Cysteinyl leukotriene receptor 1 regulates cellular glucose levels in human retinal cells

Andreas Koller1, Susanne Maria Brunner1, Julia Preishuber-Pflügl1

  • 1Research Program for Experimental Ophthalmology and Glaucoma Research, Department of Ophthalmology and Optometry, University Hospital of the Paracelsus Medical University, Salzburg, Austria.

Molecular Vision
|November 27, 2025
PubMed
Abstract

Insights

Inhibition of Cysteinyl leukotriene receptor 1 (CysLTR1) impacts retinal cell glucose levels. Its activity is complex, showing reversed effects under high glucose, suggesting a potential therapeutic target for diabetes and retinopathy.

Area of Science:

  • Ophthalmology
  • Endocrinology
  • Cell Biology

Background:

  • Cysteinyl leukotriene receptor 1 (CysLTR1) is a G protein-coupled receptor with known roles in inflammation and insulin secretion.
  • CysLTR1 inhibition has shown promise in increasing retinal cell survival in early diabetic retinopathy.
  • The role of CysLTR1 in regulating glucose levels within retinal vascular cells remains largely unexplored.

Purpose of the Study:

  • To investigate the effect of CysLTR1 inhibition on intracellular glucose levels in retinal endothelial cells (ECs), pericytes (PCs), and ARPE-19 cells.
  • To determine how CysLTR1 modulates glucose levels under both standard and high-glucose conditions.
  • To assess the impact of CysLTR1 inhibition on the integrity of retinal cell monolayers.

Main Methods:

  • Human retinal ECs, PCs, and ARPE-19 cells were cultured under standard and high-glucose conditions.
  • Cells were treated with CysLTR1 antagonists (montelukast, zafirlukast) for varying durations.
  • CysLTR1 expression, CysLT secretion, intracellular glucose levels, cell viability, and monolayer electrical resistance were analyzed.

Main Results:

  • CysLTR1 inhibition increased intracellular glucose in retinal cells under standard glucose conditions.
  • Under high-glucose conditions, CysLTR1 inhibition initially decreased and then increased intracellular glucose in ARPE-19 cells.
  • CysLTR1 inhibition affected the tightness of retinal cell monolayers, with varied effects depending on glucose concentration.

Conclusions:

  • CysLTR1 activity directly influences cellular glucose levels in retinal cells, supporting its potential as a therapeutic target for type 2 diabetes and diabetic retinopathy.
  • The modulatory effect of CysLTR1 on glucose levels is complex and can be reversed under acute metabolic stress.
  • Further research is warranted to fully elucidate the intricate role of CysLTR1 in glucose metabolism within the retinal context.

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