Related Experiment Video
Updated: Mar 25, 2026

Live Images of GLUT4 Protein Trafficking in Mouse Primary Hypothalamic Neurons Using Deconvolution Microscopy
Published on: December 7, 2017
Biological Characterization of Gene Response to Insulin-Induced Hypoglycemia in Mouse Retina
Martine Emery1, Natacha Nanchen1, Frédéric Preitner2
1IRO, Institute for Research in Ophthalmology, Sion, Switzerland.
Abstract:
Glucose is the most important metabolic substrate of the retina and maintenance of normoglycemia is an essential challenge for diabetic patients. Chronic, exaggerated, glycemic excursions could lead to cardiovascular diseases, nephropathy, neuropathy and retinopathy. We recently showed that hypoglycemia induced retinal cell death in mouse via caspase 3 activation and glutathione (GSH) decrease. Ex vivo experiments in 661W photoreceptor cells confirmed the low-glucose induction of death via superoxide production and activation of caspase 3, which was concomitant with a decrease of GSH content. We evaluate herein retinal gene expression 4 h and 48 h after insulin-induced hypoglycemia. Microarray analysis demonstrated clusters of genes whose expression was modified by hypoglycemia and we discuss the potential implication of those genes in retinal cell death. In addition, we identify by gene set enrichment analysis, three important pathways, including lysosomal function, GSH metabolism and apoptotic pathways. Then we tested the effect of recurrent hypoglycemia (three successive 4h periods of hypoglycemia spaced by 48 h recovery) on retinal cell death. Interestingly, exposure to multiple hypoglycemic events prevented GSH decrease and retinal cell death, or adapted the retina to external stress by restoring GSH level comparable to control situation. We hypothesize that scavenger GSH is a key compound in this apoptotic process, and maintaining "normal" GSH level, as well as a strict glycemic control, represents a therapeutic challenge in order to avoid side effects of diabetes, especially diabetic retinopathy.
Insights
Hypoglycemia can cause retinal cell death by decreasing glutathione (GSH). However, recurrent hypoglycemia may protect the retina by restoring GSH levels, presenting a therapeutic challenge for diabetic retinopathy.
Area of Science:
- Ophthalmology
- Metabolic Research
- Cell Biology
Background:
- Glucose is vital for retinal metabolism; maintaining normal blood sugar is crucial for diabetics.
- Diabetic complications include retinopathy, nephropathy, neuropathy, and cardiovascular disease due to high blood sugar.
- Previous studies indicated hypoglycemia induces retinal cell death via caspase 3 activation and glutathione (GSH) depletion.
Purpose of the Study:
- To investigate the impact of insulin-induced hypoglycemia on retinal gene expression.
- To identify key molecular pathways involved in hypoglycemia-induced retinal cell death.
- To examine the effect of recurrent hypoglycemia on retinal cell death and GSH levels.
Main Methods:
- Insulin-induced hypoglycemia in mice.
- Retinal gene expression analysis using microarrays.
- Gene set enrichment analysis to identify affected pathways.
- Ex vivo experiments on 661W photoreceptor cells.
- Assessment of glutathione (GSH) levels and cell death.
Main Results:
- Hypoglycemia altered retinal gene expression at 4h and 48h post-induction.
- Key pathways identified include lysosomal function, GSH metabolism, and apoptosis.
- Recurrent hypoglycemia prevented GSH decrease and subsequent retinal cell death.
- Multiple hypoglycemic events restored GSH levels, suggesting retinal adaptation.
Conclusions:
- Glutathione (GSH) is a critical factor in hypoglycemia-induced retinal apoptosis.
- Recurrent hypoglycemia may offer a protective effect against retinal cell death by maintaining GSH levels.
- Strict glycemic control and maintaining adequate GSH levels are therapeutic challenges to prevent diabetic retinopathy.
More Related Videos
08:32Studying the Hypothalamic Insulin Signal to Peripheral Glucose Intolerance with a Continuous Drug Infusion System into the Mouse Brain
Published on: January 4, 2018
08:13Study of In Vivo Glucose Metabolism in High-fat Diet-fed Mice Using Oral Glucose Tolerance Test OGTT and Insulin Tolerance Test ITT
Published on: January 7, 2018