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Published on: March 15, 2024
Targeting activated kidney fibroblasts via ferroptosis: a potential antifibrotic strategy
Inga Söerensen-Zender1, Rong Song1, Julius Sinning1
1Department of Nephrology and Hypertension, Hannover Medical School, Germany.
Abstract:
Kidney fibrosis is characterized by excessive deposition of extracellular matrix, which is ultimately disrupting normal renal architecture. Despite its clinical relevance, no targeted antifibrotic therapies are currently available. Myofibroblasts, primarily derived from pericytes and resident fibroblasts, are key effectors of fibrosis due to their high extracellular matrix production. Here, we tested the hypothesis that ferroptosis induction would enable the targeted elimination of activated kidney fibroblasts. We found that kidney fibroblasts exhibit marked sensitivity to ferroptotic cell death upon exposure to the ferroptosis inducer RAS-selective lethal 3 (RSL3), an effect further amplified by transforming growth factor-β stimulation. In tissue slice cultures of murine fibrotic kidneys, RSL3 eliminated myofibroblasts without causing overt damage to other cell types. Extending these findings in vivo, we applied a postischemia/reperfusion model of kidney fibrosis and demonstrated that repeated low-dose systemic administration of RSL3 significantly reduced the activated fibroblast population without inducing appreciable injury to parenchymal cells. These results provide proof-of-principle that the ferroptosis susceptibility of activated fibroblasts may offer a potential strategy for the selective depletion of profibrotic effector cells in kidney fibrosis.NEW & NOTEWORTHY This study reveals ferroptosis, a pharmacologically inducible form of cell death, as a novel mechanism to eliminate activated fibroblasts, the main drivers of kidney fibrosis. Due to their high ferroptosis sensitivity, these cells are selectively depleted by RSL3 in vitro, in kidney tissue slice cultures, and in fibrotic kidneys in vivo. These findings highlight ferroptosis induction as a promising antifibrotic strategy in kidney disease.
Insights
Targeting kidney fibrosis involves inducing ferroptosis (programmed cell death) in activated fibroblasts. This approach selectively eliminates myofibroblasts, offering a potential new therapy for kidney fibrosis.
Area of Science:
- Nephrology
- Cell Biology
- Biochemistry
Background:
- Kidney fibrosis involves excessive extracellular matrix deposition, disrupting renal architecture.
- Currently, no targeted anti-fibrotic therapies exist for kidney fibrosis.
- Activated fibroblasts and myofibroblasts are key contributors to fibrosis through high extracellular matrix production.
Purpose of the Study:
- To investigate if ferroptosis induction can selectively eliminate activated kidney fibroblasts.
- To assess the efficacy and safety of ferroptosis induction as a therapeutic strategy for kidney fibrosis.
Main Methods:
- Utilized the ferroptosis inducer RAS-selective lethal 3 (RSL3) on kidney fibroblasts and murine fibrotic kidney tissue slices.
- Administered RSL3 in vivo using a post-ischemia/reperfusion model of kidney fibrosis.
- Evaluated the impact of RSL3 on myofibroblast populations and parenchymal cell injury.
Main Results:
- Kidney fibroblasts showed high sensitivity to ferroptosis induced by RSL3, an effect enhanced by TGF-β.
- RSL3 effectively eliminated myofibroblasts in murine fibrotic kidney tissue slices without significant damage to other cells.
- In vivo, RSL3 administration reduced activated fibroblasts in a kidney fibrosis model, with no appreciable parenchymal cell injury.
Conclusions:
- Activated kidney fibroblasts are susceptible to ferroptosis.
- Targeted ferroptosis induction offers a promising strategy for selectively depleting profibrotic effector cells in kidney fibrosis.
- This study provides proof-of-principle for developing novel anti-fibrotic therapies based on ferroptosis.

