SMPDL3b modulates radiation-induced DNA damage response in renal podocytes

Abstract

The kidneys are radiosensitive and dose-limiting organs for radiotherapy (RT) targeting abdominal and paraspinal tumors. Excessive radiation doses to the kidneys ultimately lead to radiation nephropathy. Our prior work unmasked a novel role for the lipid-modifying enzyme, sphingomyelin phosphodiesterase acid-like 3b (SMPDL3b), in regulating the response of renal podocytes to radiation injury. In this study, we investigated the role of SMPDL3b in DNA double-strand breaks (DSBs) repair in vitro and in vivo. We assessed the kinetics of DSBs recognition and repair along with the ATM pathway and nuclear sphingolipid metabolism in wild-type (WT) and SMPDL3b overexpressing (OE) human podocytes. We also assessed the extent of DNA damage repair in SMPDL3b knock-down (KD) human podocytes, and C57BL6 WT and podocyte-specific SMPDL3b-knock out (KO) mice after radiation injury. We found that SMPDL3b overexpression enhanced DSBs recognition and repair through modulating ATM nuclear shuttling. OE podocytes were protected against radiation-induced apoptosis by increasing the phosphorylation of p53 at serine 15 and attenuating subsequent caspase-3 cleavage. SMPDL3b overexpression prevented radiation-induced alterations in nuclear ceramide-1-phosphate (C1P) and ceramide levels. Interestingly, exogenous C1P pretreatment radiosensitized OE podocytes by delaying ATM nuclear foci formation and DSBs repair. On the other hand, SMPDL3b knock-down, in vitro and in vivo, induced a significant delay in DSBs repair. Additionally, increased activation of apoptosis was induced in podocytes of SMPDL3b-KO mice compared to WT mice at 24 h post-irradiation. Together, our results unravel a novel role for SMPDL3b in radiation-induced DNA damage response. The current work suggests that SMPDL3b modulates nuclear sphingolipid metabolism, ATM nuclear shuttling, and DSBs repair. © 2022 Federation of American Societies for Experimental Biology.

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Keywords

Atm nuclear shuttling, Dna damage response, Double-strand breaks, Nuclear sphingolipids, Radiation nephropathy, Radiation podocytopathy, Smpdl3b, Sphingolipids, Animals, Ceramides, Dna breaks, double-stranded, Humans, Kidney, Mice, Mice, inbred c57bl, Mice, knockout, Podocytes, Radiation injuries, Sphingomyelin phosphodiesterase, Alpha tubulin, Atm protein, Biological marker, Caspase 3, Ceramide, Ceramide 1 phosphate, Cisplatin, Dna topoisomerase (atp hydrolysing), Enzyme, Histone h2ax, Procaspase 3, Protein p53, Sphingolipid, Sphingomyelin, Sphingomyelin phosphodiesterase acid like 3b, Sphingosine, Synaptopodin, Unclassified drug, Smpdl3b protein, human, Animal cell, Animal experiment, Animal model, Animal tissue, Apoptosis, Article, Cell nucleus, Controlled study, Dna damage, Dna repair, Double strand break repair, Female, Human, Human cell, Immunofluorescence, In vitro study, In vivo study, Liquid chromatography-mass spectrometry, Male, Mouse, Mtt assay, Nonhuman, Nucleocytoplasmic transport, Podocyte, Protein cleavage, Protein expression, Protein phosphorylation, Radiation, Radiosensitization, Sphingolipid metabolism, Western blotting, Wild type, Animal, C57bl mouse, Double stranded dna break, Genetics, Knockout mouse, Metabolism, Radiation injury

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