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Enhancing the abscopal effect of radiation and immune checkpoint inhibitor therapies with magnetic nanoparticle hyperthermia in a model of metastatic breast cancer

PURPOSE: Enhancing immune responses in triple negative breast cancers (TNBCs) remains a challenge. Our study aimed to determine whether magnetic iron oxide nanoparticle (MION) hyperthermia (HT) can enhance abscopal effects with radiotherapy (RT) and immune checkpoint inhibitors (IT) in a metastatic...

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Autores principales: Oei, Arlene L., Korangath, Preethi, Mulka, Kathleen, Helenius, Mikko, Coulter, Jonathan B., Stewart, Jacqueline, Velarde, Esteban, Crezee, Johannes, Simons, Brian, Stalpers, Lukas J. A., Kok, H. Petra, Gabrielson, Kathleen, Franken, Nicolaas A. P., Ivkov, Robert
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7017719/
https://www.ncbi.nlm.nih.gov/pubmed/31795835
http://dx.doi.org/10.1080/02656736.2019.1685686
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author Oei, Arlene L.
Korangath, Preethi
Mulka, Kathleen
Helenius, Mikko
Coulter, Jonathan B.
Stewart, Jacqueline
Velarde, Esteban
Crezee, Johannes
Simons, Brian
Stalpers, Lukas J. A.
Kok, H. Petra
Gabrielson, Kathleen
Franken, Nicolaas A. P.
Ivkov, Robert
author_facet Oei, Arlene L.
Korangath, Preethi
Mulka, Kathleen
Helenius, Mikko
Coulter, Jonathan B.
Stewart, Jacqueline
Velarde, Esteban
Crezee, Johannes
Simons, Brian
Stalpers, Lukas J. A.
Kok, H. Petra
Gabrielson, Kathleen
Franken, Nicolaas A. P.
Ivkov, Robert
author_sort Oei, Arlene L.
collection PubMed
description PURPOSE: Enhancing immune responses in triple negative breast cancers (TNBCs) remains a challenge. Our study aimed to determine whether magnetic iron oxide nanoparticle (MION) hyperthermia (HT) can enhance abscopal effects with radiotherapy (RT) and immune checkpoint inhibitors (IT) in a metastatic TNBC model. METHODS: One week after implanting 4T1-luc cells into the mammary glands of BALB/c mice, tumors were treated with RT (3 × 8Gy)±local HT, mild (HT(M), 43°C/20 min) or partially ablative (HT(Abl), 45°C/5min plus 43°C/15min),±IT with anti-PD-1 and anti-CTLA-4 antibodies (both 4 × 10mg/kg, i.p.). Tumor growth was measured daily. Two weeks after treatment, lungs and livers were harvested for histopathology evaluation of metastases. RESULTS: Compared to untreated controls, all treatment groups demonstrated a decreased tumor volume; however, when compared against surgical resection, only RT + HT(M)+IT, RT + HT(Abl)+IT and RT + HT(Abl) had similar or smaller tumors. These cohorts showed more infiltration of CD3(+) T-lymphocytes into the primary tumor. Tumor growth effects were partially reversed with T-cell depletion. Combinations that proved most effective for primary tumors generated modest reductions in numbers of lung metastases. Conversely, numbers of lung metastases showed potential to increase following HT+ IT treatment, particularly when compared to RT. Compared to untreated controls, there was no improvement in survival with any treatment. CONCLUSIONS: Single-fraction MION HT added to RT + IT improved local tumor control and recruitment of CD3(+) T-lymphocytes, with only a modest effect to reduce lung metastases and no improvement in overall survival. HT + IT showed potential to increase metastatic dissemination to lungs.
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spelling pubmed-70177192020-11-01 Enhancing the abscopal effect of radiation and immune checkpoint inhibitor therapies with magnetic nanoparticle hyperthermia in a model of metastatic breast cancer Oei, Arlene L. Korangath, Preethi Mulka, Kathleen Helenius, Mikko Coulter, Jonathan B. Stewart, Jacqueline Velarde, Esteban Crezee, Johannes Simons, Brian Stalpers, Lukas J. A. Kok, H. Petra Gabrielson, Kathleen Franken, Nicolaas A. P. Ivkov, Robert Int J Hyperthermia Article PURPOSE: Enhancing immune responses in triple negative breast cancers (TNBCs) remains a challenge. Our study aimed to determine whether magnetic iron oxide nanoparticle (MION) hyperthermia (HT) can enhance abscopal effects with radiotherapy (RT) and immune checkpoint inhibitors (IT) in a metastatic TNBC model. METHODS: One week after implanting 4T1-luc cells into the mammary glands of BALB/c mice, tumors were treated with RT (3 × 8Gy)±local HT, mild (HT(M), 43°C/20 min) or partially ablative (HT(Abl), 45°C/5min plus 43°C/15min),±IT with anti-PD-1 and anti-CTLA-4 antibodies (both 4 × 10mg/kg, i.p.). Tumor growth was measured daily. Two weeks after treatment, lungs and livers were harvested for histopathology evaluation of metastases. RESULTS: Compared to untreated controls, all treatment groups demonstrated a decreased tumor volume; however, when compared against surgical resection, only RT + HT(M)+IT, RT + HT(Abl)+IT and RT + HT(Abl) had similar or smaller tumors. These cohorts showed more infiltration of CD3(+) T-lymphocytes into the primary tumor. Tumor growth effects were partially reversed with T-cell depletion. Combinations that proved most effective for primary tumors generated modest reductions in numbers of lung metastases. Conversely, numbers of lung metastases showed potential to increase following HT+ IT treatment, particularly when compared to RT. Compared to untreated controls, there was no improvement in survival with any treatment. CONCLUSIONS: Single-fraction MION HT added to RT + IT improved local tumor control and recruitment of CD3(+) T-lymphocytes, with only a modest effect to reduce lung metastases and no improvement in overall survival. HT + IT showed potential to increase metastatic dissemination to lungs. 2019-11 /pmc/articles/PMC7017719/ /pubmed/31795835 http://dx.doi.org/10.1080/02656736.2019.1685686 Text en This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Article
Oei, Arlene L.
Korangath, Preethi
Mulka, Kathleen
Helenius, Mikko
Coulter, Jonathan B.
Stewart, Jacqueline
Velarde, Esteban
Crezee, Johannes
Simons, Brian
Stalpers, Lukas J. A.
Kok, H. Petra
Gabrielson, Kathleen
Franken, Nicolaas A. P.
Ivkov, Robert
Enhancing the abscopal effect of radiation and immune checkpoint inhibitor therapies with magnetic nanoparticle hyperthermia in a model of metastatic breast cancer
title Enhancing the abscopal effect of radiation and immune checkpoint inhibitor therapies with magnetic nanoparticle hyperthermia in a model of metastatic breast cancer
title_full Enhancing the abscopal effect of radiation and immune checkpoint inhibitor therapies with magnetic nanoparticle hyperthermia in a model of metastatic breast cancer
title_fullStr Enhancing the abscopal effect of radiation and immune checkpoint inhibitor therapies with magnetic nanoparticle hyperthermia in a model of metastatic breast cancer
title_full_unstemmed Enhancing the abscopal effect of radiation and immune checkpoint inhibitor therapies with magnetic nanoparticle hyperthermia in a model of metastatic breast cancer
title_short Enhancing the abscopal effect of radiation and immune checkpoint inhibitor therapies with magnetic nanoparticle hyperthermia in a model of metastatic breast cancer
title_sort enhancing the abscopal effect of radiation and immune checkpoint inhibitor therapies with magnetic nanoparticle hyperthermia in a model of metastatic breast cancer
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7017719/
https://www.ncbi.nlm.nih.gov/pubmed/31795835
http://dx.doi.org/10.1080/02656736.2019.1685686
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