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Tumor Stiffening, a Key Determinant of Tumor Progression, is Reversed by Nanomaterial-Induced Photothermal Therapy

Tumor stiffening, stemming from aberrant production and organization of extracellular matrix (ECM), has been considered a predictive marker of tumor malignancy, non-invasively assessed by ultrasound shear wave elastography (SWE). Being more than a passive marker, tumor stiffening restricts the deliv...

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Autores principales: Marangon, Iris, Silva, Amanda A. K., Guilbert, Thomas, Kolosnjaj-Tabi, Jelena, Marchiol, Carmen, Natkhunarajah, Sharuja, Chamming's, Foucault, Ménard-Moyon, Cécilia, Bianco, Alberto, Gennisson, Jean-Luc, Renault, Gilles, Gazeau, Florence
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5197068/
https://www.ncbi.nlm.nih.gov/pubmed/28042338
http://dx.doi.org/10.7150/thno.17574
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author Marangon, Iris
Silva, Amanda A. K.
Guilbert, Thomas
Kolosnjaj-Tabi, Jelena
Marchiol, Carmen
Natkhunarajah, Sharuja
Chamming's, Foucault
Ménard-Moyon, Cécilia
Bianco, Alberto
Gennisson, Jean-Luc
Renault, Gilles
Gazeau, Florence
author_facet Marangon, Iris
Silva, Amanda A. K.
Guilbert, Thomas
Kolosnjaj-Tabi, Jelena
Marchiol, Carmen
Natkhunarajah, Sharuja
Chamming's, Foucault
Ménard-Moyon, Cécilia
Bianco, Alberto
Gennisson, Jean-Luc
Renault, Gilles
Gazeau, Florence
author_sort Marangon, Iris
collection PubMed
description Tumor stiffening, stemming from aberrant production and organization of extracellular matrix (ECM), has been considered a predictive marker of tumor malignancy, non-invasively assessed by ultrasound shear wave elastography (SWE). Being more than a passive marker, tumor stiffening restricts the delivery of diagnostic and therapeutic agents to the tumor and per se could modulate cellular mechano-signaling, tissue inflammation and tumor progression. Current strategies to modify the tumor extracellular matrix are based on ECM-targeting chemical agents but also showed deleterious systemic effects. On-demand excitable nanomaterials have shown their ability to perturb the tumor microenvironment in a spatiotemporal-controlled manner and synergistically with chemotherapy. Here, we investigated the evolution of tumor stiffness as well as tumor integrity and progression, under the effect of mild hyperthermia and thermal ablation generated by light-exposed multi-walled carbon nanotubes (MWCNTs) in an epidermoid carcinoma mouse xenograft. SWE was used for real-time mapping of the tumor stiffness, both during the two near infrared irradiation sessions and over the days after the treatment. We observed a transient and reversible stiffening of the tumor tissue during laser irradiation, which was lowered at the second session of mild hyperthermia or photoablation. In contrast, over the days following photothermal treatment, the treated tumors exhibited a significant softening together with volume reduction, whereas non-treated growing tumors showed an increase of tumor rigidity. The organization of the collagen matrix and the distribution of CNTs revealed a spatio-temporal correlation between the presence of nanoheaters and the damages on collagen and cells. This study highlights nanohyperthermia as a promising adjuvant strategy to reverse tumor stiffening and normalize the mechanical tumor environment.
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spelling pubmed-51970682017-01-01 Tumor Stiffening, a Key Determinant of Tumor Progression, is Reversed by Nanomaterial-Induced Photothermal Therapy Marangon, Iris Silva, Amanda A. K. Guilbert, Thomas Kolosnjaj-Tabi, Jelena Marchiol, Carmen Natkhunarajah, Sharuja Chamming's, Foucault Ménard-Moyon, Cécilia Bianco, Alberto Gennisson, Jean-Luc Renault, Gilles Gazeau, Florence Theranostics Research Paper Tumor stiffening, stemming from aberrant production and organization of extracellular matrix (ECM), has been considered a predictive marker of tumor malignancy, non-invasively assessed by ultrasound shear wave elastography (SWE). Being more than a passive marker, tumor stiffening restricts the delivery of diagnostic and therapeutic agents to the tumor and per se could modulate cellular mechano-signaling, tissue inflammation and tumor progression. Current strategies to modify the tumor extracellular matrix are based on ECM-targeting chemical agents but also showed deleterious systemic effects. On-demand excitable nanomaterials have shown their ability to perturb the tumor microenvironment in a spatiotemporal-controlled manner and synergistically with chemotherapy. Here, we investigated the evolution of tumor stiffness as well as tumor integrity and progression, under the effect of mild hyperthermia and thermal ablation generated by light-exposed multi-walled carbon nanotubes (MWCNTs) in an epidermoid carcinoma mouse xenograft. SWE was used for real-time mapping of the tumor stiffness, both during the two near infrared irradiation sessions and over the days after the treatment. We observed a transient and reversible stiffening of the tumor tissue during laser irradiation, which was lowered at the second session of mild hyperthermia or photoablation. In contrast, over the days following photothermal treatment, the treated tumors exhibited a significant softening together with volume reduction, whereas non-treated growing tumors showed an increase of tumor rigidity. The organization of the collagen matrix and the distribution of CNTs revealed a spatio-temporal correlation between the presence of nanoheaters and the damages on collagen and cells. This study highlights nanohyperthermia as a promising adjuvant strategy to reverse tumor stiffening and normalize the mechanical tumor environment. Ivyspring International Publisher 2017-01-01 /pmc/articles/PMC5197068/ /pubmed/28042338 http://dx.doi.org/10.7150/thno.17574 Text en
spellingShingle Research Paper
Marangon, Iris
Silva, Amanda A. K.
Guilbert, Thomas
Kolosnjaj-Tabi, Jelena
Marchiol, Carmen
Natkhunarajah, Sharuja
Chamming's, Foucault
Ménard-Moyon, Cécilia
Bianco, Alberto
Gennisson, Jean-Luc
Renault, Gilles
Gazeau, Florence
Tumor Stiffening, a Key Determinant of Tumor Progression, is Reversed by Nanomaterial-Induced Photothermal Therapy
title Tumor Stiffening, a Key Determinant of Tumor Progression, is Reversed by Nanomaterial-Induced Photothermal Therapy
title_full Tumor Stiffening, a Key Determinant of Tumor Progression, is Reversed by Nanomaterial-Induced Photothermal Therapy
title_fullStr Tumor Stiffening, a Key Determinant of Tumor Progression, is Reversed by Nanomaterial-Induced Photothermal Therapy
title_full_unstemmed Tumor Stiffening, a Key Determinant of Tumor Progression, is Reversed by Nanomaterial-Induced Photothermal Therapy
title_short Tumor Stiffening, a Key Determinant of Tumor Progression, is Reversed by Nanomaterial-Induced Photothermal Therapy
title_sort tumor stiffening, a key determinant of tumor progression, is reversed by nanomaterial-induced photothermal therapy
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5197068/
https://www.ncbi.nlm.nih.gov/pubmed/28042338
http://dx.doi.org/10.7150/thno.17574
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