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Dissociation of sodium-chloride cotransporter expression and blood pressure during chronic high dietary potassium supplementation
Robert Little, Sathish K. Murali, Søren B. Poulsen, Paul R. Grimm, Adrienne Assmus, Lei Cheng, Jessica R. Ivy, Ewout J. Hoorn, Vladimir Matchkov, Paul A. Welling, Robert A. Fenton
Robert Little, Sathish K. Murali, Søren B. Poulsen, Paul R. Grimm, Adrienne Assmus, Lei Cheng, Jessica R. Ivy, Ewout J. Hoorn, Vladimir Matchkov, Paul A. Welling, Robert A. Fenton
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Research Article Nephrology

Dissociation of sodium-chloride cotransporter expression and blood pressure during chronic high dietary potassium supplementation

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Abstract

Dietary potassium (K+) supplementation is associated with a lowering effect in blood pressure (BP), but not all studies agree. Here, we examined the effects of short- and long-term K+ supplementation on BP in mice, whether differences depend on the accompanying anion or the sodium (Na+) intake and molecular alterations in the kidney that may underlie BP changes. Relative to the control diet, BP was higher in mice fed a high NaCl (1.57% Na+) diet for 7 weeks or fed a K+-free diet for 2 weeks. BP was highest on a K+-free/high NaCl diet. Commensurate with increased abundance and phosphorylation of the thiazide sensitive sodium-chloride-cotransporter (NCC) on the K+-free/high NaCl diet, BP returned to normal with thiazides. Three weeks of a high K+ diet (5% K+) increased BP (predominantly during the night) independently of dietary Na+ or anion intake. Conversely, 4 days of KCl feeding reduced BP. Both feeding periods resulted in lower NCC levels but in increased levels of cleaved (active) α and γ subunits of the epithelial Na+ channel ENaC. The elevated BP after chronic K+ feeding was reduced by amiloride but not thiazide. Our results suggest that dietary K+ has an optimal threshold where it may be most effective for cardiovascular health.

Authors

Robert Little, Sathish K. Murali, Søren B. Poulsen, Paul R. Grimm, Adrienne Assmus, Lei Cheng, Jessica R. Ivy, Ewout J. Hoorn, Vladimir Matchkov, Paul A. Welling, Robert A. Fenton

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Figure 10

Correlation of NCC and ENaC to urine aldosterone and plasma potassium level.

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Correlation of NCC and ENaC to urine aldosterone and plasma potassium le...
(A–C) Best fit analysis for short-term and chronically fed animals. (A) pNCC significantly negatively correlates with urine [aldosterone]. The correlation for short-term feeding (5 days, R2 = 0.839) and chronically fed animals (3 weeks, R2 = 0.110) did not significantly differ for slope or y intercept. (B) Cleaved αENaC significantly positively correlates with urine [aldo]. Correlation for short-term feeding (R2 = 0.652) and chronic feeding (R2 = 0.258) tended to differ for slope (P = 0.0546) with a significantly different y intercept (P = 0.0469). (C) Cleaved γENaC significantly positively correlates with urine [aldo]. The correlation for short-term feeding (R2 = 0.669) and chronic feeding (R2 = 0.516) significantly differed (P < 0.01). (D–I) Best fit analysis with 95% CI (dotted lines) for whole data set. (D and E) NCC and pNCC significantly negatively correlate with plasma [K+]. (F and G)Total αENaC and cleaved αENaC significantly positively correlate with plasma [K+]. (H and I) Total γENaC significantly negatively correlates with plasma [K+], while cleaved γENaC significantly positively correlates. Each dot represents protein abundance (arbitrary units), and urine analysis from the same animal. Data are from all animals in cohort 1 and 2 combined, with the exception of γENaC data, which are only from cohort 2.

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