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Role of aquaporin-4 polarization in extracellular solute clearance
Role of aquaporin-4 polarization in extracellular solute clearance
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Role of aquaporin-4 polarization in extracellular solute clearance
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Role of aquaporin-4 polarization in extracellular solute clearance
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Role of aquaporin-4 polarization in extracellular solute clearance
Role of aquaporin-4 polarization in extracellular solute clearance
Journal Article

Role of aquaporin-4 polarization in extracellular solute clearance

2024
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Overview
Waste from the brain has been shown to be cleared via the perivascular spaces through the so-called glymphatic system. According to this model the cerebrospinal fluid (CSF) enters the brain in perivascular spaces of arteries, crosses the astrocyte endfoot layer, flows through the parenchyma collecting waste that is subsequently drained along veins. Glymphatic clearance is dependent on astrocytic aquaporin-4 (AQP4) water channels that are highly enriched in the endfeet. Even though the polarized expression of AQP4 in endfeet is thought to be of crucial importance for glymphatic CSF influx, its role in extracellular solute clearance has only been evaluated using non-quantitative fluorescence measurements. Here we have quantitatively evaluated clearance of intrastriatally infused small and large radioactively labeled solutes in mice lacking AQP4 ( Aqp4 –/– ) or lacking the endfoot pool of AQP4 ( Snta1 –/– ). We confirm that Aqp4 –/– mice show reduced clearance of both small and large extracellular solutes. Moreover, we find that the Snta1 –/– mice have reduced clearance only for the 500 kDa [ 3 H]dextran, but not 0.18 kDa [ 3 H]mannitol suggesting that polarization of AQP4 to the endfeet is primarily important for clearance of large, but not small molecules. Lastly, we observed that clearance of 500 kDa [ 3 H]dextran increased with age in adult mice. Based on our quantitative measurements, we confirm that presence of AQP4 is important for clearance of extracellular solutes, while the perivascular AQP4 localization seems to have a greater impact on clearance of large versus small molecules.