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Author Spotlight: Tracing the Ferroptotic Signatures and Cell Death Dynamics in Medulloblastoma for Advanced Therapeutics
Published on: March 15, 2024
Adenine overload induces ferroptosis in human primary proximal tubular epithelial cells
Muhammad Ali Khan1,2,3,4,5,6, Purba Nag3,4, Anca Grivei3,4
1NHMRC CKD CRE (CKD.QLD), University of Queensland, Brisbane, Australia.
Abstract:
The pathogenesis of crystal nephropathy involves deposition of intratubular crystals, tubular obstruction and cell death. The deposition of 8-dihydroxyadenine (DHA) crystals within kidney tubules, for instance, is caused by a hereditary deficiency of adenine phosphoribosyl transferase in humans or adenine overload in preclinical models. However, the downstream pathobiological patterns of tubular cell attrition in adenine/DHA-induced nephropathy remain poorly understood. In this study, we investigated: (i) the modes of adenine-induced tubular cell death in an experimental rat model and in human primary proximal tubular epithelial cells (PTEC); and (ii) the therapeutic effect of the flavonoid baicalein as a novel cell death inhibitor. In a rat model of adenine diet-induced crystal nephropathy, significantly elevated levels of tubular iron deposition and lipid peroxidation (4-hydroxynonenal; 4-HNE) were detected. This phenotype is indicative of ferroptosis, a novel form of regulated necrosis. In cultures of human primary PTEC, adenine overload-induced significantly increased mitochondrial superoxide levels, mitochondrial depolarisation, DNA damage and necrotic cell death compared with untreated PTEC. Molecular interrogation of adenine-stimulated PTEC revealed a significant reduction in the lipid repair enzyme glutathione peroxidase 4 (GPX4) and the significant increase in 4-HNE compared with untreated PTEC, supporting the concept of ferroptotic cell death. Moreover, baicalein treatment inhibited ferroptosis in adenine-stimulated PTEC by selectively modulating the mitochondrial antioxidant enzyme superoxide dismutase 2 (SOD2) and thus, suppressing mitochondrial superoxide production and DNA damage. These data identify ferroptosis as the primary pattern of PTEC necrosis in adenine-induced nephropathy and establish baicalein as a potential therapeutic tool for the clinical management of ferroptosis-associated crystal nephropathies (e.g., DHA nephropathy, oxalate nephropathy).
Insights
Crystal nephropathy involves kidney tubule cell death. This study identifies ferroptosis as a key cell death pathway in adenine-induced kidney injury and shows baicalein can inhibit this process.
Area of Science:
- Nephrology
- Cell Biology
- Biochemistry
Background:
- Crystal nephropathy pathogenesis involves intratubular crystal deposition, tubular obstruction, and cell death.
- 8-dihydroxyadenine (DHA) crystal deposition causes kidney issues due to enzyme deficiency or adenine overload.
- The specific cell death mechanisms in adenine/DHA-induced nephropathy are not fully understood.
Purpose of the Study:
- Investigate adenine-induced tubular cell death modes in rats and human proximal tubular epithelial cells (PTEC).
- Evaluate the therapeutic potential of the flavonoid baicalein as a novel cell death inhibitor.
Main Methods:
- Utilized a rat model of adenine diet-induced crystal nephropathy.
- Employed human primary PTEC cultures subjected to adenine overload.
- Assessed tubular iron deposition, lipid peroxidation (4-HNE), mitochondrial function, DNA damage, and key enzyme levels (GPX4, SOD2).
Main Results:
- Adenine-induced nephropathy in rats showed increased iron deposition and 4-HNE, indicating ferroptosis.
- Adenine-overloaded human PTEC exhibited increased mitochondrial superoxide, depolarization, DNA damage, and necrosis.
- Baicalein treatment suppressed ferroptosis in PTEC by modulating SOD2, reducing superoxide production and DNA damage.
Conclusions:
- Ferroptosis is identified as the primary cell death pattern in adenine-induced PTEC necrosis.
- Baicalein demonstrates potential as a therapeutic agent for ferroptosis-associated crystal nephropathies like DHA and oxalate nephropathy.
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