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Deletion of the Akt/mTORC1 Repressor REDD1 Prevents Visual Dysfunction in a Rodent Model of Type 1 Diabetes
William P Miller1, Chen Yang1, Maria L Mihailescu1
1Department of Cellular and Molecular Physiology, Penn State College of Medicine, Hershey, PA.
Abstract:
Diabetes-induced visual dysfunction is associated with significant neuroretinal cell death. The current study was designed to investigate the role of the Protein Regulated in Development and DNA Damage Response 1 (REDD1) in diabetes-induced retinal cell death and visual dysfunction. We recently demonstrated that REDD1 protein expression was elevated in response to hyperglycemia in the retina of diabetic rodents. REDD1 is an important regulator of Akt and mammalian target of rapamycin and as such plays a key role in neuronal function and survival. In R28 retinal cells in culture, hyperglycemic conditions enhanced REDD1 protein expression concomitant with caspase activation and cell death. By contrast, in REDD1-deficient R28 cells, neither hyperglycemic conditions nor the absence of insulin in culture medium were sufficient to promote cell death. In the retinas of streptozotocin-induced diabetic mice, retinal apoptosis was dramatically elevated compared with nondiabetic controls, whereas no difference was observed in diabetic and nondiabetic REDD1-deficient mice. Electroretinogram abnormalities observed in b-wave and oscillatory potentials of diabetic wild-type mice were also absent in REDD1-deficient mice. Moreover, diabetic wild-type mice exhibited functional deficiencies in visual acuity and contrast sensitivity, whereas diabetic REDD1-deficient mice had no visual dysfunction. The results support a role for REDD1 in diabetes-induced retinal neurodegeneration.
Insights
Protein Regulated in Development and DNA Damage Response 1 (REDD1) drives diabetes-induced retinal cell death and visual dysfunction. Eliminating REDD1 protected against hyperglycemia-related neurodegeneration and vision loss in diabetic models.
Area of Science:
- Ophthalmology
- Diabetology
- Molecular Biology
Background:
- Diabetes mellitus is a leading cause of visual impairment, characterized by neuroretinal cell death.
- Hyperglycemia in diabetes elevates Protein Regulated in Development and DNA Damage Response 1 (REDD1) expression in retinal tissues.
- REDD1 modulates Akt and mTOR signaling pathways, crucial for neuronal survival.
Purpose of the Study:
- To investigate the role of REDD1 in diabetes-associated retinal cell death and visual dysfunction.
- To determine if REDD1 deficiency mitigates hyperglycemia-induced retinal neurodegeneration and vision impairment.
Main Methods:
- Cultured R28 retinal cells exposed to hyperglycemic conditions with and without REDD1.
- Streptozotocin-induced diabetic mouse models (wild-type and REDD1-deficient).
- Assessment of apoptosis, caspase activation, electroretinograms (ERGs), visual acuity, and contrast sensitivity.
Main Results:
- Hyperglycemia increased REDD1 expression, caspase activation, and cell death in R28 cells; REDD1 deficiency prevented this.
- Diabetic wild-type mice showed elevated retinal apoptosis, unlike REDD1-deficient mice.
- REDD1 deficiency ameliorated ERG abnormalities and preserved visual function in diabetic mice.
Conclusions:
- REDD1 plays a critical role in mediating retinal cell death and visual dysfunction in diabetes.
- Targeting REDD1 may offer a therapeutic strategy to prevent diabetic retinopathy and vision loss.

