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Ferroptosis: An Energetic Villain of Age-Related Macular Degeneration
1Henan Eye Institute, Henan Eye Hospital, People's Hospital of Zhengzhou University, Henan University School of Medicine, Henan Provincial People's Hospital, Zhengzhou 450003, China.
Abstract:
Iron homeostasis plays an important role in maintaining cellular homeostasis; however, excessive iron can promote the production of reactive oxygen species (ROS). Ferroptosis is iron-dependent programmed cell death that is characterized by excessive iron accumulation, elevated lipid peroxides, and the overproduction of ROS. The maintenance of iron homeostasis is contingent upon the activity of the transferrin receptor (TfR), ferritin (Ft), and ferroportin (FPn). In the retina, iron accumulation and lipid peroxidation can contribute to the development of age-related macular degeneration (AMD). This phenomenon can be explained by the occurrence of the Fenton reaction, in which the interaction between divalent iron and hydrogen peroxide leads to the generation of highly reactive hydroxyl radicals. The hydroxyl radicals exhibit a propensity to attack proteins, lipids, nucleic acids, and carbohydrates, thereby instigating oxidative damage and promoting lipid peroxidation. Ultimately, these processes culminate in cell death and retinal degeneration. In this context, a comprehensive understanding of the exact mechanisms underlying ferroptosis may hold significant importance for developing therapeutic interventions. This review summarizes recent findings on iron metabolism, cellular ferroptosis, and lipid metabolism in the aging retina. We also introduce developments in the therapeutic strategies using iron chelating agents. Further refinements of these knowledges would deepen our comprehension of the pathophysiology of AMD and advance the clinical management of degenerative retinopathy. A comprehensive search strategy was employed to identify relevant studies on the role of ferroptosis in AMD. We performed systematic searches of the PubMed and Web of Science electronic databases from inception to the current date. The keywords used in the search included "ferroptosis", "AMD", "age-related macular degeneration", "iron metabolism", "oxidative stress", and "ferroptosis pathways". Peer-reviewed articles, including original research, reviews, meta-analyses, and clinical studies, were included in this paper, with a focus on the molecular mechanisms of ferroptosis in AMDs. Studies not directly related to ferroptosis, iron metabolism, or oxidative stress in the context of AMD were excluded. Furthermore, articles that lacked sufficient data or were not peer-reviewed (e.g., conference abstracts, editorials, or opinion pieces) were not considered.
Insights
Iron overload causes ferroptosis, a cell death linked to age-related macular degeneration (AMD). Understanding iron metabolism and ferroptosis pathways is key for developing new AMD treatments.
Area of Science:
- Cellular Biology
- Ophthalmology
- Biochemistry
Background:
- Iron homeostasis is critical for cellular function, but excess iron promotes reactive oxygen species (ROS) and oxidative damage.
- Ferroptosis, an iron-dependent cell death, involves iron accumulation, lipid peroxidation, and ROS overproduction.
- In the retina, iron accumulation and lipid peroxidation are implicated in age-related macular degeneration (AMD) pathogenesis.
Purpose of the Study:
- To review recent findings on iron metabolism, ferroptosis, and lipid metabolism in the aging retina.
- To explore therapeutic strategies, including iron chelating agents, for managing ferroptosis in AMD.
- To deepen the understanding of AMD pathophysiology and advance clinical management of degenerative retinopathy.
Main Methods:
- Systematic literature search of PubMed and Web of Science databases.
- Inclusion of peer-reviewed articles on ferroptosis, AMD, iron metabolism, oxidative stress, and ferroptosis pathways.
- Exclusion of studies not directly related to ferroptosis in AMD or lacking sufficient data.
Main Results:
- Excess iron accumulation and lipid peroxidation contribute to retinal degeneration via the Fenton reaction and ROS generation.
- Ferroptosis mechanisms in AMD involve complex interactions between iron, lipid, and oxidative stress pathways.
- Iron chelating agents show potential as therapeutic interventions for ferroptosis-related retinal degeneration.
Conclusions:
- A thorough understanding of ferroptosis mechanisms is crucial for developing effective treatments for AMD.
- Targeting iron metabolism and ferroptosis pathways offers promising avenues for combating degenerative retinopathy.
- Further research refining knowledge of ferroptosis in AMD will advance clinical management and patient outcomes.
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