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Dietary potassium restriction causes hypercalciuria, hypocalcemia, and bone loss in male mice
Sathish K. Murali, Mariavittoria D’Acierno, Xiang Zheng, Lena K. Rosenbaek, Louise N. Odgaard, P. Richard Grimm, Alice Ramesova, Robert Little, Judith Radloff, Paul A. Welling, Qi Wu, Reinhold G. Erben, Robert A. Fenton
Sathish K. Murali, Mariavittoria D’Acierno, Xiang Zheng, Lena K. Rosenbaek, Louise N. Odgaard, P. Richard Grimm, Alice Ramesova, Robert Little, Judith Radloff, Paul A. Welling, Qi Wu, Reinhold G. Erben, Robert A. Fenton
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Research Article Bone biology Nephrology

Dietary potassium restriction causes hypercalciuria, hypocalcemia, and bone loss in male mice

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Abstract

Loss of bone mass has a devastating effect on quality of life. Higher potassium (K+) intake is positively correlated with bone health. Here, we investigated whether kidney calcium (Ca2+) and phosphate (Pi) handling mechanisms mediate dietary K+ effects. Kidney Ca2+ and Pi handling proteins were altered in abundance in mice fed a 0% K+ diet for 2 weeks. In mice fed a 0.1% K+ diet for 4 or 8 weeks, urinary Ca2+ excretion increased, plasma Ca2+ levels were lower and plasma parathyroid hormone (PTH) levels were higher relative to control 1% K+ fed mice. The 0.1% K+ fed mice had greater excretion of the bone resorption marker deoxypyridinoline, increased osteoclast number, and decreased total femoral bone mineral density. During chronic low K+ intake, major changes in renal Ca2+ and Pi transport pathways were absent, except higher abundances of the sodium-potassium-chloride cotransporter (NKCC2) and the sodium-chloride cotransporter (NCC), in line with their role in kidney Ca2+ handling. Low dietary K+ induced hypocalcemia and changes in PTH were absent in mice with constitutively active NCC, supporting its role in mediating low K+ effects on Ca2+ homeostasis. Our study provides insights into the management of bone disorders in conditions of chronic electrolyte imbalance.

Authors

Sathish K. Murali, Mariavittoria D’Acierno, Xiang Zheng, Lena K. Rosenbaek, Louise N. Odgaard, P. Richard Grimm, Alice Ramesova, Robert Little, Judith Radloff, Paul A. Welling, Qi Wu, Reinhold G. Erben, Robert A. Fenton

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Figure 6

Low dietary K+ intake alters abundance of the calcium-sensing receptor (CaSR).

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Low dietary K+ intake alters abundance of the calcium-sensing receptor (...
(A) Representative immunofluorescence images of DAPI nuclear (blue), NCC (green), and CaSR (red) staining in kidney tissue from mice receiving a 1K+ or 0.1K+ diet for 4 weeks. (B) Higher-magnification images and example of deep learning instance segmentation model to identify kidney tubules. (C) Semiquantification of CaSR fluorescence intensity in NCC– and NCC+ tubules indicates that CaSR levels are higher in kidneys of mice after 0.1K+ relative to 1K+ control mice. Each dot represents mean signal intensity in an individual tubule, and bars represent median ± interquartile range. n = 4 mice/group. Statistical comparisons were performed using the Mann-Whitney U test. ***P < 0.001, ****P < 0.0001. Scale bar: 50 μm.

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