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Iron Overload-Dependent Ferroptosis Aggravates LPS-Induced Acute Lung Injury by Impairing Mitochondrial Function
Xiaocen Wang1, Tingting Wei1, Jinlong Luo1
1Department of Pulmonary and Critical Care Medicine, Zhongshan Hospital, Fudan University, 180 Fenglin Road, Shanghai, China.
Abstract:
Ferroptosis is a newly proposed form of programmed cell death that is iron-dependent and closely linked to oxidative stress. Its specific morphological changes include shrunken mitochondria, increased density of mitochondrial membrane, and rupture or disappearance of mitochondrial cristae. The main mechanism of ferroptosis involves excessive free iron reacting with membrane phospholipids, known as the Fenton reaction, resulting in lipid peroxidation. However, the role of iron in acute lung injury (ALI) remains largely unknown. In this study, LPS was instilled into the airway to induce ALI in mice. We observed a significant increase in iron concentration during ALI, accompanied by elevated levels of lipid peroxidation markers such as malonaldehyde (MDA) and 4-hydroxynonenal (4-HNE). Treatment with the iron chelator deferoxamine (DFO) or ferroptosis inhibitor ferrostatin-1 (Fer-1) reversed lipid peroxidation and significantly attenuates lung injury. Similarly, DFO or Fer-1 treatment improved the cell survival significantly in vitro. These results demonstrated that ferroptosis occurs during ALI and that targeting ferroptosis is an effective treatment strategy. Interestingly, we found that the increased iron was primarily concentrated in mitochondria and DFO treatment effectively restored normal mitochondria morphology. To further confirm the damaging effect of iron on mitochondria, we performed mitochondrial stress tests in vitro, which revealed that iron stimulation led to mitochondrial dysfunction, characterized by impaired basal respiratory capacity, ATP production capacity, and maximum respiratory capacity. MitoTEMPO, an antioxidant targeting mitochondria, exhibited superior efficacy in improving iron-induced mitochondrial dysfunction compared to the broad-spectrum antioxidant NAC. Treatment with MitoTEMPO more effectively alleviated ALI. In conclusion, ferroptosis contributes to the pathogenesis of ALI and aggravates ALI by impairing mitochondrial function.
Insights
Ferroptosis, a form of cell death involving iron and lipid peroxidation, contributes to acute lung injury (ALI). Inhibiting ferroptosis or targeting mitochondria effectively treats ALI by reducing cellular damage.
Area of Science:
- Cell Biology
- Pathophysiology
- Toxicology
Background:
- Ferroptosis is an iron-dependent programmed cell death pathway linked to oxidative stress and lipid peroxidation.
- The role of iron and ferroptosis in acute lung injury (ALI) pathogenesis is not well understood.
- Mitochondrial dysfunction is implicated in various lung pathologies.
Purpose of the Study:
- To investigate the role of ferroptosis in LPS-induced acute lung injury (ALI) in mice.
- To explore the therapeutic potential of targeting ferroptosis and mitochondrial dysfunction in ALI.
Main Methods:
- Acute lung injury (ALI) was induced in mice using lipopolysaccharide (LPS) instillation.
- Iron concentration, lipid peroxidation markers (MDA, 4-HNE), and mitochondrial function were assessed.
- Mice were treated with iron chelator deferoxamine (DFO), ferroptosis inhibitor ferrostatin-1 (Fer-1), or MitoTEMPO.
Main Results:
- ALI significantly increased iron concentration and lipid peroxidation in the lungs.
- DFO and Fer-1 treatment attenuated lung injury, reversed lipid peroxidation, and improved cell survival in vitro.
- Iron accumulation in mitochondria impaired mitochondrial function, which was improved by MitoTEMPO, leading to better ALI outcomes.
Conclusions:
- Ferroptosis plays a significant role in the pathogenesis of acute lung injury (ALI).
- Targeting ferroptosis and mitochondrial dysfunction, particularly with mitochondria-targeted antioxidants like MitoTEMPO, offers a promising therapeutic strategy for ALI.
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