Literature DB >> 21543632

Gut sensing of dietary K⁺ intake increases renal K⁺excretion.

Ki-Sook Oh1, Young Taek Oh, Sang-Wook Kim, Toshihiro Kita, Insug Kang, Jang H Youn.   

Abstract

Dietary K(+) intake may increase renal K(+) excretion via increasing plasma [K(+)] and/or activating a mechanism independent of plasma [K(+)]. We evaluated these mechanisms during normal dietary K(+) intake. After an overnight fast, [K(+)] and renal K(+) excretion were measured in rats fed either 0% K(+) or the normal 1% K(+) diet. In a third group, rats were fed with the 0% K(+) diet, and KCl was infused to match plasma [K(+)] profile to that of the 1% K(+) diet group. The 1% K(+) feeding significantly increased renal K(+) excretion, associated with slight increases in plasma [K(+)], whereas the 0% K(+) diet decreased K(+) excretion, associated with decreases in plasma [K(+)]. In the KCl-infused 0% K(+) diet group, renal K(+) excretion was significantly less than that of the 1% K(+) group, despite matched plasma [K(+)] profiles. We also examined whether dietary K(+) alters plasma profiles of gut peptides, such as guanylin, uroguanylin, glucagon-like peptide 1, and glucose-dependent insulinotropic polypeptide, pituitary peptides, such as AVP, α-MSH, and γ-MSH, or aldosterone. Our data do not support a role for these hormones in the stimulation of renal K(+) excretion during normal K(+) intake. In conclusion, postprandial increases in renal K(+) excretion cannot be fully accounted for by changes in plasma [K(+)] and that gut sensing of dietary K(+) is an important component of the regulation of renal K(+) excretion. Our studies on gut and pituitary peptide hormones suggest that there may be previously unknown humoral factors that stimulate renal K(+) excretion during dietary K(+) intake.

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Year:  2011        PMID: 21543632      PMCID: PMC3154709          DOI: 10.1152/ajpregu.00095.2011

Source DB:  PubMed          Journal:  Am J Physiol Regul Integr Comp Physiol        ISSN: 0363-6119            Impact factor:   3.619


  31 in total

Review 1.  Hypokalemia.

Authors:  F J Gennari
Journal:  N Engl J Med       Date:  1998-08-13       Impact factor: 91.245

Review 2.  Aldosterone and potassium homeostasis.

Authors:  L Rabinowitz
Journal:  Kidney Int       Date:  1996-06       Impact factor: 10.612

Review 3.  Quantitative analysis of aldosterone's role in potassium regulation.

Authors:  D B Young
Journal:  Am J Physiol       Date:  1988-11

Review 4.  Homeostatic regulation of potassium excretion.

Authors:  L Rabinowitz
Journal:  J Hypertens       Date:  1989-06       Impact factor: 4.844

Review 5.  GLP-1 and extra-islet effects.

Authors:  B Ahrén
Journal:  Horm Metab Res       Date:  2004 Nov-Dec       Impact factor: 2.936

6.  Kaliuresis in normal subjects following oral potassium citrate intake without increased plasma potassium concentration.

Authors:  L Calò; A Borsatti; S Favaro; L Rabinowitz
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Review 7.  Salt and water homeostasis: uroguanylin is a circulating peptide hormone with natriuretic activity.

Authors:  L R Forte; X Fan; F K Hamra
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8.  Renal nerves and the natriuresis following unilateral renal exclusion in the rat.

Authors:  M H Humphreys; S Y Lin; E Wiedemann
Journal:  Kidney Int       Date:  1991-01       Impact factor: 10.612

9.  Marked increase of guanylin secretion in response to salt loading in the rat small intestine.

Authors:  T Kita; K Kitamura; J Sakata; T Eto
Journal:  Am J Physiol       Date:  1999-11

Review 10.  The central nervous system in potassium homeostasis.

Authors:  L Rabinowitz; R I Aizman
Journal:  Front Neuroendocrinol       Date:  1993-01       Impact factor: 8.606

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