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Neuroprotective effects of PPARα in retinopathy of type 1 diabetes
Elizabeth A Pearsall1,2, Rui Cheng2, Satoshi Matsuzaki3
1Angiogenesis Laboratory, Department of Ophthalmology, Harvard Medical School, Massachusetts Eye and Ear Infirmary, Boston, MA, United States.
Abstract:
Diabetic retinopathy (DR) is a common neurovascular complication of type 1 diabetes. Current therapeutics target neovascularization characteristic of end-stage disease, but are associated with significant adverse effects. Targeting early events of DR such as neurodegeneration may lead to safer and more effective approaches to treatment. Two independent prospective clinical trials unexpectedly identified that the PPARα agonist fenofibrate had unprecedented therapeutic effects in DR, but gave little insight into the physiological and molecular mechanisms of action. The objective of the present study was to evaluate potential neuroprotective effects of PPARα in DR, and subsequently to identify the responsible mechanism of action. Here we reveal that activation of PPARα had a robust protective effect on retinal function as shown by Optokinetic tracking in a rat model of type 1 diabetes, and also decreased retinal cell death, as demonstrated by a DNA fragmentation ELISA. Further, PPARα ablation exacerbated diabetes-induced decline of visual function as demonstrated by ERG analysis. We further found that PPARα improved mitochondrial efficiency in DR, and decreased ROS production and cell death in cultured retinal neurons. Oxidative stress biomarkers were elevated in diabetic Pparα-/- mice, suggesting increased oxidative stress. Mitochondrially mediated apoptosis and oxidative stress secondary to mitochondrial dysfunction contribute to neurodegeneration in DR. Taken together, these findings identify a robust neuroprotective effect for PPARα in DR, which may be due to improved mitochondrial function and subsequent alleviation of energetic deficits, oxidative stress and mitochondrially mediated apoptosis.
Insights
PPARα activation protects against diabetic retinopathy (DR) by improving mitochondrial function and reducing oxidative stress, offering a potential new therapeutic avenue for this common diabetes complication.
Area of Science:
- Ophthalmology
- Endocrinology
- Neuroscience
Background:
- Diabetic retinopathy (DR) is a leading cause of vision loss in type 1 diabetes patients.
- Current DR treatments target late-stage neovascularization and have adverse effects.
- Early intervention targeting neurodegeneration offers a promising therapeutic strategy.
Purpose of the Study:
- To investigate the neuroprotective effects of PPARα in diabetic retinopathy.
- To elucidate the underlying molecular mechanisms of PPARα's action in DR.
Main Methods:
- Utilized a rat model of type 1 diabetes to assess retinal function via optokinetic tracking and ERG analysis.
- Employed DNA fragmentation ELISA to measure retinal cell death.
- Investigated mitochondrial function, ROS production, and oxidative stress in cultured retinal neurons and diabetic Pparα-/- mice.
Main Results:
- PPARα activation demonstrated significant neuroprotection in a rat model of type 1 diabetes, preserving retinal function.
- PPARα activation reduced retinal cell death and improved mitochondrial efficiency in diabetic conditions.
- PPARα ablation worsened diabetes-induced visual decline and increased oxidative stress markers.
Conclusions:
- PPARα activation exerts a robust neuroprotective effect in diabetic retinopathy.
- Improved mitochondrial function, reduced oxidative stress, and decreased apoptosis are key mechanisms.
- Targeting PPARα represents a potential therapeutic strategy for early-stage diabetic retinopathy.
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