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Boyd-Shiwarski, C. R.

Publications and source records attributed to Boyd-Shiwarski, C. R..

2 recordsLinked to original sources

WNK kinases sense molecular crowding and rescue cell volume via phase separation

When challenged by hypertonicity, dehydrated cells must defend their volume to survive. This process requires the phosphorylation-dependent regulation of SLC12 cation chloride transporters by WNK kinases, but how these kinases are activated by cell shrinkage remains unknown. Within seconds of cell exposure to hypertonicity, WNK1 concentrates into membraneless droplets, initiating a phosphorylation-dependent signal that drives net ion influx via the SLC12 cotransporters to rescue volume. The formation of WNK1 condensates is driven by its intrinsically disordered C-terminus, whose evolutionarily conserved signatures are necessary for efficient phase separation and volume recovery. This disorder-encoded phase behavior occurs within physiological constraints and is activated in vivo by molecular crowding rather than changes in cell size. This allows WNK1 to bypass a strengthened ionic milieu that favors kinase inactivity and reclaim cell volume through condensate-mediated signal amplification. Thus, WNK kinases are physiological crowding sensors that phase separate to coordinate a cell volume rescue response.

cell biology↗

Kidney-Specific WNK1 Amplifies NCC Responsiveness to Potassium Imbalance

To maintain potassium homeostasis, the kidneys distal convoluted tubule (DCT) converts small changes in blood [K+] into robust effects on salt reabsorption. This process requires NaCl cotransporter (NCC) activation by WNK kinases. During hypokalemia, the Kidney-Specific WNK1 isoform (KS-WNK1) scaffolds the DCT-expressed WNK signaling pathway within biomolecular condensates of unknown function termed WNK bodies. Here, we show that KS-WNK1 amplifies the dynamic range of NCC activity in response to potassium imbalance, in part via WNK bodies. Targeted condensate disruption traps the WNK pathway, causing renal salt-wasting that is more pronounced in females. In humans, WNK bodies accumulate as plasma potassium falls below 4.0mmol/L, suggesting avid condensate-mediated salt reabsorption even when [K+] is low-normal. These data identify WNK bodies as signal amplifiers that mediate tubular potassium responsiveness, nephron sexual dimorphism, and blood pressure salt-sensitivity. Our results illustrate how condensate specialization can optimize a mammalian physiologic stress response that impacts human health.

physiology↗