transform infrared spectroscopy. NanoCliP-FD gel is a modified version of a previously developed nanogel cross-linked porous (NanoCliP) gel and was designed to achieve highly improved functionality in bone mineralization. Spectroscopic imaging of the bone tissue grown in vivo upon application of NanoCliP-FD gel enables an evaluation of bone quality and can be employed to judge the feasibility of NanoCliP-FD gel scaffolding as a therapeutic modality for bone diseases associated with large bone defects. MDPI 2020-09-25 /pmc/articles/PMC7579234/ /pubmed/32992758 http://dx.doi.org/10.3390/ma13194275 Text en © 2020 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Adachi, Tetsuya
Boschetto, Francesco
Miyamoto, Nao
Yamamoto, Toshiro
Marin, Elia
Zhu, Wenliang
Kanamura, Narisato
Tahara, Yoshiro
Akiyoshi, Kazunari
Mazda, Osam
Nishimura, Ichiro
Pezzotti, Giuseppe
In Vivo Regeneration of Large Bone Defects by Cross-Linked Porous Hydrogel: A Pilot Study in Mice Combining Micro Tomography, Histological Analyses, Raman Spectroscopy and Synchrotron Infrared Imaging
title In Vivo Regeneration of Large Bone Defects by Cross-Linked Porous Hydrogel: A Pilot Study in Mice Combining Micro Tomography, Histological Analyses, Raman Spectroscopy and Synchrotron Infrared Imaging
title_full In Vivo Regeneration of Large Bone Defects by Cross-Linked Porous Hydrogel: A Pilot Study in Mice Combining Micro Tomography, Histological Analyses, Raman Spectroscopy and Synchrotron Infrared Imaging
title_fullStr In Vivo Regeneration of Large Bone Defects by Cross-Linked Porous Hydrogel: A Pilot Study in Mice Combining Micro Tomography, Histological Analyses, Raman Spectroscopy and Synchrotron Infrared Imaging
title_full_unstemmed In Vivo Regeneration of Large Bone Defects by Cross-Linked Porous Hydrogel: A Pilot Study in Mice Combining Micro Tomography, Histological Analyses, Raman Spectroscopy and Synchrotron Infrared Imaging
title_short In Vivo Regeneration of Large Bone Defects by Cross-Linked Porous Hydrogel: A Pilot Study in Mice Combining Micro Tomography, Histological Analyses, Raman Spectroscopy and Synchrotron Infrared Imaging
title_sort in vivo regeneration of large bone defects by cross-linked porous hydrogel: a pilot study in mice combining micro tomography, histological analyses, raman spectroscopy and synchrotron infrared imaging
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7579234/
https://www.ncbi.nlm.nih.gov/pubmed/32992758
http://dx.doi.org/10.3390/ma13194275
work_keys_str_mv AT adachitetsuya invivoregenerationoflargebonedefectsbycrosslinkedporoushydrogelapilotstudyinmicecombiningmicrotomographyhistologicalanalysesramanspectroscopyandsynchrotroninfraredimaging
AT boschettofrancesco invivoregenerationoflargebonedefectsbycrosslinkedporoushydrogelapilotstudyinmicecombiningmicrotomographyhistologicalanalysesramanspectroscopyandsynchrotroninfraredimaging
AT miyamotonao invivoregenerationoflargebonedefectsbycrosslinkedporoushydrogelapilotstudyinmicecombiningmicrotomographyhistologicalanalysesramanspectroscopyandsynchrotroninfraredimaging
AT yamamototoshiro invivoregenerationoflargebonedefectsbycrosslinkedporoushydrogelapilotstudyinmicecombiningmicrotomographyhistologicalanalysesramanspectroscopyandsynchrotroninfraredimaging
AT marinelia invivoregenerationoflargebonedefectsbycrosslinkedporoushydrogelapilotstudyinmicecombiningmicrotomographyhistologicalanalysesramanspectroscopyandsynchrotroninfraredimaging
AT zhuwenliang invivoregenerationoflargebonedefectsbycrosslinkedporoushydrogelapilotstudyinmicecombiningmicrotomographyhistologicalanalysesramanspectroscopyandsynchrotroninfraredimaging
AT kanamuranarisato invivoregenerationoflargebonedefectsbycrosslinkedporoushydrogelapilotstudyinmicecombiningmicrotomographyhistologicalanalysesramanspectroscopyandsynchrotroninfraredimaging
AT taharayoshiro invivoregenerationoflargebonedefectsbycrosslinkedporoushydrogelapilotstudyinmicecombiningmicrotomographyhistologicalanalysesramanspectroscopyandsynchrotroninfraredimaging
AT akiyoshikazunari invivoregenerationoflargebonedefectsbycrosslinkedporoushydrogelapilotstudyinmicecombiningmicrotomographyhistologicalanalysesramanspectroscopyandsynchrotroninfraredimaging
AT mazdaosam invivoregenerationoflargebonedefectsbycrosslinkedporoushydrogelapilotstudyinmicecombiningmicrotomographyhistologicalanalysesramanspectroscopyandsynchrotroninfraredimaging
AT nishimuraichiro invivoregenerationoflargebonedefectsbycrosslinkedporoushydrogelapilotstudyinmicecombiningmicrotomographyhistologicalanalysesramanspectroscopyandsynchrotroninfraredimaging
AT pezzottigiuseppe invivoregenerationoflargebonedefectsbycrosslinkedporoushydrogelapilotstudyinmicecombiningmicrotomographyhistologicalanalysesramanspectroscopyandsynchrotroninfraredimaging