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Updated: Jan 29, 2026

Acute Kidney Injury Model Induced by Cisplatin in Adult Zebrafish
Published on: May 15, 2021
Targeting SMPDL3B to Ameliorate Radiation- and Cisplatin-Induced Renal Toxicity
Anis Ahmad1,2, Shamroop Kumar Mallela3, Saba Ansari1
1Department of Radiation Oncology, University of Miami Miller School of Medicine, Sylvester Comprehensive Cancer Center, Miami, FL 33136, USA.
Abstract:
Kidney toxicity remains a major dose-limiting complication of radiation therapy and platinum-based chemotherapy, yet the molecular determinants of renal susceptibility and resilience to these genotoxic treatments are incompletely understood. Podocytes are particularly vulnerable to such insults, and emerging evidence implicates lipid dysregulation in podocyte injury. This study investigated the role of sphingomyelin phosphodiesterase acid-like 3B (SMPDL3B), a podocyte-enriched lipid-modulating enzyme, in radiation- and cisplatin-induced nephrotoxicity. Using a doxycycline-inducible, podocyte-specific SMPDL3B transgenic mouse model, renal injury was assessed following focal kidney irradiation, cisplatin administration, or their combination through functional assays, histopathology, ultrastructural analysis, immunofluorescence, and targeted lipidomics. Combined radiation and cisplatin exposure markedly reduced podocyte SMPDL3B expression, accompanied by podocyte depletion, glomerular basement membrane remodeling, proteinuria, and impaired renal function. These structural and functional abnormalities were associated with the selective accumulation of long-chain ceramide-1-phosphate species. In contrast, podocyte-specific induction of SMPDL3B preserved glomerular architecture, maintained renal function, and prevented pathological ceramide-1-phosphate elevation. Collectively, these findings identify SMPDL3B as a key regulator of podocyte stability and lipid homeostasis during chemoradiation stress. Enhancing SMPDL3B activity may represent a mechanistically grounded strategy to mitigate treatment-induced kidney injury while preserving anticancer efficacy.
Insights
Sphingomyelin phosphodiesterase acid-like 3B (SMPDL3B) protects podocytes from radiation and cisplatin damage by maintaining lipid balance. Upregulating SMPDL3B may prevent kidney toxicity from cancer treatments.
Area of Science:
- Nephrology
- Molecular Biology
- Oncology
Background:
- Kidney toxicity is a significant side effect of cancer therapies like radiation and cisplatin.
- Podocyte injury, linked to lipid dysregulation, contributes to this nephrotoxicity.
- The role of sphingomyelin phosphodiesterase acid-like 3B (SMPDL3B) in podocyte protection is unclear.
Purpose of the Study:
- To investigate the function of SMPDL3B in protecting podocytes against radiation- and cisplatin-induced kidney injury.
- To explore the impact of SMPDL3B on lipid homeostasis in podocytes under genotoxic stress.
Main Methods:
- Utilized a podocyte-specific SMPDL3B transgenic mouse model with doxycycline induction.
- Assessed kidney injury using functional assays, histopathology, ultrastructural analysis, immunofluorescence, and lipidomics.
- Examined the effects of focal kidney irradiation, cisplatin, and their combination.
Main Results:
- Combined radiation and cisplatin reduced SMPDL3B expression, leading to podocyte depletion, glomerular damage, proteinuria, and kidney dysfunction.
- These abnormalities correlated with increased levels of specific ceramide-1-phosphate species.
- Inducing SMPDL3B in podocytes preserved kidney structure and function and prevented ceramide-1-phosphate accumulation.
Conclusions:
- SMPDL3B is crucial for maintaining podocyte stability and lipid homeostasis during chemoradiation.
- Elevating SMPDL3B activity offers a potential strategy to reduce treatment-induced kidney damage while maintaining cancer treatment effectiveness.
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