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Updated: Jun 19, 2026

Endothelial Cell Transcytosis Assay as an In Vitro Model to Evaluate Inner Blood-Retinal Barrier Permeability
Published on: June 7, 2022
Functional implication of Dp71 in osmoregulation and vascular permeability of the retina
Abdoulaye Sene1, Ramin Tadayoni, Thomas Pannicke
1Institut National de la Sante et de la Recherche Médicale, UMR_S 968, Institut de la Vision, Paris, France.
Abstract:
Functional alterations of Müller cells, the principal glia of the retina, are an early hallmark of most retina diseases and contribute to their further progression. The molecular mechanisms of these reactive Müller cell alterations, resulting in disturbed retinal homeostasis, remain largely unknown. Here we show that experimental detachment of mouse retina induces mislocation of the inwardly rectifying potassium channels (Kir4.1) and a downregulation of the water channel protein (AQP4) in Müller cells. These alterations are associated with a strong decrease of Dp71, a cytoskeleton protein responsible for the localization and the clustering of Kir4.1 and AQP4. Partial (in detached retinas) or total depletion of Dp71 in Müller cells (in Dp71-null mice) impairs the capability of volume regulation of Müller cells under osmotic stress. The abnormal swelling of Müller cells In Dp71-null mice involves the action of inflammatory mediators. Moreover, we investigated whether the alterations in Müller cells of Dp71-null mice may interfere with their regulatory effect on the blood-retina barrier. In the absence of Dp71, the retinal vascular permeability was increased as compared to the controls. Our results reveal that Dp71 is crucially implicated in the maintenance of potassium homeostasis, in transmembraneous water transport, and in the Müller cell-mediated regulation of retinal vascular permeability. Furthermore, our data provide novel insights into the mechanisms of retinal homeostasis provided by Müller cells under normal and pathological conditions.
Insights
Dp71, a key cytoskeleton protein, is vital for retinal Müller cell function. Its depletion disrupts potassium and water balance, increasing retinal vascular permeability and contributing to vision diseases.
Area of Science:
- Neuroscience
- Ophthalmology
- Cell Biology
Background:
- Müller cells are crucial retinal glia whose functional alterations are early indicators of retinal diseases.
- The molecular mechanisms underlying reactive Müller cell changes and disturbed retinal homeostasis are not fully understood.
Purpose of the Study:
- To investigate the role of the cytoskeleton protein Dp71 in Müller cell function and retinal homeostasis.
- To elucidate the molecular mechanisms of Müller cell alterations in retinal diseases.
Main Methods:
- Experimental retinal detachment in mice.
- Analysis of inwardly rectifying potassium channels (Kir4.1) and aquaporin-4 (AQP4) localization.
- Assessment of Dp71 expression and its impact on Müller cell volume regulation.
- Evaluation of retinal vascular permeability in Dp71-null mice.
Main Results:
- Retinal detachment caused mislocalization of Kir4.1 and downregulation of AQP4, linked to decreased Dp71.
- Dp71 depletion impaired Müller cell volume regulation under osmotic stress, involving inflammatory mediators.
- Absence of Dp71 led to increased retinal vascular permeability.
Conclusions:
- Dp71 is essential for maintaining potassium and water homeostasis in Müller cells.
- Dp71 plays a critical role in Müller cell-mediated regulation of blood-retina barrier integrity.
- These findings offer new insights into retinal homeostasis mechanisms under normal and pathological conditions.
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