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Designing 3D Mesenchymal Stem Cell Sheets Merging Magnetic and Fluorescent Features: When Cell Sheet Technology Meets Image-Guided Cell Therapy

Cell sheet technology opens new perspectives in tissue regeneration therapy by providing readily implantable, scaffold-free 3D tissue constructs. Many studies have focused on the therapeutic effects of cell sheet implantation while relatively little attention has concerned the fate of the implanted...

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Autores principales: Rahmi, Gabriel, Pidial, Laetitia, Silva, Amanda K. A., Blondiaux, Eléonore, Meresse, Bertrand, Gazeau, Florence, Autret, Gwennhael, Balvay, Daniel, Cuenod, Charles André, Perretta, Silvana, Tavitian, Bertrand, Wilhelm, Claire, Cellier, Christophe, Clément, Olivier
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4805667/
https://www.ncbi.nlm.nih.gov/pubmed/27022420
http://dx.doi.org/10.7150/thno.14064
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author Rahmi, Gabriel
Pidial, Laetitia
Silva, Amanda K. A.
Blondiaux, Eléonore
Meresse, Bertrand
Gazeau, Florence
Autret, Gwennhael
Balvay, Daniel
Cuenod, Charles André
Perretta, Silvana
Tavitian, Bertrand
Wilhelm, Claire
Cellier, Christophe
Clément, Olivier
author_facet Rahmi, Gabriel
Pidial, Laetitia
Silva, Amanda K. A.
Blondiaux, Eléonore
Meresse, Bertrand
Gazeau, Florence
Autret, Gwennhael
Balvay, Daniel
Cuenod, Charles André
Perretta, Silvana
Tavitian, Bertrand
Wilhelm, Claire
Cellier, Christophe
Clément, Olivier
author_sort Rahmi, Gabriel
collection PubMed
description Cell sheet technology opens new perspectives in tissue regeneration therapy by providing readily implantable, scaffold-free 3D tissue constructs. Many studies have focused on the therapeutic effects of cell sheet implantation while relatively little attention has concerned the fate of the implanted cells in vivo. The aim of the present study was to track longitudinally the cells implanted in the cell sheets in vivo in target tissues. To this end we (i) endowed bone marrow-derived mesenchymal stem cells (BMMSCs) with imaging properties by double labeling with fluorescent and magnetic tracers, (ii) applied BMMSC cell sheets to a digestive fistula model in mice, (iii) tracked the BMMSC fate in vivo by MRI and probe-based confocal laser endomicroscopy (pCLE), and (iv) quantified healing of the fistula. We show that image-guided longitudinal follow-up can document both the fate of the cell sheet-derived BMMSCs and their healing capacity. Moreover, our theranostic approach informs on the mechanism of action, either directly by integration of cell sheet-derived BMMSCs into the host tissue or indirectly through the release of signaling molecules in the host tissue. Multimodal imaging and clinical evaluation converged to attest that cell sheet grafting resulted in minimal clinical inflammation, improved fistula healing, reduced tissue fibrosis and enhanced microvasculature density. At the molecular level, cell sheet transplantation induced an increase in the expression of anti-inflammatory cytokines (TGF-ß2 and IL-10) and host intestinal growth factors involved in tissue repair (EGF and VEGF). Multimodal imaging is useful for tracking cell sheets and for noninvasive follow-up of their regenerative properties.
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spelling pubmed-48056672016-03-28 Designing 3D Mesenchymal Stem Cell Sheets Merging Magnetic and Fluorescent Features: When Cell Sheet Technology Meets Image-Guided Cell Therapy Rahmi, Gabriel Pidial, Laetitia Silva, Amanda K. A. Blondiaux, Eléonore Meresse, Bertrand Gazeau, Florence Autret, Gwennhael Balvay, Daniel Cuenod, Charles André Perretta, Silvana Tavitian, Bertrand Wilhelm, Claire Cellier, Christophe Clément, Olivier Theranostics Research Paper Cell sheet technology opens new perspectives in tissue regeneration therapy by providing readily implantable, scaffold-free 3D tissue constructs. Many studies have focused on the therapeutic effects of cell sheet implantation while relatively little attention has concerned the fate of the implanted cells in vivo. The aim of the present study was to track longitudinally the cells implanted in the cell sheets in vivo in target tissues. To this end we (i) endowed bone marrow-derived mesenchymal stem cells (BMMSCs) with imaging properties by double labeling with fluorescent and magnetic tracers, (ii) applied BMMSC cell sheets to a digestive fistula model in mice, (iii) tracked the BMMSC fate in vivo by MRI and probe-based confocal laser endomicroscopy (pCLE), and (iv) quantified healing of the fistula. We show that image-guided longitudinal follow-up can document both the fate of the cell sheet-derived BMMSCs and their healing capacity. Moreover, our theranostic approach informs on the mechanism of action, either directly by integration of cell sheet-derived BMMSCs into the host tissue or indirectly through the release of signaling molecules in the host tissue. Multimodal imaging and clinical evaluation converged to attest that cell sheet grafting resulted in minimal clinical inflammation, improved fistula healing, reduced tissue fibrosis and enhanced microvasculature density. At the molecular level, cell sheet transplantation induced an increase in the expression of anti-inflammatory cytokines (TGF-ß2 and IL-10) and host intestinal growth factors involved in tissue repair (EGF and VEGF). Multimodal imaging is useful for tracking cell sheets and for noninvasive follow-up of their regenerative properties. Ivyspring International Publisher 2016-03-21 /pmc/articles/PMC4805667/ /pubmed/27022420 http://dx.doi.org/10.7150/thno.14064 Text en © Ivyspring International Publisher. Reproduction is permitted for personal, noncommercial use, provided that the article is in whole, unmodified, and properly cited. See http://ivyspring.com/terms for terms and conditions.
spellingShingle Research Paper
Rahmi, Gabriel
Pidial, Laetitia
Silva, Amanda K. A.
Blondiaux, Eléonore
Meresse, Bertrand
Gazeau, Florence
Autret, Gwennhael
Balvay, Daniel
Cuenod, Charles André
Perretta, Silvana
Tavitian, Bertrand
Wilhelm, Claire
Cellier, Christophe
Clément, Olivier
Designing 3D Mesenchymal Stem Cell Sheets Merging Magnetic and Fluorescent Features: When Cell Sheet Technology Meets Image-Guided Cell Therapy
title Designing 3D Mesenchymal Stem Cell Sheets Merging Magnetic and Fluorescent Features: When Cell Sheet Technology Meets Image-Guided Cell Therapy
title_full Designing 3D Mesenchymal Stem Cell Sheets Merging Magnetic and Fluorescent Features: When Cell Sheet Technology Meets Image-Guided Cell Therapy
title_fullStr Designing 3D Mesenchymal Stem Cell Sheets Merging Magnetic and Fluorescent Features: When Cell Sheet Technology Meets Image-Guided Cell Therapy
title_full_unstemmed Designing 3D Mesenchymal Stem Cell Sheets Merging Magnetic and Fluorescent Features: When Cell Sheet Technology Meets Image-Guided Cell Therapy
title_short Designing 3D Mesenchymal Stem Cell Sheets Merging Magnetic and Fluorescent Features: When Cell Sheet Technology Meets Image-Guided Cell Therapy
title_sort designing 3d mesenchymal stem cell sheets merging magnetic and fluorescent features: when cell sheet technology meets image-guided cell therapy
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4805667/
https://www.ncbi.nlm.nih.gov/pubmed/27022420
http://dx.doi.org/10.7150/thno.14064
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