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Proton MR Spectroscopy and Diffusion MR Imaging Monitoring to Predict Tumor Response to Interstitial Photodynamic Therapy for Glioblastoma

Despite recent progress in conventional therapeutic approaches, the vast majority of glioblastoma recur locally, indicating that a more aggressive local therapy is required. Interstitial photodynamic therapy (iPDT) appears as a very promising and complementary approach to conventional therapies. How...

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Autores principales: Toussaint, Magali, Pinel, Sophie, Auger, Florent, Durieux, Nicolas, Thomassin, Magalie, Thomas, Eloise, Moussaron, Albert, Meng, Dominique, Plénat, François, Amouroux, Marine, Bastogne, Thierry, Frochot, Céline, Tillement, Olivier, Lux, François, Barberi-Heyob, Muriel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5327359/
https://www.ncbi.nlm.nih.gov/pubmed/28255341
http://dx.doi.org/10.7150/thno.17218
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author Toussaint, Magali
Pinel, Sophie
Auger, Florent
Durieux, Nicolas
Thomassin, Magalie
Thomas, Eloise
Moussaron, Albert
Meng, Dominique
Plénat, François
Amouroux, Marine
Bastogne, Thierry
Frochot, Céline
Tillement, Olivier
Lux, François
Barberi-Heyob, Muriel
author_facet Toussaint, Magali
Pinel, Sophie
Auger, Florent
Durieux, Nicolas
Thomassin, Magalie
Thomas, Eloise
Moussaron, Albert
Meng, Dominique
Plénat, François
Amouroux, Marine
Bastogne, Thierry
Frochot, Céline
Tillement, Olivier
Lux, François
Barberi-Heyob, Muriel
author_sort Toussaint, Magali
collection PubMed
description Despite recent progress in conventional therapeutic approaches, the vast majority of glioblastoma recur locally, indicating that a more aggressive local therapy is required. Interstitial photodynamic therapy (iPDT) appears as a very promising and complementary approach to conventional therapies. However, an optimal fractionation scheme for iPDT remains the indispensable requirement. To achieve that major goal, we suggested following iPDT tumor response by a non-invasive imaging monitoring. Nude rats bearing intracranial glioblastoma U87MG xenografts were treated by iPDT, just after intravenous injection of AGuIX® nanoparticles, encapsulating PDT and imaging agents. Magnetic Resonance Imaging (MRI) and Magnetic Resonance Spectroscopy (MRS) allowed us an original longitudinal follow-up of post-treatment effects to discriminate early predictive markers. We successfully used conventional MRI, T2 star (T2*), Diffusion Weighted Imaging (DWI) and MRS to extract relevant profiles on tissue cytoarchitectural alterations, local vascular disruption and metabolic information on brain tumor biology, achieving earlier assessment of tumor response. From one day post-iPDT, DWI and MRS allowed us to identify promising markers such as the Apparent Diffusion Coefficient (ADC) values, lipids, choline and myoInositol levels that led us to distinguish iPDT responders from non-responders. All these responses give us warning signs well before the tumor escapes and that the growth would be appreciated.
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spelling pubmed-53273592017-03-02 Proton MR Spectroscopy and Diffusion MR Imaging Monitoring to Predict Tumor Response to Interstitial Photodynamic Therapy for Glioblastoma Toussaint, Magali Pinel, Sophie Auger, Florent Durieux, Nicolas Thomassin, Magalie Thomas, Eloise Moussaron, Albert Meng, Dominique Plénat, François Amouroux, Marine Bastogne, Thierry Frochot, Céline Tillement, Olivier Lux, François Barberi-Heyob, Muriel Theranostics Research Paper Despite recent progress in conventional therapeutic approaches, the vast majority of glioblastoma recur locally, indicating that a more aggressive local therapy is required. Interstitial photodynamic therapy (iPDT) appears as a very promising and complementary approach to conventional therapies. However, an optimal fractionation scheme for iPDT remains the indispensable requirement. To achieve that major goal, we suggested following iPDT tumor response by a non-invasive imaging monitoring. Nude rats bearing intracranial glioblastoma U87MG xenografts were treated by iPDT, just after intravenous injection of AGuIX® nanoparticles, encapsulating PDT and imaging agents. Magnetic Resonance Imaging (MRI) and Magnetic Resonance Spectroscopy (MRS) allowed us an original longitudinal follow-up of post-treatment effects to discriminate early predictive markers. We successfully used conventional MRI, T2 star (T2*), Diffusion Weighted Imaging (DWI) and MRS to extract relevant profiles on tissue cytoarchitectural alterations, local vascular disruption and metabolic information on brain tumor biology, achieving earlier assessment of tumor response. From one day post-iPDT, DWI and MRS allowed us to identify promising markers such as the Apparent Diffusion Coefficient (ADC) values, lipids, choline and myoInositol levels that led us to distinguish iPDT responders from non-responders. All these responses give us warning signs well before the tumor escapes and that the growth would be appreciated. Ivyspring International Publisher 2017-01-05 /pmc/articles/PMC5327359/ /pubmed/28255341 http://dx.doi.org/10.7150/thno.17218 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
Toussaint, Magali
Pinel, Sophie
Auger, Florent
Durieux, Nicolas
Thomassin, Magalie
Thomas, Eloise
Moussaron, Albert
Meng, Dominique
Plénat, François
Amouroux, Marine
Bastogne, Thierry
Frochot, Céline
Tillement, Olivier
Lux, François
Barberi-Heyob, Muriel
Proton MR Spectroscopy and Diffusion MR Imaging Monitoring to Predict Tumor Response to Interstitial Photodynamic Therapy for Glioblastoma
title Proton MR Spectroscopy and Diffusion MR Imaging Monitoring to Predict Tumor Response to Interstitial Photodynamic Therapy for Glioblastoma
title_full Proton MR Spectroscopy and Diffusion MR Imaging Monitoring to Predict Tumor Response to Interstitial Photodynamic Therapy for Glioblastoma
title_fullStr Proton MR Spectroscopy and Diffusion MR Imaging Monitoring to Predict Tumor Response to Interstitial Photodynamic Therapy for Glioblastoma
title_full_unstemmed Proton MR Spectroscopy and Diffusion MR Imaging Monitoring to Predict Tumor Response to Interstitial Photodynamic Therapy for Glioblastoma
title_short Proton MR Spectroscopy and Diffusion MR Imaging Monitoring to Predict Tumor Response to Interstitial Photodynamic Therapy for Glioblastoma
title_sort proton mr spectroscopy and diffusion mr imaging monitoring to predict tumor response to interstitial photodynamic therapy for glioblastoma
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5327359/
https://www.ncbi.nlm.nih.gov/pubmed/28255341
http://dx.doi.org/10.7150/thno.17218
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