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Ferroptosis-Mediated Cell-Specific Damage: Molecular Cascades and Therapeutic Breakthroughs in Diabetic Retinopathy
Yan Chen1,2,3, Rongyu Wang1,3,4, Nannan Zhang3,5
1Reproductive Endocrinology and Regulation Laboratory, West China Second University Hospital, Sichuan University, Chengdu 610064, China.
Abstract:
Diabetic retinopathy (DR), a leading cause of vision loss in diabetic patients, involves complex pathological mechanisms including neurodegeneration, microvascular damage, inflammation, and oxidative stress. Recent studies have identified ferroptosis-a ferrodependent cell death mechanism-as playing a pivotal role in DR development. Existing evidence indicates that oxidative stress and mitochondrial dysfunction induced by hyperglycemia may contribute to retinal damage through the ferroptosis pathway in DR. Ferroptosis inhibitors such as Ferostatin-1 have demonstrated protective effects against DR in animal models. The core mechanisms of ferroptosis involve iron homeostasis imbalance and lipid peroxidation, with key regulatory pathways including GPX4-dependent and non-dependent mechanisms (such as FSP1-CoQ10). Within the signaling network, Nrf2 inhibits ferroptosis, p53 promotes it, while Hippo/YAP functions are environment-dependent. Non-coding RNAs and epigenetic modifications (e.g., DNA methylation and histone modifications) also participate in regulation. In DR, iron overload, GPX4 dysfunction, and p53 upregulation collectively induce ferroptosis in various types of retinal cells, making these pathways potential therapeutic targets. This review not only elaborates the role of iron metabolism imbalance and ferroptosis pathway in the occurrence and development of DR but also summarizes the new therapeutic approaches of DR targeting ferroptosis pathway. Investigating the relationship between ferroptosis and DR not only helps unravel its core pathophysiological mechanisms but also provides theoretical foundations for developing novel therapeutic approaches.
Insights
Diabetic retinopathy (DR) involves ferroptosis, a cell death pathway driven by iron. Targeting ferroptosis pathways shows promise for new DR treatments, offering hope for vision loss prevention.
Area of Science:
- Ophthalmology
- Cell Biology
- Biochemistry
Background:
- Diabetic retinopathy (DR) is a major cause of vision loss in diabetes patients.
- DR pathogenesis involves neurodegeneration, inflammation, oxidative stress, and microvascular damage.
- Ferroptosis, an iron-dependent cell death, is increasingly recognized as a key mechanism in DR.
Purpose of the Study:
- To review the role of iron metabolism and ferroptosis in diabetic retinopathy.
- To summarize novel therapeutic strategies targeting ferroptosis for DR treatment.
- To elucidate the pathophysiological mechanisms linking ferroptosis and DR.
Main Methods:
- Literature review of studies on ferroptosis and diabetic retinopathy.
- Analysis of molecular pathways involved in ferroptosis regulation (e.g., GPX4, Nrf2, p53).
- Examination of the role of iron overload and lipid peroxidation in retinal cell damage.
Main Results:
- Hyperglycemia-induced oxidative stress and mitochondrial dysfunction contribute to DR via ferroptosis.
- Imbalance in iron homeostasis and lipid peroxidation are central to ferroptosis in DR.
- Ferroptosis inhibitors (e.g., Ferostatin-1) show protective effects in DR animal models.
- Key pathways like GPX4, Nrf2, p53, and epigenetic modifications regulate ferroptosis in DR.
Conclusions:
- Ferroptosis is a critical mechanism in the development of diabetic retinopathy.
- Targeting iron metabolism and ferroptosis pathways offers potential therapeutic avenues for DR.
- Understanding ferroptosis in DR provides a foundation for developing innovative treatments to prevent vision loss.
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