Aquaporin-4 Water Channel Protein in the Rat Retina and Optic Nerve: Polarized Expression in Müller Cells and Fibrous Astrocytes
Open Access
- 1 April 1998
- journal article
- Published by Society for Neuroscience in Journal of Neuroscience
- Vol. 18 (7) , 2506-2519
- https://doi.org/10.1523/jneurosci.18-07-02506.1998
Abstract
The water permeability of cell membranes differs by orders of magnitude, and most of this variability reflects the differential expression of aquaporin water channels. We have recently found that the CNS contains a member of the aquaporin family, aquaporin-4 (AQP4). As a prerequisite for understanding the cellular handling of water during neuronal activity, we have investigated the cellular and subcellular expression of AQP4 in the retina and optic nerve where activity-dependent ion fluxes have been studied in detail. In situ hybridization with digoxigenin-labeled riboprobes and immunogold labeling by a sensitive postembedding procedure demonstrated that AQP4 and AQP4 mRNA were restricted to glial cells, including Müller cells in the retina and fibrous astrocytes in the optic nerve. A quantitative immunogold analysis of the Müller cells showed that these cells exhibited three distinct membrane compartments with regard to AQP4 expression. End feet membranes (facing the vitreous body or blood vessels) were 10–15 times more intensely labeled than non-end feet membranes, whereas microvilli were devoid of AQP4. These data suggest that Müller cells play a prominent role in the water handling in the retina and that they direct osmotically driven water flux to the vitreous body and vessels rather than to the subretinal space. Fibrous astrocytes in the optic nerve similarly displayed a differential compartmentation of AQP4. The highest expression of AQP4 occurred in end feet membranes, whereas the membrane domain facing the nodal axolemma was associated with a lower level of immunoreactivity than the rest of the membrane. This arrangement may allow transcellular water redistribution to occur without inducing inappropriate volume changes in the perinodal extracellular space.Keywords
This publication has 100 references indexed in Scilit:
- Light-dependent hydration of the space surrounding photoreceptors in the cat retinaVisual Neuroscience, 1994
- Cloning and expression of apical membrane water channel of rat kidney collecting tubuleNature, 1993
- Glial K+ Permeability and CNS K+ Clearance by Diffusion and Spatial BufferingAnnals of the New York Academy of Sciences, 1991
- Brain water content, brain blood volume, blood chemistry, and pathology in a model of cerebral edemaAnnals of Emergency Medicine, 1990
- Role of glial cells in the regulation of the brain ion microenvironmentProgress in Neurobiology, 1989
- Characterization of an Na+/K+/Cl− co-transport in primary cultures of rat astrocytesBiochimica et Biophysica Acta (BBA) - Biomembranes, 1987
- Swelling and potassium uptake in cultured astrocytesCanadian Journal of Physiology and Pharmacology, 1987
- Endfeet of retinal glial cells have higher densities of ion channels that mediate K+ bufferingNature, 1986
- Activity-Dependent K + Accumulation in the Developing Rat Optic NerveScience, 1982
- Stimulus-induced changes in extracellular Na+ and Cl− concentration in relation to changes in the size of the extracellular spaceExperimental Brain Research, 1982