Low potassium activation of proximal mTOR/AKT signaling is mediated by Kir4.2.

Zhang, Yahua; Bock, Fabian; Ferdaus, Mohammed; Arroyo, Juan Pablo; L Rose, Kristie; Patel, Purvi; Denton, Jerod S; Delpire, Eric et al. · Nat Commun · 2024

basic_science · Level V

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Abstract

The renal epithelium is sensitive to changes in blood potassium (K<sup>+</sup>). We identify the basolateral K<sup>+</sup> channel, Kir4.2, as a mediator of the proximal tubule response to K<sup>+</sup> deficiency. Mice lacking Kir4.2 have a compensated baseline phenotype whereby they increase their distal transport burden to maintain homeostasis. Upon dietary K<sup>+</sup> depletion, knockout animals decompensate as evidenced by increased urinary K<sup>+</sup> excretion and development of a proximal renal tubular acidosis. Potassium wasting is not proximal in origin but is caused by higher ENaC activity and depends upon increased distal sodium delivery. Three-dimensional imaging reveals Kir4.2 knockouts fail to undergo proximal tubule expansion, while the distal convoluted tubule response is exaggerated. AKT signaling mediates the dietary K<sup>+</sup> response, which is blunted in Kir4.2 knockouts. Lastly, we demonstrate in isolated tubules that AKT phosphorylation in response to low K<sup>+</sup> depends upon mTORC2 activation by secondary changes in Cl<sup>-</sup> transport. Data support a proximal role for cell Cl<sup>-</sup> which, as it does along the distal nephron, responds to K<sup>+</sup> changes to activate kinase signaling.

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