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α1D Adrenergic Receptor Antagonism Protects Against High Glucose-Induced Mitochondrial Dysfunction and Blood Retinal
Erika Giuffrida1, Chiara Bianca Maria Platania1,2, Francesca Lazzara1
1Department of Biomedical and Biotechnological Sciences, School of Medicine, University of Catania, 95125 Catania, Italy.
Abstract:
Diabetic retinopathy (DR) is a microvascular complication of diabetes mellitus and a leading cause of blindness in the working-age population. Current pharmacological treatments counteract DR's later stages without targeting the earlier disease phases. Using computational approaches, our group previously identified the α1D and α2C adrenoceptors (α1DR and α2CR) as new putative drug targets for DR. Therefore, the aim of this work was to validate the role of these receptors in an in vitro model of DR, i.e., retinal pigmented epithelial cells (ARPE-19) challenged with high glucose (HG, 50 mM). We examined the effects of selective α1DR and α2CR agonists and antagonists on hyperglycemia-induced mitochondrial dysfunction and blood retinal barrier breakdown. Seahorse XFe was employed to assess the oxygen consumption rate and extracellular acidification rate. The integrity of the ARPE-19 barrier was evaluated through transepithelial electrical resistance measurements and a sodium fluorescein permeability test. α1DR pharmacological modulation through the α1DR antagonist BMY 7378 (0.1-1 µM, 24 h), but not α2CR, significantly attenuated HG-induced mitochondrial dysfunction. BMY 7378 (0.1-1 µM, 48 h) also prevented HG-mediated damage to retinal epithelial integrity. In contrast, the α1DR agonist phenylephrine (1-10 μM, 24 h) further reduced ARPE-19 mitochondrial activity compared to HG, indicating that α1D activation is directly implicated in DR-mediated mitochondrial dysfunction. In conclusion, the current in vitro study validated α1DR as a pharmacological target for DR.
Insights
Diabetic retinopathy (DR) drug targets were investigated. The alpha-1D adrenoceptor (α1DR) was validated as a potential therapeutic target, showing promise in preventing mitochondrial dysfunction and retinal barrier damage in an in vitro DR model.
Area of Science:
- Ophthalmology
- Pharmacology
- Cell Biology
Background:
- Diabetic retinopathy (DR) is a leading cause of blindness, stemming from diabetes mellitus complications.
- Current treatments for DR address later stages, lacking efficacy for early disease phases.
- Previous computational studies identified α1D and α2C adrenoceptors (α1DR, α2CR) as potential DR drug targets.
Purpose of the Study:
- To validate the role of α1DR and α2CR in an in vitro model of diabetic retinopathy.
- To investigate the effects of selective receptor agonists and antagonists on high glucose-induced cellular damage.
Main Methods:
- Utilized an in vitro model using retinal pigmented epithelial cells (ARPE-19) exposed to high glucose (HG).
- Assessed mitochondrial function using Seahorse XFe (oxygen consumption rate, extracellular acidification rate).
- Evaluated retinal barrier integrity via transepithelial electrical resistance and sodium fluorescein permeability assays.
Main Results:
- α1DR antagonist BMY 7378 significantly attenuated HG-induced mitochondrial dysfunction and retinal epithelial barrier damage.
- α1DR activation with phenylephrine exacerbated HG-mediated mitochondrial dysfunction in ARPE-19 cells.
- α2CR modulation did not show significant effects on the studied parameters.
Conclusions:
- The α1D adrenoceptor (α1DR) is validated as a pharmacological target for diabetic retinopathy.
- Targeting α1DR may offer a therapeutic strategy for mitigating early-stage DR pathology, including mitochondrial dysfunction and barrier breakdown.
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