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Improved Detection of Molecular Markers of Atherosclerotic Plaques Using Sub-Millimeter PET Imaging

Since atherosclerotic plaques are small and sparse, their non-invasive detection via PET imaging requires both highly specific radiotracers as well as imaging systems with high sensitivity and resolution. This study aimed to assess the targeting and biodistribution of a novel fluorine-18 anti-VCAM-1...

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Autores principales: Bridoux, Jessica, Neyt, Sara, Debie, Pieterjan, Descamps, Benedicte, Devoogdt, Nick, Cleeren, Frederik, Bormans, Guy, Broisat, Alexis, Caveliers, Vicky, Xavier, Catarina, Vanhove, Christian, Hernot, Sophie
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7221983/
https://www.ncbi.nlm.nih.gov/pubmed/32316285
http://dx.doi.org/10.3390/molecules25081838
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author Bridoux, Jessica
Neyt, Sara
Debie, Pieterjan
Descamps, Benedicte
Devoogdt, Nick
Cleeren, Frederik
Bormans, Guy
Broisat, Alexis
Caveliers, Vicky
Xavier, Catarina
Vanhove, Christian
Hernot, Sophie
author_facet Bridoux, Jessica
Neyt, Sara
Debie, Pieterjan
Descamps, Benedicte
Devoogdt, Nick
Cleeren, Frederik
Bormans, Guy
Broisat, Alexis
Caveliers, Vicky
Xavier, Catarina
Vanhove, Christian
Hernot, Sophie
author_sort Bridoux, Jessica
collection PubMed
description Since atherosclerotic plaques are small and sparse, their non-invasive detection via PET imaging requires both highly specific radiotracers as well as imaging systems with high sensitivity and resolution. This study aimed to assess the targeting and biodistribution of a novel fluorine-18 anti-VCAM-1 Nanobody (Nb), and to investigate whether sub-millimetre resolution PET imaging could improve detectability of plaques in mice. The anti-VCAM-1 Nb functionalised with the novel restrained complexing agent (RESCA) chelator was labelled with [(18)F]AlF with a high radiochemical yield (>75%) and radiochemical purity (>99%). Subsequently, [(18)F]AlF(RESCA)-cAbVCAM1-5 was injected in ApoE(−/−) mice, or co-injected with excess of unlabelled Nb (control group). Mice were imaged sequentially using a cross-over design on two different commercially available PET/CT systems and finally sacrificed for ex vivo analysis. Both the PET/CT images and ex vivo data showed specific uptake of [(18)F]AlF(RESCA)-cAbVCAM1-5 in atherosclerotic lesions. Non-specific bone uptake was also noticeable, most probably due to in vivo defluorination. Image analysis yielded higher target-to-heart and target-to-brain ratios with the β-CUBE (MOLECUBES) PET scanner, demonstrating that preclinical detection of atherosclerotic lesions could be improved using the latest PET technology.
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spelling pubmed-72219832020-05-22 Improved Detection of Molecular Markers of Atherosclerotic Plaques Using Sub-Millimeter PET Imaging Bridoux, Jessica Neyt, Sara Debie, Pieterjan Descamps, Benedicte Devoogdt, Nick Cleeren, Frederik Bormans, Guy Broisat, Alexis Caveliers, Vicky Xavier, Catarina Vanhove, Christian Hernot, Sophie Molecules Article Since atherosclerotic plaques are small and sparse, their non-invasive detection via PET imaging requires both highly specific radiotracers as well as imaging systems with high sensitivity and resolution. This study aimed to assess the targeting and biodistribution of a novel fluorine-18 anti-VCAM-1 Nanobody (Nb), and to investigate whether sub-millimetre resolution PET imaging could improve detectability of plaques in mice. The anti-VCAM-1 Nb functionalised with the novel restrained complexing agent (RESCA) chelator was labelled with [(18)F]AlF with a high radiochemical yield (>75%) and radiochemical purity (>99%). Subsequently, [(18)F]AlF(RESCA)-cAbVCAM1-5 was injected in ApoE(−/−) mice, or co-injected with excess of unlabelled Nb (control group). Mice were imaged sequentially using a cross-over design on two different commercially available PET/CT systems and finally sacrificed for ex vivo analysis. Both the PET/CT images and ex vivo data showed specific uptake of [(18)F]AlF(RESCA)-cAbVCAM1-5 in atherosclerotic lesions. Non-specific bone uptake was also noticeable, most probably due to in vivo defluorination. Image analysis yielded higher target-to-heart and target-to-brain ratios with the β-CUBE (MOLECUBES) PET scanner, demonstrating that preclinical detection of atherosclerotic lesions could be improved using the latest PET technology. MDPI 2020-04-16 /pmc/articles/PMC7221983/ /pubmed/32316285 http://dx.doi.org/10.3390/molecules25081838 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
Bridoux, Jessica
Neyt, Sara
Debie, Pieterjan
Descamps, Benedicte
Devoogdt, Nick
Cleeren, Frederik
Bormans, Guy
Broisat, Alexis
Caveliers, Vicky
Xavier, Catarina
Vanhove, Christian
Hernot, Sophie
Improved Detection of Molecular Markers of Atherosclerotic Plaques Using Sub-Millimeter PET Imaging
title Improved Detection of Molecular Markers of Atherosclerotic Plaques Using Sub-Millimeter PET Imaging
title_full Improved Detection of Molecular Markers of Atherosclerotic Plaques Using Sub-Millimeter PET Imaging
title_fullStr Improved Detection of Molecular Markers of Atherosclerotic Plaques Using Sub-Millimeter PET Imaging
title_full_unstemmed Improved Detection of Molecular Markers of Atherosclerotic Plaques Using Sub-Millimeter PET Imaging
title_short Improved Detection of Molecular Markers of Atherosclerotic Plaques Using Sub-Millimeter PET Imaging
title_sort improved detection of molecular markers of atherosclerotic plaques using sub-millimeter pet imaging
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7221983/
https://www.ncbi.nlm.nih.gov/pubmed/32316285
http://dx.doi.org/10.3390/molecules25081838
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