REDD1 Activates a ROS-Generating Feedback Loop in the Retina of Diabetic Mice

William P Miller1, Allyson L Toro1, Alistair J Barber1,2

  • 1Department of Cellular and Molecular Physiology, Penn State College of Medicine, Hershey, Pennsylvania, United States.

Abstract

Insights

The stress protein REDD1 worsens diabetes-induced oxidative stress and vision problems by activating a feedback loop. Targeting REDD1 and reactive oxygen species (ROS) may prevent vision loss in diabetes.

Area of Science:

  • Biochemistry
  • Ophthalmology
  • Cell Biology

Background:

  • Diabetes mellitus is a leading cause of visual impairment.
  • Oxidative stress plays a critical role in diabetic retinopathy.
  • The role of the stress-response protein REDD1 in diabetic retinal pathology is not fully understood.

Purpose of the Study:

  • To investigate the involvement of REDD1 in diabetes-induced oxidative stress.
  • To elucidate the mechanism by which REDD1 contributes to retinal pathology in diabetes.
  • To assess the therapeutic potential of targeting REDD1 and oxidative stress in diabetic vision dysfunction.

Main Methods:

  • Streptozotocin-induced diabetes model in wild-type and REDD1-deficient mice.
  • Assessment of visual function using virtual optometry.
  • Analysis of retinal tissue and R28 cells for REDD1 expression, reactive oxygen species (ROS), and mitochondrial membrane potential.

Main Results:

  • Diabetic mice showed increased REDD1 expression and ROS in retinas.
  • Hyperglycemia enhanced REDD1 and ROS in cultured retinal cells, effects absent in REDD1-deficient models.
  • N-acetyl-l-cysteine (NAC) normalized ROS, reduced REDD1, and improved visual function in diabetic mice.

Conclusions:

  • Hyperglycemia-induced REDD1 activates a ROS-generating feedback loop involving Akt/GSK3.
  • REDD1 plays a significant role in diabetes-induced oxidative stress and visual dysfunction.
  • Targeting REDD1 and ROS may offer a therapeutic strategy for diabetic eye disease.

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