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Molecular Imaging of Immune Cell Dynamics During De- and Remyelination in the Cuprizone Model of Multiple Sclerosis by [(18)F]DPA-714 PET and MRI

Background: Activation and dysregulation of innate, adaptive and resident immune cells in response to damage determine the pathophysiology of demyelinating disorders. Among the plethora of involved cells, microglia/macrophages and astrocytes play an important role in the pathogenesis of demyelinatin...

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Autores principales: Zinnhardt, Bastian, Belloy, Michaël, Fricke, Inga B., Orije, Jasmien, Guglielmetti, Caroline, Hermann, Sven, Wagner, Stefan, Schäfers, Michael, Van der Linden, Annemie, Jacobs, Andreas H.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6485187/
https://www.ncbi.nlm.nih.gov/pubmed/31037121
http://dx.doi.org/10.7150/thno.32461
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author Zinnhardt, Bastian
Belloy, Michaël
Fricke, Inga B.
Orije, Jasmien
Guglielmetti, Caroline
Hermann, Sven
Wagner, Stefan
Schäfers, Michael
Van der Linden, Annemie
Jacobs, Andreas H.
author_facet Zinnhardt, Bastian
Belloy, Michaël
Fricke, Inga B.
Orije, Jasmien
Guglielmetti, Caroline
Hermann, Sven
Wagner, Stefan
Schäfers, Michael
Van der Linden, Annemie
Jacobs, Andreas H.
author_sort Zinnhardt, Bastian
collection PubMed
description Background: Activation and dysregulation of innate, adaptive and resident immune cells in response to damage determine the pathophysiology of demyelinating disorders. Among the plethora of involved cells, microglia/macrophages and astrocytes play an important role in the pathogenesis of demyelinating disorders. The in-depth investigation of the spatio-temporal profile of these cell types in vivo may inform about the exact disease state and localization as well as may allow to monitor therapeutic modulation of the components of the neuroinflammatory response during the course of multiple sclerosis (MS). In this study, we aimed to non-invasively decipher the degree and temporal profile of neuroinflammation (TSPO - [(18)F]DPA-714 PET) in relation to selected magnetic resonance imaging (MRI) parameters (T(2) maps) in the cuprizone (CPZ)-induced model of demyelination. Methods: C57Bl6 (n=30) mice were fed with a standard chow mixed with 0.2% (w/w) CPZ for 4 (n=10; demyelination) and 6 weeks (n=10; spontaneous remyelination). The degree of neuroinflammation at de- and remyelination was assessed by [(18)F]DPA-714 PET, multi-echo T(2) MRI, autoradiography and immunohistochemistry. Results: CPZ-induced brain alterations were confirmed by increase of T(2) relaxation times in both white and grey matter after 3 and 5 weeks of CPZ. Peak [(18)F]DPA-714 was found in the corpus callosum (CC, white matter), the hippocampus (HC, grey matter) and thalamus (grey matter) after 4 weeks of CPZ treatment and declined after 6 weeks of CPZ. Ex vivo autoradiography and dedicated immunofluorescence showed demyelination/remyelination with corresponding increased/decreased TSPO levels in the CC and hippocampus, confirming the spatial distribution of [(18)F]DPA-714 in vivo. The expression of TSPO microglia and astrocytes is time-dependent in this model. Microglia predominantly express TSPO at demyelination, while the majority of astrocytes express TSPO during remyelination. The combination of PET- and MRI-based imaging biomarkers demonstrated the regional and temporal development of the CPZ model-associated neuroinflammatory response in grey and white matter regions. Conclusions: The combination of [(18)F]DPA-714 PET and T(2) mapping may allow to further elucidate the regional and temporal profile of inflammatory signals depending on the myelination status, although the underlying inflammatory microenvironment changes. A combination of the described imaging biomarkers may facilitate the development of patient-tailored strategies for immunomodulatory and neuro-restorative therapies in MS.
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spelling pubmed-64851872019-04-29 Molecular Imaging of Immune Cell Dynamics During De- and Remyelination in the Cuprizone Model of Multiple Sclerosis by [(18)F]DPA-714 PET and MRI Zinnhardt, Bastian Belloy, Michaël Fricke, Inga B. Orije, Jasmien Guglielmetti, Caroline Hermann, Sven Wagner, Stefan Schäfers, Michael Van der Linden, Annemie Jacobs, Andreas H. Theranostics Research Paper Background: Activation and dysregulation of innate, adaptive and resident immune cells in response to damage determine the pathophysiology of demyelinating disorders. Among the plethora of involved cells, microglia/macrophages and astrocytes play an important role in the pathogenesis of demyelinating disorders. The in-depth investigation of the spatio-temporal profile of these cell types in vivo may inform about the exact disease state and localization as well as may allow to monitor therapeutic modulation of the components of the neuroinflammatory response during the course of multiple sclerosis (MS). In this study, we aimed to non-invasively decipher the degree and temporal profile of neuroinflammation (TSPO - [(18)F]DPA-714 PET) in relation to selected magnetic resonance imaging (MRI) parameters (T(2) maps) in the cuprizone (CPZ)-induced model of demyelination. Methods: C57Bl6 (n=30) mice were fed with a standard chow mixed with 0.2% (w/w) CPZ for 4 (n=10; demyelination) and 6 weeks (n=10; spontaneous remyelination). The degree of neuroinflammation at de- and remyelination was assessed by [(18)F]DPA-714 PET, multi-echo T(2) MRI, autoradiography and immunohistochemistry. Results: CPZ-induced brain alterations were confirmed by increase of T(2) relaxation times in both white and grey matter after 3 and 5 weeks of CPZ. Peak [(18)F]DPA-714 was found in the corpus callosum (CC, white matter), the hippocampus (HC, grey matter) and thalamus (grey matter) after 4 weeks of CPZ treatment and declined after 6 weeks of CPZ. Ex vivo autoradiography and dedicated immunofluorescence showed demyelination/remyelination with corresponding increased/decreased TSPO levels in the CC and hippocampus, confirming the spatial distribution of [(18)F]DPA-714 in vivo. The expression of TSPO microglia and astrocytes is time-dependent in this model. Microglia predominantly express TSPO at demyelination, while the majority of astrocytes express TSPO during remyelination. The combination of PET- and MRI-based imaging biomarkers demonstrated the regional and temporal development of the CPZ model-associated neuroinflammatory response in grey and white matter regions. Conclusions: The combination of [(18)F]DPA-714 PET and T(2) mapping may allow to further elucidate the regional and temporal profile of inflammatory signals depending on the myelination status, although the underlying inflammatory microenvironment changes. A combination of the described imaging biomarkers may facilitate the development of patient-tailored strategies for immunomodulatory and neuro-restorative therapies in MS. Ivyspring International Publisher 2019-02-20 /pmc/articles/PMC6485187/ /pubmed/31037121 http://dx.doi.org/10.7150/thno.32461 Text en © Ivyspring International Publisher This is an open access article distributed under the terms of the Creative Commons Attribution (CC BY-NC) license (https://creativecommons.org/licenses/by-nc/4.0/). See http://ivyspring.com/terms for full terms and conditions.
spellingShingle Research Paper
Zinnhardt, Bastian
Belloy, Michaël
Fricke, Inga B.
Orije, Jasmien
Guglielmetti, Caroline
Hermann, Sven
Wagner, Stefan
Schäfers, Michael
Van der Linden, Annemie
Jacobs, Andreas H.
Molecular Imaging of Immune Cell Dynamics During De- and Remyelination in the Cuprizone Model of Multiple Sclerosis by [(18)F]DPA-714 PET and MRI
title Molecular Imaging of Immune Cell Dynamics During De- and Remyelination in the Cuprizone Model of Multiple Sclerosis by [(18)F]DPA-714 PET and MRI
title_full Molecular Imaging of Immune Cell Dynamics During De- and Remyelination in the Cuprizone Model of Multiple Sclerosis by [(18)F]DPA-714 PET and MRI
title_fullStr Molecular Imaging of Immune Cell Dynamics During De- and Remyelination in the Cuprizone Model of Multiple Sclerosis by [(18)F]DPA-714 PET and MRI
title_full_unstemmed Molecular Imaging of Immune Cell Dynamics During De- and Remyelination in the Cuprizone Model of Multiple Sclerosis by [(18)F]DPA-714 PET and MRI
title_short Molecular Imaging of Immune Cell Dynamics During De- and Remyelination in the Cuprizone Model of Multiple Sclerosis by [(18)F]DPA-714 PET and MRI
title_sort molecular imaging of immune cell dynamics during de- and remyelination in the cuprizone model of multiple sclerosis by [(18)f]dpa-714 pet and mri
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6485187/
https://www.ncbi.nlm.nih.gov/pubmed/31037121
http://dx.doi.org/10.7150/thno.32461
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