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Tuning ultrasmall theranostic nanoparticles for MRI contrast and radiation dose amplification

Background: The introduction of magnetic resonance (MR)-guided radiation treatment planning has opened a new space for theranostic nanoparticles to reduce acute toxicity while improving local control. In this work, second-generation AGuIX(®) nanoparticles (AGuIX-Bi) are synthesized and validated. AG...

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Autores principales: Brown, Needa, Rocchi, Paul, Carmès, Léna, Guthier, Romy, Iyer, Meghna, Seban, Léa, Morris, Toby, Bennett, Stephanie, Lavelle, Michael, Penailillo, Johany, Carrasco, Ruben, Williams, Chris, Huynh, Elizabeth, Han, Zhaohui, Kaza, Evangelia, Doussineau, Tristan, Toprani, Sneh M., Qin, Xingping, Nagel, Zachary D., Sarosiek, Kristopher A., Hagège, Agnès, Dufort, Sandrine, Bort, Guillaume, Lux, François, Tillement, Olivier, Berbeco, Ross
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10526655/
https://www.ncbi.nlm.nih.gov/pubmed/37771768
http://dx.doi.org/10.7150/thno.85663
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author Brown, Needa
Rocchi, Paul
Carmès, Léna
Guthier, Romy
Iyer, Meghna
Seban, Léa
Morris, Toby
Bennett, Stephanie
Lavelle, Michael
Penailillo, Johany
Carrasco, Ruben
Williams, Chris
Huynh, Elizabeth
Han, Zhaohui
Kaza, Evangelia
Doussineau, Tristan
Toprani, Sneh M.
Qin, Xingping
Nagel, Zachary D.
Sarosiek, Kristopher A.
Hagège, Agnès
Dufort, Sandrine
Bort, Guillaume
Lux, François
Tillement, Olivier
Berbeco, Ross
author_facet Brown, Needa
Rocchi, Paul
Carmès, Léna
Guthier, Romy
Iyer, Meghna
Seban, Léa
Morris, Toby
Bennett, Stephanie
Lavelle, Michael
Penailillo, Johany
Carrasco, Ruben
Williams, Chris
Huynh, Elizabeth
Han, Zhaohui
Kaza, Evangelia
Doussineau, Tristan
Toprani, Sneh M.
Qin, Xingping
Nagel, Zachary D.
Sarosiek, Kristopher A.
Hagège, Agnès
Dufort, Sandrine
Bort, Guillaume
Lux, François
Tillement, Olivier
Berbeco, Ross
author_sort Brown, Needa
collection PubMed
description Background: The introduction of magnetic resonance (MR)-guided radiation treatment planning has opened a new space for theranostic nanoparticles to reduce acute toxicity while improving local control. In this work, second-generation AGuIX(®) nanoparticles (AGuIX-Bi) are synthesized and validated. AGuIX-Bi are shown to maintain MR positive contrast while further amplifying the radiation dose by the replacement of some Gd(3+) cations with higher Z Bi(3+). These next-generation nanoparticles are based on the AGuIX(®) platform, which is currently being evaluated in multiple Phase II clinical trials in combination with radiotherapy. Methods: In this clinically scalable methodology, AGuIX(®) is used as an initial chelation platform to exchange Gd(3+) for Bi(3+). AGuIX-Bi nanoparticles are synthesized with three ratios of Gd/Bi, each maintaining MR contrast while further amplifying radiation dose relative to Bi(3+). Safety, efficacy, and theranostic potential of the nanoparticles were evaluated in vitro and in vivo in a human non-small cell lung cancer model. Results: We demonstrated that increasing Bi(3+) in the nanoparticles is associated with more DNA damage and improves in vivo efficacy with a statistically significant delay in tumor growth and 33% complete regression for the largest Bi/Gd ratio tested. The addition of Bi(3+) by our synthetic method leads to nanoparticles that present slightly altered pharmacokinetics and lengthening of the period of high tumor accumulation with no observed evidence of toxicity. Conclusions: We confirmed the safety and enhanced efficacy of AGuIX-Bi with radiation therapy at the selected ratio of 30Gd/70Bi. These results provide crucial evidence towards patient translation.
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spelling pubmed-105266552023-09-28 Tuning ultrasmall theranostic nanoparticles for MRI contrast and radiation dose amplification Brown, Needa Rocchi, Paul Carmès, Léna Guthier, Romy Iyer, Meghna Seban, Léa Morris, Toby Bennett, Stephanie Lavelle, Michael Penailillo, Johany Carrasco, Ruben Williams, Chris Huynh, Elizabeth Han, Zhaohui Kaza, Evangelia Doussineau, Tristan Toprani, Sneh M. Qin, Xingping Nagel, Zachary D. Sarosiek, Kristopher A. Hagège, Agnès Dufort, Sandrine Bort, Guillaume Lux, François Tillement, Olivier Berbeco, Ross Theranostics Research Paper Background: The introduction of magnetic resonance (MR)-guided radiation treatment planning has opened a new space for theranostic nanoparticles to reduce acute toxicity while improving local control. In this work, second-generation AGuIX(®) nanoparticles (AGuIX-Bi) are synthesized and validated. AGuIX-Bi are shown to maintain MR positive contrast while further amplifying the radiation dose by the replacement of some Gd(3+) cations with higher Z Bi(3+). These next-generation nanoparticles are based on the AGuIX(®) platform, which is currently being evaluated in multiple Phase II clinical trials in combination with radiotherapy. Methods: In this clinically scalable methodology, AGuIX(®) is used as an initial chelation platform to exchange Gd(3+) for Bi(3+). AGuIX-Bi nanoparticles are synthesized with three ratios of Gd/Bi, each maintaining MR contrast while further amplifying radiation dose relative to Bi(3+). Safety, efficacy, and theranostic potential of the nanoparticles were evaluated in vitro and in vivo in a human non-small cell lung cancer model. Results: We demonstrated that increasing Bi(3+) in the nanoparticles is associated with more DNA damage and improves in vivo efficacy with a statistically significant delay in tumor growth and 33% complete regression for the largest Bi/Gd ratio tested. The addition of Bi(3+) by our synthetic method leads to nanoparticles that present slightly altered pharmacokinetics and lengthening of the period of high tumor accumulation with no observed evidence of toxicity. Conclusions: We confirmed the safety and enhanced efficacy of AGuIX-Bi with radiation therapy at the selected ratio of 30Gd/70Bi. These results provide crucial evidence towards patient translation. Ivyspring International Publisher 2023-08-21 /pmc/articles/PMC10526655/ /pubmed/37771768 http://dx.doi.org/10.7150/thno.85663 Text en © The author(s) https://creativecommons.org/licenses/by/4.0/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
Brown, Needa
Rocchi, Paul
Carmès, Léna
Guthier, Romy
Iyer, Meghna
Seban, Léa
Morris, Toby
Bennett, Stephanie
Lavelle, Michael
Penailillo, Johany
Carrasco, Ruben
Williams, Chris
Huynh, Elizabeth
Han, Zhaohui
Kaza, Evangelia
Doussineau, Tristan
Toprani, Sneh M.
Qin, Xingping
Nagel, Zachary D.
Sarosiek, Kristopher A.
Hagège, Agnès
Dufort, Sandrine
Bort, Guillaume
Lux, François
Tillement, Olivier
Berbeco, Ross
Tuning ultrasmall theranostic nanoparticles for MRI contrast and radiation dose amplification
title Tuning ultrasmall theranostic nanoparticles for MRI contrast and radiation dose amplification
title_full Tuning ultrasmall theranostic nanoparticles for MRI contrast and radiation dose amplification
title_fullStr Tuning ultrasmall theranostic nanoparticles for MRI contrast and radiation dose amplification
title_full_unstemmed Tuning ultrasmall theranostic nanoparticles for MRI contrast and radiation dose amplification
title_short Tuning ultrasmall theranostic nanoparticles for MRI contrast and radiation dose amplification
title_sort tuning ultrasmall theranostic nanoparticles for mri contrast and radiation dose amplification
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10526655/
https://www.ncbi.nlm.nih.gov/pubmed/37771768
http://dx.doi.org/10.7150/thno.85663
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