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Updated: Jan 10, 2026

Quantification of Diabetes-induced Adherent Leukocytes in Retinal Vasculature
Published on: January 24, 2025
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.
Purpose:
Cysteinyl leukotriene receptor 1 (CysLTR1), originally described as a proinflammatory G protein-coupled receptor, has been shown to possess diverse nonimmunological properties. One of these functions is to modulate glucose-stimulated insulin secretion in β cells. Furthermore, the inhibition of CysLTR1 increases retinal cell survival in early diabetic retinopathy. Nevertheless, the potential of CysLTR1 to modulate glucose levels in retinal vascular cells, such as endothelial cells (ECs) and pericytes (PCs), is unknown. Therefore, we determined the intracellular glucose levels in retinal cells in vitro after the inhibition of CysLTR1 under standard and high-glucose culture conditions.
Methods:
Primary human ECs, PCs, and the ARPE-19 cell line were cultured under standard (5.5 mmol/l glucose + 27.5 mmol/l mannitol) and high-glucose (33.0 mmol/l) conditions in the absence and presence of the specific CysLTR1 antagonists montelukast and zafirlukast for 1, 3, and 7 days. CysLTR1 expression was determined by immunofluorescence microscopy. CysLT secretion was measured by enzyme-linked immunosorbent assay. The effects of high glucose and CysLTR1 inhibition on cell viability and intracellular glucose levels were analyzed by luminescence-based assays. Furthermore, the transendothelial and transepithelial electrical resistance of the ECs and ARPE-19 monolayers was measured.
Results:
CysLTR1 inhibition under standard glucose culture conditions increased the cellular glucose levels in retinal ECs, PCs, and ARPE-19 cells after 1 and 3 days of treatment. Under high-glucose culture conditions, CysLTR1 inhibition for 1 day reduced the intracellular glucose level in ARPE-19 cells. However, CysLTR1 inhibition for 3 days increased the level of intracellular glucose in ARPE-19 cells under high-glucose culture conditions. Furthermore, CysLTR1 inhibition reduced the tightness of the EC and ARPE-19 monolayers under standard culture conditions but increased the tightness of the ARPE-19 monolayers under high-glucose conditions.
Conclusions:
CysLTR1 is considered a potential target for the treatment of type 2 diabetes and early diabetic retinopathy. Our data revealed that CysLTR1 activity directly regulates cellular glucose levels in retinal cells, supporting these hypotheses. Interestingly, the effect of CysLTR1 activity on glucose levels was reversed under acute metabolic stress. Thus, the activity of CysLTR1 appears to be more complex in terms of glucose metabolism and needs to be studied in more detail.
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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