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Three-Dimensional Iron Oxide Nanoparticle-Based Contrast-Enhanced Magnetic Resonance Imaging for Characterization of Cerebral Arteriogenesis in the Mouse Neocortex

Purpose: Subsurface blood vessels in the cerebral cortex have been identified as a bottleneck in cerebral perfusion with the potential for collateral remodeling. However, valid techniques for non-invasive, longitudinal characterization of neocortical microvessels are still lacking. In this study, we...

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Autores principales: de Bortoli, Till, Boehm-Sturm, Philipp, Koch, Stefan P., Nieminen-Kelhä, Melina, Wessels, Lars, Mueller, Susanne, Ielacqua, Giovanna D., Klohs, Jan, Vajkoczy, Peter, Hecht, Nils
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8662986/
https://www.ncbi.nlm.nih.gov/pubmed/34899163
http://dx.doi.org/10.3389/fnins.2021.756577
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author de Bortoli, Till
Boehm-Sturm, Philipp
Koch, Stefan P.
Nieminen-Kelhä, Melina
Wessels, Lars
Mueller, Susanne
Ielacqua, Giovanna D.
Klohs, Jan
Vajkoczy, Peter
Hecht, Nils
author_facet de Bortoli, Till
Boehm-Sturm, Philipp
Koch, Stefan P.
Nieminen-Kelhä, Melina
Wessels, Lars
Mueller, Susanne
Ielacqua, Giovanna D.
Klohs, Jan
Vajkoczy, Peter
Hecht, Nils
author_sort de Bortoli, Till
collection PubMed
description Purpose: Subsurface blood vessels in the cerebral cortex have been identified as a bottleneck in cerebral perfusion with the potential for collateral remodeling. However, valid techniques for non-invasive, longitudinal characterization of neocortical microvessels are still lacking. In this study, we validated contrast-enhanced magnetic resonance imaging (CE-MRI) for in vivo characterization of vascular changes in a model of spontaneous collateral outgrowth following chronic cerebral hypoperfusion. Methods: C57BL/6J mice were randomly assigned to unilateral internal carotid artery occlusion or sham surgery and after 21 days, CE-MRI based on T2*-weighted imaging was performed using ultra-small superparamagnetic iron oxide nanoparticles to obtain subtraction angiographies and steady-state cerebral blood volume (ss-CBV) maps. First pass dynamic susceptibility contrast MRI (DSC-MRI) was performed for internal validation of ss-CBV. Further validation at the histological level was provided by ex vivo serial two-photon tomography (STP). Results: Qualitatively, an increase in vessel density was observed on CE-MRI subtraction angiographies following occlusion; however, a quantitative vessel tracing analysis was prone to errors in our model. Measurements of ss-CBV reliably identified an increase in cortical vasculature, validated by DSC-MRI and STP. Conclusion: Iron oxide nanoparticle-based ss-CBV serves as a robust, non-invasive imaging surrogate marker for neocortical vessels, with the potential to reduce and refine preclinical models targeting the development and outgrowth of cerebral collateralization.
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spelling pubmed-86629862021-12-11 Three-Dimensional Iron Oxide Nanoparticle-Based Contrast-Enhanced Magnetic Resonance Imaging for Characterization of Cerebral Arteriogenesis in the Mouse Neocortex de Bortoli, Till Boehm-Sturm, Philipp Koch, Stefan P. Nieminen-Kelhä, Melina Wessels, Lars Mueller, Susanne Ielacqua, Giovanna D. Klohs, Jan Vajkoczy, Peter Hecht, Nils Front Neurosci Neuroscience Purpose: Subsurface blood vessels in the cerebral cortex have been identified as a bottleneck in cerebral perfusion with the potential for collateral remodeling. However, valid techniques for non-invasive, longitudinal characterization of neocortical microvessels are still lacking. In this study, we validated contrast-enhanced magnetic resonance imaging (CE-MRI) for in vivo characterization of vascular changes in a model of spontaneous collateral outgrowth following chronic cerebral hypoperfusion. Methods: C57BL/6J mice were randomly assigned to unilateral internal carotid artery occlusion or sham surgery and after 21 days, CE-MRI based on T2*-weighted imaging was performed using ultra-small superparamagnetic iron oxide nanoparticles to obtain subtraction angiographies and steady-state cerebral blood volume (ss-CBV) maps. First pass dynamic susceptibility contrast MRI (DSC-MRI) was performed for internal validation of ss-CBV. Further validation at the histological level was provided by ex vivo serial two-photon tomography (STP). Results: Qualitatively, an increase in vessel density was observed on CE-MRI subtraction angiographies following occlusion; however, a quantitative vessel tracing analysis was prone to errors in our model. Measurements of ss-CBV reliably identified an increase in cortical vasculature, validated by DSC-MRI and STP. Conclusion: Iron oxide nanoparticle-based ss-CBV serves as a robust, non-invasive imaging surrogate marker for neocortical vessels, with the potential to reduce and refine preclinical models targeting the development and outgrowth of cerebral collateralization. Frontiers Media S.A. 2021-11-26 /pmc/articles/PMC8662986/ /pubmed/34899163 http://dx.doi.org/10.3389/fnins.2021.756577 Text en Copyright © 2021 de Bortoli, Boehm-Sturm, Koch, Nieminen-Kelhä, Wessels, Mueller, Ielacqua, Klohs, Vajkoczy and Hecht. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Neuroscience
de Bortoli, Till
Boehm-Sturm, Philipp
Koch, Stefan P.
Nieminen-Kelhä, Melina
Wessels, Lars
Mueller, Susanne
Ielacqua, Giovanna D.
Klohs, Jan
Vajkoczy, Peter
Hecht, Nils
Three-Dimensional Iron Oxide Nanoparticle-Based Contrast-Enhanced Magnetic Resonance Imaging for Characterization of Cerebral Arteriogenesis in the Mouse Neocortex
title Three-Dimensional Iron Oxide Nanoparticle-Based Contrast-Enhanced Magnetic Resonance Imaging for Characterization of Cerebral Arteriogenesis in the Mouse Neocortex
title_full Three-Dimensional Iron Oxide Nanoparticle-Based Contrast-Enhanced Magnetic Resonance Imaging for Characterization of Cerebral Arteriogenesis in the Mouse Neocortex
title_fullStr Three-Dimensional Iron Oxide Nanoparticle-Based Contrast-Enhanced Magnetic Resonance Imaging for Characterization of Cerebral Arteriogenesis in the Mouse Neocortex
title_full_unstemmed Three-Dimensional Iron Oxide Nanoparticle-Based Contrast-Enhanced Magnetic Resonance Imaging for Characterization of Cerebral Arteriogenesis in the Mouse Neocortex
title_short Three-Dimensional Iron Oxide Nanoparticle-Based Contrast-Enhanced Magnetic Resonance Imaging for Characterization of Cerebral Arteriogenesis in the Mouse Neocortex
title_sort three-dimensional iron oxide nanoparticle-based contrast-enhanced magnetic resonance imaging for characterization of cerebral arteriogenesis in the mouse neocortex
topic Neuroscience
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8662986/
https://www.ncbi.nlm.nih.gov/pubmed/34899163
http://dx.doi.org/10.3389/fnins.2021.756577
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