Radiation-Induced Nephropathy in the Murine Model Is Ameliorated by Targeting Heparanase
Alexia Abecassis1, Esther Hermano1, Kim Sheva2
1Sharett Institute of Oncology, Hadassah-Hebrew University Medical Center, Jerusalem 91120, Israel.
Abstract:
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.
Insights
Heparanase, an enzyme promoting tumor growth, also protects kidneys from radiation damage. Inhibiting heparanase offers a dual approach for cancer therapy, reducing side effects and enhancing treatment efficacy.
Area of Science:
- Oncology
- Nephrology
- Biochemistry
Background:
- Cancer treatments like radiation therapy can cause kidney damage (radiation nephropathy).
- Heparanase, an enzyme degrading the extracellular matrix, is linked to tumor progression and kidney injury.
- Current supportive agents for cancer treatment lack tumor-suppressing properties.
Purpose of the Study:
- To investigate heparanase as a target for preventing radiation nephropathy.
- To evaluate the dual role of heparanase inhibition in cancer therapy and kidney protection.
Main Methods:
- Measured heparanase mRNA levels in irradiated kidney cells (HK-2, HEK-293) and a mouse model using qRT-PCR.
- Administered Roneparstat (heparanase inhibitor) to irradiated mice.
- Assessed 24-hour urinary albumin and kidney weight 30 weeks post-irradiation.
Main Results:
- Ionizing radiation upregulated heparanase expression in renal cells and mouse kidneys.
- Roneparstat treatment prevented radiation-induced albuminuria in the murine model.
- Heparanase inhibition demonstrated a protective effect against radiation-induced kidney damage.
Conclusions:
- Heparanase is a promising target for preventing radiation nephropathy.
- Inhibiting heparanase offers a dual therapeutic strategy: direct anti-tumor effects and protection against kidney damage.
- Targeting heparanase represents a novel approach to enhance cancer therapy by mitigating critical side effects.


