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Published on: February 23, 2024
Macrophage ferritin heavy chain/α-synuclein regulatory axis modulates ferroptosis during kidney injury
Tanima Chatterjee1, Sarah Machado1, Kellen Cowen1
1Division of Nephrology, Department of Medicine.
Abstract:
Macrophages, endowed with remarkable phenotypic plasticity, are essential for orchestrating injury responses and regulating iron homeostasis. Given the central role of ferritin heavy chain (FtH) as a molecular rheostat linking iron sequestration to redox-dependent signaling, we examined how myeloid FtH governs renal iron trafficking and ensuing oxidative stress pathways during acute kidney injury (AKI). Transcriptome analysis revealed coupling of FtH deficiency in monocytes and macrophages with activation of ferroptosis, a regulated cell death associated with iron accumulation. Moreover, myeloid FtH deletion worsened AKI, increasing leukocyte infiltration and iron deposition, together with ferroptosis-associated gene induction, oxidative stress, and lipid peroxidation. Notably, α-synuclein (SNCA), an iron-binding protein and the main pathological driver of Parkinson's disease, was robustly induced both by FtH deficiency and following AKI. Mechanistic studies showed that monomeric SNCA exhibits ferrireductase activity, amplifying redox cycling and promoting ferroptotic cell death. Furthermore, SNCA expression was elevated in kidney pathologies characterized by leukocyte expansion in both mouse models and human cohorts, suggesting that inflammatory microenvironments promote SNCA accumulation and redox imbalance. These findings define a macrophage FtH/SNCA regulatory axis as a key driver of ferroptosis in AKI, implicating SNCA as a pathological nexus between iron dyshomeostasis and inflammatory kidney injury.
Insights
Myeloid ferritin heavy chain (FtH) deficiency in macrophages promotes ferroptosis during acute kidney injury (AKI). This involves alpha-synuclein (SNCA) induction, exacerbating iron dyshomeostasis and kidney damage.
Area of Science:
- Cell Biology
- Renal Physiology
- Immunology
Background:
- Macrophages (MΦ) are crucial for injury response and iron balance.
- Ferritin heavy chain (FtH) regulates iron sequestration and redox signaling.
- Acute kidney injury (AKI) involves complex cellular and molecular pathways.
Purpose of the Study:
- To investigate the role of myeloid FtH in renal iron trafficking and oxidative stress during AKI.
- To elucidate the involvement of alpha-synuclein (SNCA) in AKI-associated ferroptosis.
- To define the MΦ FtH-SNCA regulatory axis in kidney injury.
Main Methods:
- Transcriptome analysis in myeloid FtH-deficient models.
- Assessment of kidney injury markers, iron deposition, and oxidative stress.
- Mechanistic studies on SNCA function and expression in kidney pathologies.
Main Results:
- FtH deficiency in MΦ correlates with ferroptosis activation and worsened AKI.
- Myeloid FtH deletion increases leukocyte infiltration, iron deposition, and oxidative stress.
- SNCA is induced by FtH deficiency and AKI, exhibiting ferrireductase activity that promotes ferroptosis.
Conclusions:
- A MΦ FtH-SNCA axis drives ferroptosis in AKI.
- SNCA acts as a pathological link between iron dyshomeostasis and inflammatory kidney injury.
- Targeting this axis may offer therapeutic strategies for AKI.
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