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High-frequency irreversible electroporation is an effective tumor ablation strategy that induces immunologic cell death and promotes systemic anti-tumor immunity

BACKGROUND: Despite promising treatments for breast cancer, mortality rates remain high and treatments for metastatic disease are limited. High-frequency irreversible electroporation (H-FIRE) is a novel tumor ablation technique that utilizes high-frequency bipolar electric pulses to destabilize canc...

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Autores principales: Ringel-Scaia, Veronica M., Beitel-White, Natalie, Lorenzo, Melvin F., Brock, Rebecca M., Huie, Kathleen E., Coutermarsh-Ott, Sheryl, Eden, Kristin, McDaniel, Dylan K., Verbridge, Scott S., Rossmeisl, John H., Oestreich, Kenneth J., Davalos, Rafael V., Allen, Irving C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6606957/
https://www.ncbi.nlm.nih.gov/pubmed/31130474
http://dx.doi.org/10.1016/j.ebiom.2019.05.036
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author Ringel-Scaia, Veronica M.
Beitel-White, Natalie
Lorenzo, Melvin F.
Brock, Rebecca M.
Huie, Kathleen E.
Coutermarsh-Ott, Sheryl
Eden, Kristin
McDaniel, Dylan K.
Verbridge, Scott S.
Rossmeisl, John H.
Oestreich, Kenneth J.
Davalos, Rafael V.
Allen, Irving C.
author_facet Ringel-Scaia, Veronica M.
Beitel-White, Natalie
Lorenzo, Melvin F.
Brock, Rebecca M.
Huie, Kathleen E.
Coutermarsh-Ott, Sheryl
Eden, Kristin
McDaniel, Dylan K.
Verbridge, Scott S.
Rossmeisl, John H.
Oestreich, Kenneth J.
Davalos, Rafael V.
Allen, Irving C.
author_sort Ringel-Scaia, Veronica M.
collection PubMed
description BACKGROUND: Despite promising treatments for breast cancer, mortality rates remain high and treatments for metastatic disease are limited. High-frequency irreversible electroporation (H-FIRE) is a novel tumor ablation technique that utilizes high-frequency bipolar electric pulses to destabilize cancer cell membranes and induce cell death. However, there is currently a paucity of data pertaining to immune system activation following H-FIRE and other electroporation based tumor ablation techniques. METHODS: Here, we utilized the mouse 4T1 mammary tumor model to evaluate H-FIRE treatment parameters on cancer progression and immune system activation in vitro and in vivo. FINDINGS: H-FIRE effectively ablates the primary tumor and induces a pro-inflammatory shift in the tumor microenvironment. We further show that local treatment with H-FIRE significantly reduces 4T1 metastases. H-FIRE kills 4T1 cells through non-thermal mechanisms associated with necrosis and pyroptosis resulting in damage associated molecular pattern signaling in vitro and in vivo. Our data indicate that the level of tumor ablation correlates with increased activation of cellular immunity. Likewise, we show that the decrease in metastatic lesions is dependent on the intact immune system and H-FIRE generates 4T1 neoantigens that engage the adaptive immune system to significantly attenuate tumor progression. INTERPRETATION: Cell death and tumor ablation following H-FIRE treatment activates the local innate immune system, which shifts the tumor microenvironment from an anti-inflammatory state to a pro-inflammatory state. The non-thermal damage to the cancer cells and increased innate immune system stimulation improves antigen presentation, resulting in the engagement of the adaptive immune system and improved systemic anti-tumor immunity.
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spelling pubmed-66069572019-07-15 High-frequency irreversible electroporation is an effective tumor ablation strategy that induces immunologic cell death and promotes systemic anti-tumor immunity Ringel-Scaia, Veronica M. Beitel-White, Natalie Lorenzo, Melvin F. Brock, Rebecca M. Huie, Kathleen E. Coutermarsh-Ott, Sheryl Eden, Kristin McDaniel, Dylan K. Verbridge, Scott S. Rossmeisl, John H. Oestreich, Kenneth J. Davalos, Rafael V. Allen, Irving C. EBioMedicine Research paper BACKGROUND: Despite promising treatments for breast cancer, mortality rates remain high and treatments for metastatic disease are limited. High-frequency irreversible electroporation (H-FIRE) is a novel tumor ablation technique that utilizes high-frequency bipolar electric pulses to destabilize cancer cell membranes and induce cell death. However, there is currently a paucity of data pertaining to immune system activation following H-FIRE and other electroporation based tumor ablation techniques. METHODS: Here, we utilized the mouse 4T1 mammary tumor model to evaluate H-FIRE treatment parameters on cancer progression and immune system activation in vitro and in vivo. FINDINGS: H-FIRE effectively ablates the primary tumor and induces a pro-inflammatory shift in the tumor microenvironment. We further show that local treatment with H-FIRE significantly reduces 4T1 metastases. H-FIRE kills 4T1 cells through non-thermal mechanisms associated with necrosis and pyroptosis resulting in damage associated molecular pattern signaling in vitro and in vivo. Our data indicate that the level of tumor ablation correlates with increased activation of cellular immunity. Likewise, we show that the decrease in metastatic lesions is dependent on the intact immune system and H-FIRE generates 4T1 neoantigens that engage the adaptive immune system to significantly attenuate tumor progression. INTERPRETATION: Cell death and tumor ablation following H-FIRE treatment activates the local innate immune system, which shifts the tumor microenvironment from an anti-inflammatory state to a pro-inflammatory state. The non-thermal damage to the cancer cells and increased innate immune system stimulation improves antigen presentation, resulting in the engagement of the adaptive immune system and improved systemic anti-tumor immunity. Elsevier 2019-05-23 /pmc/articles/PMC6606957/ /pubmed/31130474 http://dx.doi.org/10.1016/j.ebiom.2019.05.036 Text en © 2019 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research paper
Ringel-Scaia, Veronica M.
Beitel-White, Natalie
Lorenzo, Melvin F.
Brock, Rebecca M.
Huie, Kathleen E.
Coutermarsh-Ott, Sheryl
Eden, Kristin
McDaniel, Dylan K.
Verbridge, Scott S.
Rossmeisl, John H.
Oestreich, Kenneth J.
Davalos, Rafael V.
Allen, Irving C.
High-frequency irreversible electroporation is an effective tumor ablation strategy that induces immunologic cell death and promotes systemic anti-tumor immunity
title High-frequency irreversible electroporation is an effective tumor ablation strategy that induces immunologic cell death and promotes systemic anti-tumor immunity
title_full High-frequency irreversible electroporation is an effective tumor ablation strategy that induces immunologic cell death and promotes systemic anti-tumor immunity
title_fullStr High-frequency irreversible electroporation is an effective tumor ablation strategy that induces immunologic cell death and promotes systemic anti-tumor immunity
title_full_unstemmed High-frequency irreversible electroporation is an effective tumor ablation strategy that induces immunologic cell death and promotes systemic anti-tumor immunity
title_short High-frequency irreversible electroporation is an effective tumor ablation strategy that induces immunologic cell death and promotes systemic anti-tumor immunity
title_sort high-frequency irreversible electroporation is an effective tumor ablation strategy that induces immunologic cell death and promotes systemic anti-tumor immunity
topic Research paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6606957/
https://www.ncbi.nlm.nih.gov/pubmed/31130474
http://dx.doi.org/10.1016/j.ebiom.2019.05.036
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