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Multicolor spectral photon counting CT monitors and quantifies therapeutic cells and their encapsulating scaffold in a model of brain damage

Rationale & aim: Various types of cell therapies are currently under investigation for the treatment of ischemic stroke patients. To bridge the gap between cell administration and therapeutic outcome, there is a need for non-invasive monitoring of these innovative therapeutic approaches. Spectra...

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Autores principales: Cuccione, Elisa, Chhour, Peter, Si-Mohamed, Salim, Dumot, Chloé, Kim, Johoon, Hubert, Violaine, Da Silva, Claire Crola, Vandamme, Marc, Chereul, Emmanuel, Balegamire, Joëlle, Chevalier, Yves, Berthezène, Yves, Boussel, Loïc, Douek, Philippe, Cormode, David P., Wiart, Marlène
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7256015/
https://www.ncbi.nlm.nih.gov/pubmed/32483519
http://dx.doi.org/10.7150/ntno.45354
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author Cuccione, Elisa
Chhour, Peter
Si-Mohamed, Salim
Dumot, Chloé
Kim, Johoon
Hubert, Violaine
Da Silva, Claire Crola
Vandamme, Marc
Chereul, Emmanuel
Balegamire, Joëlle
Chevalier, Yves
Berthezène, Yves
Boussel, Loïc
Douek, Philippe
Cormode, David P.
Wiart, Marlène
author_facet Cuccione, Elisa
Chhour, Peter
Si-Mohamed, Salim
Dumot, Chloé
Kim, Johoon
Hubert, Violaine
Da Silva, Claire Crola
Vandamme, Marc
Chereul, Emmanuel
Balegamire, Joëlle
Chevalier, Yves
Berthezène, Yves
Boussel, Loïc
Douek, Philippe
Cormode, David P.
Wiart, Marlène
author_sort Cuccione, Elisa
collection PubMed
description Rationale & aim: Various types of cell therapies are currently under investigation for the treatment of ischemic stroke patients. To bridge the gap between cell administration and therapeutic outcome, there is a need for non-invasive monitoring of these innovative therapeutic approaches. Spectral photon counting computed tomography (SPCCT) is a new imaging modality that may be suitable for cell tracking. SPCCT is the next generation of clinical CT that allows the selective visualization and quantification of multiple contrast agents. The aims of this study are: (i) to demonstrate the feasibility of using SPCCT to longitudinally monitor and quantify therapeutic cells, i.e. bone marrow-derived M2-polarized macrophages transplanted in rats with brain damage; and (ii) to evaluate the potential of this approach to discriminate M2-polarized macrophages from their encapsulating scaffold. Methods: Twenty one rats received an intralesional transplantation of bone marrow-derived M2-polarized macrophages. In the first set of experiments, cells were labeled with gold nanoparticles and tracked for up to two weeks post-injection in a monocolor study via gold K-edge imaging. In the second set of experiments, the same protocol was repeated for a bicolor study, in which the labeled cells are embedded in iodine nanoparticle-labeled scaffold. The amount of gold in the brain was longitudinally quantified using gold K-edge images reconstructed from SPCCT acquisition. Animals were sacrificed at different time points post-injection, and ICP-OES was used to validate the accuracy of gold quantification from SPCCT imaging. Results: The feasibility of therapeutic cell tracking was successfully demonstrated in brain-damaged rats with SPCCT imaging. The imaging modality enabled cell monitoring for up to 2 weeks post-injection, in a specific and quantitative manner. Differentiation of labeled cells and their embedding scaffold was also feasible with SPCCT imaging, with a detection limit as low as 5,000 cells in a voxel of 250 × 250 × 250 µm in dimension in vivo. Conclusion: Multicolor SPCCT is an innovative translational imaging tool that allows monitoring and quantification of therapeutic cells and their encapsulating scaffold transplanted in the damaged rat brain.
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spelling pubmed-72560152020-05-31 Multicolor spectral photon counting CT monitors and quantifies therapeutic cells and their encapsulating scaffold in a model of brain damage Cuccione, Elisa Chhour, Peter Si-Mohamed, Salim Dumot, Chloé Kim, Johoon Hubert, Violaine Da Silva, Claire Crola Vandamme, Marc Chereul, Emmanuel Balegamire, Joëlle Chevalier, Yves Berthezène, Yves Boussel, Loïc Douek, Philippe Cormode, David P. Wiart, Marlène Nanotheranostics Research Paper Rationale & aim: Various types of cell therapies are currently under investigation for the treatment of ischemic stroke patients. To bridge the gap between cell administration and therapeutic outcome, there is a need for non-invasive monitoring of these innovative therapeutic approaches. Spectral photon counting computed tomography (SPCCT) is a new imaging modality that may be suitable for cell tracking. SPCCT is the next generation of clinical CT that allows the selective visualization and quantification of multiple contrast agents. The aims of this study are: (i) to demonstrate the feasibility of using SPCCT to longitudinally monitor and quantify therapeutic cells, i.e. bone marrow-derived M2-polarized macrophages transplanted in rats with brain damage; and (ii) to evaluate the potential of this approach to discriminate M2-polarized macrophages from their encapsulating scaffold. Methods: Twenty one rats received an intralesional transplantation of bone marrow-derived M2-polarized macrophages. In the first set of experiments, cells were labeled with gold nanoparticles and tracked for up to two weeks post-injection in a monocolor study via gold K-edge imaging. In the second set of experiments, the same protocol was repeated for a bicolor study, in which the labeled cells are embedded in iodine nanoparticle-labeled scaffold. The amount of gold in the brain was longitudinally quantified using gold K-edge images reconstructed from SPCCT acquisition. Animals were sacrificed at different time points post-injection, and ICP-OES was used to validate the accuracy of gold quantification from SPCCT imaging. Results: The feasibility of therapeutic cell tracking was successfully demonstrated in brain-damaged rats with SPCCT imaging. The imaging modality enabled cell monitoring for up to 2 weeks post-injection, in a specific and quantitative manner. Differentiation of labeled cells and their embedding scaffold was also feasible with SPCCT imaging, with a detection limit as low as 5,000 cells in a voxel of 250 × 250 × 250 µm in dimension in vivo. Conclusion: Multicolor SPCCT is an innovative translational imaging tool that allows monitoring and quantification of therapeutic cells and their encapsulating scaffold transplanted in the damaged rat brain. Ivyspring International Publisher 2020-04-22 /pmc/articles/PMC7256015/ /pubmed/32483519 http://dx.doi.org/10.7150/ntno.45354 Text en © The author(s) This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/). See http://ivyspring.com/terms for full terms and conditions.
spellingShingle Research Paper
Cuccione, Elisa
Chhour, Peter
Si-Mohamed, Salim
Dumot, Chloé
Kim, Johoon
Hubert, Violaine
Da Silva, Claire Crola
Vandamme, Marc
Chereul, Emmanuel
Balegamire, Joëlle
Chevalier, Yves
Berthezène, Yves
Boussel, Loïc
Douek, Philippe
Cormode, David P.
Wiart, Marlène
Multicolor spectral photon counting CT monitors and quantifies therapeutic cells and their encapsulating scaffold in a model of brain damage
title Multicolor spectral photon counting CT monitors and quantifies therapeutic cells and their encapsulating scaffold in a model of brain damage
title_full Multicolor spectral photon counting CT monitors and quantifies therapeutic cells and their encapsulating scaffold in a model of brain damage
title_fullStr Multicolor spectral photon counting CT monitors and quantifies therapeutic cells and their encapsulating scaffold in a model of brain damage
title_full_unstemmed Multicolor spectral photon counting CT monitors and quantifies therapeutic cells and their encapsulating scaffold in a model of brain damage
title_short Multicolor spectral photon counting CT monitors and quantifies therapeutic cells and their encapsulating scaffold in a model of brain damage
title_sort multicolor spectral photon counting ct monitors and quantifies therapeutic cells and their encapsulating scaffold in a model of brain damage
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7256015/
https://www.ncbi.nlm.nih.gov/pubmed/32483519
http://dx.doi.org/10.7150/ntno.45354
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