Potassium conservation is impaired in mice with reduced renal expression of Kir4.1

Author:

Malik Sundeep1,Lambert Emily2,Zhang Junhui3,Wang Tong3,Clark Heather L.2,Cypress Michael2,Goldman Bruce I.4,Porter George A.5,Pena Salvador2,Nino Wilson2,Gray Daniel A.2

Affiliation:

1. Department of Pharmacology and Physiology, School of Medicine, University of Rochester, Rochester, New York

2. Nephrology Division, Department of Medicine, University of Rochester, Rochester, New York

3. Department of Cellular and Molecular Physiology, Yale University School of Medicine, New Haven, Connecticut

4. Pathology and Laboratory Medicine, University of Rochester, Rochester, New York

5. Cardiology Division, Department of Pediatrics, University of Rochester, Rochester, New York

Abstract

To better understand the role of the inward-rectifying K channel Kir4.1 (KCNJ10) in the distal nephron, we initially studied a global Kir4.1 knockout mouse (gKO), which demonstrated the hypokalemia and hypomagnesemia seen in SeSAME/EAST syndrome and was associated with reduced Na/Cl cotransporter (NCC) expression. Lethality by ~3 wk, however, limits the usefulness of this model, so we developed a kidney-specific Kir4.1 “knockdown” mouse (ksKD) using a cadherin 16 promoter and Cre-loxP methodology. These mice appeared normal and survived to adulthood. Kir4.1 protein expression was decreased ~50% vs. wild-type (WT) mice by immunoblotting, and immunofluorescence showed moderately reduced Kir4.1 staining in distal convoluted tubule that was minimal or absent in connecting tubule and cortical collecting duct. Under control conditions, the ksKD mice showed metabolic alkalosis and relative hypercalcemia but were normokalemic and mildly hypermagnesemic despite decreased NCC expression. In addition, the mice had a severe urinary concentrating defect associated with hypernatremia, enlarged kidneys with tubulocystic dilations, and reduced aquaporin-3 expression. On a K/Mg-free diet for 1 wk, however, ksKD mice showed marked hypokalemia (serum K: 1.5 ± 0.1 vs. 3.0 ± 0.1 mEq/l for WT), which was associated with renal K wasting (transtubular K gradient: 11.4 ± 0.8 vs. 1.6 ± 0.4 in WT). Phosphorylated-NCC expression increased in WT but not ksKD mice on the K/Mg-free diet, suggesting that loss of NCC adaptation underlies the hypokalemia. In conclusion, even modest reduction in Kir4.1 expression results in impaired K conservation, which appears to be mediated by reduced expression of activated NCC.

Funder

NIDDK

Publisher

American Physiological Society

Subject

Physiology

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1. Magnesium reabsorption in the kidney;American Journal of Physiology-Renal Physiology;2023-03-01

2. Intracellular Ion Control of WNK Signaling;Annual Review of Physiology;2023-02-10

3. Inwardly rectifying K+ channels 4.1 and 5.1 (Kir4.1/Kir5.1) in the renal distal nephron;American Journal of Physiology-Cell Physiology;2022-08-01

4. FAM111A is dispensable for electrolyte homeostasis in mice;Scientific Reports;2022-06-17

5. Dissecting the Effects of Aldosterone and Hypokalemia on the Epithelial Na+ Channel and the NaCl Cotransporter;Frontiers in Physiology;2022-04-26

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