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1.
Am J Physiol Renal Physiol ; 325(3): F377-F393, 2023 09 01.
Article in English | MEDLINE | ID: mdl-37498547

ABSTRACT

The urinary potassium (K+) excretion machinery is upregulated with increasing dietary K+, but the role of accompanying dietary anions remains inadequately characterized. Poorly absorbable anions, including [Formula: see text], are thought to increase K+ secretion through a transepithelial voltage effect. Here, we tested if they also influence the K+ secretion machinery. Wild-type mice, aldosterone synthase (AS) knockout (KO) mice, or pendrin KO mice were randomized to control, high-KCl, or high-KHCO3 diets. The K+ secretory capacity was assessed in balance experiments. Protein abundance, modification, and localization of K+-secretory transporters were evaluated by Western blot analysis and confocal microscopy. Feeding the high-KHCO3 diet increased urinary K+ excretion and the transtubular K+ gradient significantly more than the high-KCl diet, coincident with more pronounced upregulation of epithelial Na+ channels (ENaC) and renal outer medullary K+ (ROMK) channels and apical localization in the distal nephron. Experiments in AS KO mice revealed that the enhanced effects of [Formula: see text] were aldosterone independent. The high-KHCO3 diet also uniquely increased the large-conductance Ca2+-activated K+ (BK) channel ß4-subunit, stabilizing BKα on the apical membrane, the Cl-/[Formula: see text] exchanger, pendrin, and the apical KCl cotransporter (KCC3a), all of which are expressed specifically in pendrin-positive intercalated cells. Experiments in pendrin KO mice revealed that pendrin was required to increase K+ excretion with the high-KHCO3 diet. In summary, [Formula: see text] stimulates K+ excretion beyond a poorly absorbable anion effect, upregulating ENaC and ROMK in principal cells and BK, pendrin, and KCC3a in pendrin-positive intercalated cells. The adaptive mechanism prevents hyperkalemia and alkalosis with the consumption of alkaline ash-rich diets but may drive K+ wasting and hypokalemia in alkalosis.NEW & NOTEWORTHY Dietary anions profoundly impact K+ homeostasis. Here, we found that a K+-rich diet, containing [Formula: see text] as the counteranion, enhances the electrogenic K+ excretory machinery, epithelial Na+ channels, and renal outer medullary K+ channels, much more than a high-KCl diet. It also uniquely induces KCC3a and pendrin, in B-intercalated cells, providing an electroneutral KHCO3 secretion pathway. These findings reveal new K+ balance mechanisms that drive adaption to alkaline and K+-rich foods, which should guide new treatment strategies for K+ disorders.


Subject(s)
Alkalosis , Potassium , Animals , Mice , Anion Transport Proteins/genetics , Anion Transport Proteins/metabolism , Anions/metabolism , Diet , Mice, Knockout , Potassium/metabolism , Potassium, Dietary/metabolism , Sodium/metabolism , Sulfate Transporters/genetics
2.
Pflugers Arch ; 475(5): 607-620, 2023 05.
Article in English | MEDLINE | ID: mdl-36977894

ABSTRACT

The intercalated cell Cl-/HCO3- exchanger, pendrin, modulates ENaC subunit abundance and function. Whether ENaC modulates pendrin abundance and function is however unknown. Because αENaC mRNA has been detected in pendrin-positive intercalated cells, we hypothesized that ENaC, or more specifically the αENaC subunit, modulates intercalated cell function. The purpose of this study was therefore to determine if αENaC is expressed at the protein level in pendrin-positive intercalated cells and to determine if αENaC gene ablation or constitutively upregulating ENaC activity changes pendrin abundance, subcellular distribution, and/or function. We observed diffuse, cytoplasmic αENaC label in pendrin-positive intercalated cells from both mice and rats, with much lower label intensity in pendrin-negative, type A intercalated cells. However, while αENaC gene ablation within principal and intercalated cells of the CCD reduced Cl- absorption, it did not change pendrin abundance or subcellular distribution in aldosterone-treated mice. Further experiments used a mouse model of Liddle's syndrome to explore the effect of increasing ENaC channel activity on pendrin abundance and function. The Liddle's variant did not increase either total or apical plasma membrane pendrin abundance in aldosterone-treated or in NaCl-restricted mice. Similarly, while the Liddle's mutation increased total Cl- absorption in CCDs from aldosterone-treated mice, it did not significantly affect the change in Cl- absorption seen with pendrin gene ablation. We conclude that in rats and mice, αENaC localizes to pendrin-positive ICs where its physiological role remains to be determined. While pendrin modulates ENaC abundance, subcellular distribution, and function, ENaC does not have a similar effect on pendrin.


Subject(s)
Aldosterone , Anion Transport Proteins , Mice , Rats , Animals , Anion Transport Proteins/genetics , Anion Transport Proteins/metabolism , Aldosterone/metabolism , Epithelial Sodium Channels/genetics , Epithelial Sodium Channels/metabolism , Blood Pressure/physiology , Sulfate Transporters/genetics
3.
Am J Physiol Renal Physiol ; 322(5): F486-F497, 2022 05 01.
Article in English | MEDLINE | ID: mdl-35224991

ABSTRACT

Pendrin is an intercalated cell Cl-/[Formula: see text] exchanger thought to participate in K+-sparing NaCl absorption. However, its role in K+ homeostasis has not been clearly defined. We hypothesized that pendrin-null mice will develop hypokalemia with dietary K+ restriction. We further hypothesized that pendrin knockout (KO) mice mitigate urinary K+ loss by downregulating the epithelial Na+ channel (ENaC). Thus, we examined the role of ENaC in Na+ and K+ balance in pendrin KO and wild-type mice following dietary K+ restriction. To do so, we examined the relationship between Na+ and K+ balance and ENaC subunit abundance in K+-restricted pendrin-null and wild-type mice that were NaCl restricted or replete. Following a NaCl-replete, K+-restricted diet, K+ balance and serum K+ were similar in both groups. However, following a Na+, K+, and Cl--deficient diet, pendrin KO mice developed hypokalemia from increased K+ excretion. The fall in serum K+ observed in K+-restricted pendrin KO mice was enhanced with ENaC stimulation but eliminated with ENaC inhibition. The fall in serum K+ observed in K+-restricted pendrin KO mice was enhanced with ENaC stimulation but eliminated with ENaC inhibition. However, reducing ENaC activity also reduced blood pressure and increased apparent intravascular volume contraction, since KO mice had lower serum Na+, higher blood urea nitrogen and hemoglobin, greater weight loss, greater metabolic alkalosis, and greater NaCl excretion. We conclude that dietary Na+ and K+ restriction induces hypokalemia in pendrin KO mice. Pendrin-null mice limit renal K+ loss by downregulating ENaC. However, this ENaC downregulation occurs at the expense of intravascular volume.NEW & NOTEWORTHY Pendrin is an apical Cl-/[Formula: see text] exchanger that provides renal K+-sparing NaCl absorption. The pendrin-null kidney has an inability to fully conserve K+ and limits renal K+ loss by downregulating the epithelial Na+ channel (ENaC). However, with Na+ restriction, the need to reduce ENaC for K+ balance conflicts with the need to stimulate ENaC for intravascular volume. Therefore, NaCl restriction stimulates ENaC less in pendrin-null mice than in wild-type mice, which mitigates their kaliuresis and hypokalemia but exacerbates volume contraction.


Subject(s)
Hypokalemia , Animals , Anion Transport Proteins/metabolism , Diet , Epithelial Sodium Channels/metabolism , Mice , Mice, Knockout
4.
Clin J Am Soc Nephrol ; 16(9): 1337-1344, 2021 09.
Article in English | MEDLINE | ID: mdl-34261761

ABSTRACT

BACKGROUND AND OBJECTIVES: Although US physician-scientists have made enormous contributions to biomedical research, this workforce is thought to be getting smaller. However, among kidney researchers, changes have not been fully quantified. DESIGN, SETTING, PARTICIPANTS, & MEASUREMENTS: We mined National Institutes of Health RePORTER to explore demographic changes of early-career and established physician and nonphysician principal investigators doing kidney-focused research. We searched for National Institute of Diabetes and Digestive and Kidney Diseases (NIDDK)-funded K series and R01 awards focused on the kidney that were active between 1990 and 2020 and determined if their emphasis was basic or clinical science. We then used public databases available on the internet to determine if these funded investigators were physicians or nonphysicians, the year in which they received either their MD (physicians) or their terminal graduate degree (nonphysicians), their sex, and whether they received their terminal degree from a US or international institution. RESULTS: Kidney-focused R01-funded principal investigators are aging, particularly among physicians. Moreover, the relative representation of physicians among both early-career and established principal investigators is falling, particularly among those doing basic science research. In contrast, the number and relative representation of nonphysician-scientists are increasing. There is also greater representation of women and international graduates among physician and nonphysician R01-funded, kidney-focused NIDDK investigators. However, although there are greater numbers of women physician principal investigators doing both basic as well as clinical research, women physician principal investigators are increasingly more likely to do clinical rather than basic science research. CONCLUSIONS: The physician-scientist workforce is increasingly made up of women and international medical graduates. However, the physician-scientist workforce is older and represents a smaller proportion of all principal investigators, particularly among those doing basic science research.


Subject(s)
Biomedical Research/economics , National Institute of Diabetes and Digestive and Kidney Diseases (U.S.) , Nephrology , Physicians/economics , Research Personnel/economics , Workforce/economics , Demography , Female , Humans , Male , United States
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