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Radiation-Induced Nephropathy in the Murine Model Is Ameliorated by Targeting Heparanase

Agents used to reduce adverse effects common in cancer treatment modalities do not typically possess tumor-suppressing properties. We report that heparanase, an extracellular matrix-degrading enzyme, is a promising candidate for preventing radiation nephropathy. Heparanase promotes tumor development...

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Autores principales: Abecassis, Alexia, Hermano, Esther, Sheva, Kim, Rubinstein, Ariel M., Elkin, Michael, Meirovitz, Amichay
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10045137/
https://www.ncbi.nlm.nih.gov/pubmed/36979689
http://dx.doi.org/10.3390/biomedicines11030710
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author Abecassis, Alexia
Hermano, Esther
Sheva, Kim
Rubinstein, Ariel M.
Elkin, Michael
Meirovitz, Amichay
author_facet Abecassis, Alexia
Hermano, Esther
Sheva, Kim
Rubinstein, Ariel M.
Elkin, Michael
Meirovitz, Amichay
author_sort Abecassis, Alexia
collection PubMed
description Agents used to reduce adverse effects common in cancer treatment modalities do not typically possess tumor-suppressing properties. We report that heparanase, an extracellular matrix-degrading enzyme, is a promising candidate for preventing radiation nephropathy. Heparanase promotes tumor development and progression and is upregulated in tumors found in the abdominal/pelvic cavity, whose radiation treatment may result in radiation nephropathy. Additionally, heparan sulfate degradation by heparanase has been linked to glomerular and tubular/interstitial injury in several kidney disorders. In this study, heparanase mRNA levels were measured in HK-2- and HEK-293-irradiated kidney cells and in a murine radiation nephropathy model by qRT-PCR. Roneparstat (specific heparanase inhibitor) was administered to irradiated mice, and 24 h urinary albumin was measured. Kidneys were harvested and weighed 30 weeks post-irradiation. Clinically relevant doses of ionizing radiation upregulated heparanase expression in both renal cells and mice kidneys. A murine model of abdominal radiation therapy revealed that Roneparstat abolished radiation-induced albuminuria—the hallmark of radiation nephropathy. Given the well-documented anti-cancer effects of heparanase inhibition, our findings attest this enzyme to be a unique target in cancer therapy due to its dual action. Targeting heparanase exerts not only direct anti-tumor effects but protects against radiation-induced kidney damage—the backbone of cancer therapy across a range of malignancies.
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spelling pubmed-100451372023-03-29 Radiation-Induced Nephropathy in the Murine Model Is Ameliorated by Targeting Heparanase Abecassis, Alexia Hermano, Esther Sheva, Kim Rubinstein, Ariel M. Elkin, Michael Meirovitz, Amichay Biomedicines Article Agents used to reduce adverse effects common in cancer treatment modalities do not typically possess tumor-suppressing properties. We report that heparanase, an extracellular matrix-degrading enzyme, is a promising candidate for preventing radiation nephropathy. Heparanase promotes tumor development and progression and is upregulated in tumors found in the abdominal/pelvic cavity, whose radiation treatment may result in radiation nephropathy. Additionally, heparan sulfate degradation by heparanase has been linked to glomerular and tubular/interstitial injury in several kidney disorders. In this study, heparanase mRNA levels were measured in HK-2- and HEK-293-irradiated kidney cells and in a murine radiation nephropathy model by qRT-PCR. Roneparstat (specific heparanase inhibitor) was administered to irradiated mice, and 24 h urinary albumin was measured. Kidneys were harvested and weighed 30 weeks post-irradiation. Clinically relevant doses of ionizing radiation upregulated heparanase expression in both renal cells and mice kidneys. A murine model of abdominal radiation therapy revealed that Roneparstat abolished radiation-induced albuminuria—the hallmark of radiation nephropathy. Given the well-documented anti-cancer effects of heparanase inhibition, our findings attest this enzyme to be a unique target in cancer therapy due to its dual action. Targeting heparanase exerts not only direct anti-tumor effects but protects against radiation-induced kidney damage—the backbone of cancer therapy across a range of malignancies. MDPI 2023-02-27 /pmc/articles/PMC10045137/ /pubmed/36979689 http://dx.doi.org/10.3390/biomedicines11030710 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Abecassis, Alexia
Hermano, Esther
Sheva, Kim
Rubinstein, Ariel M.
Elkin, Michael
Meirovitz, Amichay
Radiation-Induced Nephropathy in the Murine Model Is Ameliorated by Targeting Heparanase
title Radiation-Induced Nephropathy in the Murine Model Is Ameliorated by Targeting Heparanase
title_full Radiation-Induced Nephropathy in the Murine Model Is Ameliorated by Targeting Heparanase
title_fullStr Radiation-Induced Nephropathy in the Murine Model Is Ameliorated by Targeting Heparanase
title_full_unstemmed Radiation-Induced Nephropathy in the Murine Model Is Ameliorated by Targeting Heparanase
title_short Radiation-Induced Nephropathy in the Murine Model Is Ameliorated by Targeting Heparanase
title_sort radiation-induced nephropathy in the murine model is ameliorated by targeting heparanase
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10045137/
https://www.ncbi.nlm.nih.gov/pubmed/36979689
http://dx.doi.org/10.3390/biomedicines11030710
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