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Published in: Clinical and Experimental Nephrology 3/2011

01-06-2011 | Original Article

Upregulation of calbindin D28k in the late distal tubules in the potassium-loaded adrenalectomized mouse kidney

Authors: Mizuka Kobayashi, Yukiko Yasuoka, Yuichi Sato, Ming Zhou, Hiroshi Abe, Katsumasa Kawahara, Hirotsugu Okamoto

Published in: Clinical and Experimental Nephrology | Issue 3/2011

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Abstract

Background

The calcium (Ca)-activated potassium (K) channel is an alternative K-secretory pathway in the apical membranes of the distal nephrons of adrenalectomized (ADX) animals. As a potential approach for estimating intracellular Ca2+ increase, we investigated normal and ADX mice to determine whether dietary K intake would stimulate the expression of the calbindin D28k protein, a cytosolic Ca2+-binding protein, along the distal nephron consisting of the early and late portions of the distal convoluted tubule (DCT1 and DCT2, respectively), the CNT, and CCD.

Methods

ADX mice received a control diet plus either 0.3% NaCl solution (C) or a 0.3% NaCl plus 3% KCl solution (HK) for 7 days before the experiment.

Results

The mean plasma K concentration and pH were significantly (P < 0.001) higher (7.9 ± 0.3 mEq/l) and lower (7.28 ± 0.02) in the K-loaded ADX mice than in the control ADX mice. The mean urinary K excretion (mEq/day) and urine flow (ml/day) increased significantly (P < 0.0001) from 0.47 ± 0.07 (C) to 4.80 ± 0.57 (HK) and from 1.1 ± 0.2 (C) to 8.8 ± 1.0 (HK). Urinary Ca excretion significantly (P < 0.005 and P < 0.05, respectively) increased in K-loaded normal and ADX mice compared with control normal and ADX mice. Immunofluorescence studies revealed that the relative staining of calbindin was 167.0 ± 15.4%, 291.3 ± 13.8%, and 206.3 ± 11.3% for DCT1, DCT2/CNT, and CCD of normal control mice, respectively. These values increased significantly (P < 0.0001) only in DCT2/CNT (574.8 ± 42%) of the K-loaded ADX mice.

Conclusion

Upregulation of calbindin in the late distal tubule suggests that Ca2+-dependent K transport may function as an alternative mechanism for urinary K excretion in ADX mice.
Literature
1.
go back to reference Reilly RF, Ellison DH. Mammalian distal tubule: physiology, pathophysiology, and molecular anatomy. Physiol Rev. 2000;80:277–313.CrossRef Reilly RF, Ellison DH. Mammalian distal tubule: physiology, pathophysiology, and molecular anatomy. Physiol Rev. 2000;80:277–313.CrossRef
2.
go back to reference Giebisch G, Hebert SC, Wang WH. New aspects of renal potassium transport. Pflügers Arch. 2003;446:289–97.CrossRef Giebisch G, Hebert SC, Wang WH. New aspects of renal potassium transport. Pflügers Arch. 2003;446:289–97.CrossRef
3.
go back to reference Ho K, Nichols CG, Lederer WJ, Lytton J, Vassilev PM, Kanazirska MV, et al. Cloning and expression of an inwardly rectifying ATP-regulated potassium channel. Nature (Lond). 1993;362:31–8.CrossRef Ho K, Nichols CG, Lederer WJ, Lytton J, Vassilev PM, Kanazirska MV, et al. Cloning and expression of an inwardly rectifying ATP-regulated potassium channel. Nature (Lond). 1993;362:31–8.CrossRef
4.
go back to reference Frindt G, Shah A, Edvinsson J, Palmer LG. Dietary K regulates ROMK channels in connecting tubule and cortical collecting duct of rat kidney. Am J Physiol. 2009;296:F347–54. Frindt G, Shah A, Edvinsson J, Palmer LG. Dietary K regulates ROMK channels in connecting tubule and cortical collecting duct of rat kidney. Am J Physiol. 2009;296:F347–54.
5.
go back to reference Frindt G, Palmer LG. Effects of dietary K on cell-surface expression of renal ion channels and transporters. Am J Physiol. 2010;299:F890–7. Frindt G, Palmer LG. Effects of dietary K on cell-surface expression of renal ion channels and transporters. Am J Physiol. 2010;299:F890–7.
6.
go back to reference Grimm PR, Sansom SC. BK channels in the kidney. Curr Opin Nephrol Hypertens. 2007;16:430–6.CrossRef Grimm PR, Sansom SC. BK channels in the kidney. Curr Opin Nephrol Hypertens. 2007;16:430–6.CrossRef
7.
go back to reference Muto S, Sansom S, Giebisch G. Effects of a high potassium diet on electrical properties of cortical collecting ducts from adrenalectomized rabbits. J Clin Invest. 1988;81:376–80.CrossRef Muto S, Sansom S, Giebisch G. Effects of a high potassium diet on electrical properties of cortical collecting ducts from adrenalectomized rabbits. J Clin Invest. 1988;81:376–80.CrossRef
8.
go back to reference Wingo CS, Seldin DW, Kokko JP, Jacobson HR. Dietary modulation of active potassium secretion in the cortical collecting tubule of adrenalectomized rabbits. J Clin Invest. 1982;70:579–86.CrossRef Wingo CS, Seldin DW, Kokko JP, Jacobson HR. Dietary modulation of active potassium secretion in the cortical collecting tubule of adrenalectomized rabbits. J Clin Invest. 1982;70:579–86.CrossRef
9.
go back to reference Amorim JB, Musa-Aziz R, Mello-Aires M, Malnic G. Signaling path of the action of AVP on distal K+ secretion. Kidney Int. 2004;66:696–704.CrossRef Amorim JB, Musa-Aziz R, Mello-Aires M, Malnic G. Signaling path of the action of AVP on distal K+ secretion. Kidney Int. 2004;66:696–704.CrossRef
10.
go back to reference Bailey MA, Cantone A, Yan Q, MacGregor GG, Leng Q, Amorim JB, et al. Maxi-K channels contribute to urinary potassium excretion in the ROMK-deficient mouse model of Type II Bartter’s syndrome and in adaptation to a high-K diet. Kidney Int. 2006;70:51–9.CrossRef Bailey MA, Cantone A, Yan Q, MacGregor GG, Leng Q, Amorim JB, et al. Maxi-K channels contribute to urinary potassium excretion in the ROMK-deficient mouse model of Type II Bartter’s syndrome and in adaptation to a high-K diet. Kidney Int. 2006;70:51–9.CrossRef
11.
go back to reference Liu W, Morimoto T, Woda C, Kleyman TR, Satlin LM. Ca2+ dependence of flow-stimulated K secretion in the mammalian cortical collecting duct. Am J Physiol. 2007;293:F227–35. Liu W, Morimoto T, Woda C, Kleyman TR, Satlin LM. Ca2+ dependence of flow-stimulated K secretion in the mammalian cortical collecting duct. Am J Physiol. 2007;293:F227–35.
12.
go back to reference Tohmon M, Fukase M, Kishihara M, Kadowaki S, Fujita T. Effect of glucocorticoid administration on intestinal, renal, and cerebellar calbindin-D28K in chicks. J Bone Miner Res. 1988;3:325–31.CrossRef Tohmon M, Fukase M, Kishihara M, Kadowaki S, Fujita T. Effect of glucocorticoid administration on intestinal, renal, and cerebellar calbindin-D28K in chicks. J Bone Miner Res. 1988;3:325–31.CrossRef
13.
go back to reference Hemmingsen C. Regulation of renal calbindin-D28K. Pharmacol Toxicol. 2000;87(Suppl 3):5–30.PubMed Hemmingsen C. Regulation of renal calbindin-D28K. Pharmacol Toxicol. 2000;87(Suppl 3):5–30.PubMed
14.
go back to reference Taylor AN, McIntosh JE, Bourdeau JE. Immunocytochemical localization of vitamin D-dependent calcium-binding protein in renal tubules of rabbit, rat, and chick. Kidney Int. 1982;21:765–73.CrossRef Taylor AN, McIntosh JE, Bourdeau JE. Immunocytochemical localization of vitamin D-dependent calcium-binding protein in renal tubules of rabbit, rat, and chick. Kidney Int. 1982;21:765–73.CrossRef
15.
go back to reference Rizzo M, Capasso G, Bleich M, Pica A, Grimaldi D, Bindels RJ, et al. Effect of chronic metabolic acidosis on calbindin expression along the rat distal tubule. J Am Soc Nephrol. 2000;11:203–10.PubMed Rizzo M, Capasso G, Bleich M, Pica A, Grimaldi D, Bindels RJ, et al. Effect of chronic metabolic acidosis on calbindin expression along the rat distal tubule. J Am Soc Nephrol. 2000;11:203–10.PubMed
16.
go back to reference Fukagawa M, Nakanishi S, Fujii H, Hamada Y, Abe T. Regulation of parathyroid function in chronic kidney disease (CKD). Clin Exp Nephrol. 2006;10:175–9.CrossRef Fukagawa M, Nakanishi S, Fujii H, Hamada Y, Abe T. Regulation of parathyroid function in chronic kidney disease (CKD). Clin Exp Nephrol. 2006;10:175–9.CrossRef
17.
go back to reference Nakai K, Komaba H, Fukagawa M. New insights into the role of fibroblast growth factor 23 in chronic kidney disease. J Nephrol. 2010;23:619–25.PubMed Nakai K, Komaba H, Fukagawa M. New insights into the role of fibroblast growth factor 23 in chronic kidney disease. J Nephrol. 2010;23:619–25.PubMed
18.
go back to reference Boros S, Bindels RJ, Hoenderop JGJ. Active Ca2+ reabsorption in the connecting tubule. Pflügers Arch. 2009;458:99–109.CrossRef Boros S, Bindels RJ, Hoenderop JGJ. Active Ca2+ reabsorption in the connecting tubule. Pflügers Arch. 2009;458:99–109.CrossRef
19.
go back to reference Armbrecht HJ, Boltz M, Strong R, Richardson A, Bruns ME, Christakos S. Expression of calbindin-D decreases with age in intestine and kidney. Endocrinology. 1989;125:2950–6.CrossRef Armbrecht HJ, Boltz M, Strong R, Richardson A, Bruns ME, Christakos S. Expression of calbindin-D decreases with age in intestine and kidney. Endocrinology. 1989;125:2950–6.CrossRef
20.
go back to reference Kawahara K, Anzai N. Potassium transport and potassium channels in the kidney tubules. Jpn J Physiol. 1997;47:1–10.CrossRef Kawahara K, Anzai N. Potassium transport and potassium channels in the kidney tubules. Jpn J Physiol. 1997;47:1–10.CrossRef
21.
go back to reference Rizzo M, Metafora S, Morelli F, Russo F, Ciani F, Capasso G. Chronic administration of bumetanide upregulates calbindin D28k mRNA and protein abundance in rat distal convoluted tubules. Nephron Physiol. 2004;97:16–22.CrossRef Rizzo M, Metafora S, Morelli F, Russo F, Ciani F, Capasso G. Chronic administration of bumetanide upregulates calbindin D28k mRNA and protein abundance in rat distal convoluted tubules. Nephron Physiol. 2004;97:16–22.CrossRef
22.
go back to reference Yang SS, Hsu YJ, Chiga M, Rai T, Sasaki S, Uchida S, et al. Mechanisms for hypercalciuria in pseudohypoaldosteronism type II-causing WNK4 knock-in mice. Endocrinology. 2010;151:1829–36.CrossRef Yang SS, Hsu YJ, Chiga M, Rai T, Sasaki S, Uchida S, et al. Mechanisms for hypercalciuria in pseudohypoaldosteronism type II-causing WNK4 knock-in mice. Endocrinology. 2010;151:1829–36.CrossRef
23.
go back to reference Sandulache D, Grahammer F, Artunc F, Henke G, Hussain A, Nasir O, et al. Renal Ca2+ handling in sgk1 knockout mice. Pflügers Arch. 2006;452:444–52.CrossRef Sandulache D, Grahammer F, Artunc F, Henke G, Hussain A, Nasir O, et al. Renal Ca2+ handling in sgk1 knockout mice. Pflügers Arch. 2006;452:444–52.CrossRef
24.
go back to reference Yang CW, Kim J, Kim YH, Cha JH, Mim SY, Kim YO, et al. Inhibition of calbindin D28K expression by cyclosporin A in rat kidney: the possible pathogenesis of cyclosporin A-induced hypercalciuria. J Am Soc Nephrol. 1998;9:1416–26.PubMed Yang CW, Kim J, Kim YH, Cha JH, Mim SY, Kim YO, et al. Inhibition of calbindin D28K expression by cyclosporin A in rat kidney: the possible pathogenesis of cyclosporin A-induced hypercalciuria. J Am Soc Nephrol. 1998;9:1416–26.PubMed
25.
go back to reference Lee CT, Huynh VM, Lai LW, Lien YH. Cyclosporine A-induced hypercalciuria in calbindin-D28k knockout and wild-type mice. Kidney Int. 2002;62:2055–61.CrossRef Lee CT, Huynh VM, Lai LW, Lien YH. Cyclosporine A-induced hypercalciuria in calbindin-D28k knockout and wild-type mice. Kidney Int. 2002;62:2055–61.CrossRef
26.
go back to reference Krapf R, Seldin DW, Alpern RJ. Clinical syndromes of metabolic acidosis. In: Alpern RJ, Hebert SC, editors. The kidney: physiology and pathophysiology. Amsterdam: Academic; 2008. p. 1667–720. Krapf R, Seldin DW, Alpern RJ. Clinical syndromes of metabolic acidosis. In: Alpern RJ, Hebert SC, editors. The kidney: physiology and pathophysiology. Amsterdam: Academic; 2008. p. 1667–720.
27.
go back to reference Giebisch G, Windhager E. Transport of potassium by the tubules. In: Boron WF, Boulpaep EL, editors. Medical physiology. Philadelphia: Saunders; 2003. p. 814–27. Giebisch G, Windhager E. Transport of potassium by the tubules. In: Boron WF, Boulpaep EL, editors. Medical physiology. Philadelphia: Saunders; 2003. p. 814–27.
28.
go back to reference Ikeda M, Yoshitomi K, Imai M, Kurokawa K. Cell Ca2+ response to luminal vasopressin in cortical collecting tubule principal cells. Kidney Int. 1994;45:811–6.CrossRef Ikeda M, Yoshitomi K, Imai M, Kurokawa K. Cell Ca2+ response to luminal vasopressin in cortical collecting tubule principal cells. Kidney Int. 1994;45:811–6.CrossRef
29.
go back to reference Dubrovsky AH, Nair RC, Byers MK, Levine DZ. Renal net acid excretion in the adrenalectomized rat. Kidney Int. 1981;19:516–28.CrossRef Dubrovsky AH, Nair RC, Byers MK, Levine DZ. Renal net acid excretion in the adrenalectomized rat. Kidney Int. 1981;19:516–28.CrossRef
30.
go back to reference Kinsella J, Cujdik T, Sacktor B. Na+–H+ exchange activity in renal brush border membrane vesicles in response to metabolic acidosis: the role of glucocorticoids. Proc Natl Acad Sci USA. 1984;81:630–4.CrossRef Kinsella J, Cujdik T, Sacktor B. Na+–H+ exchange activity in renal brush border membrane vesicles in response to metabolic acidosis: the role of glucocorticoids. Proc Natl Acad Sci USA. 1984;81:630–4.CrossRef
31.
go back to reference Matsuda O, Nonoguchi H, Tomita K, Shiigai T, Ida T, Shinohara S, et al. Primary role of hyperkalemia in the acidosis of hyporeninemic hypoaldosteronism. Nephron. 1988;49:203–9.CrossRef Matsuda O, Nonoguchi H, Tomita K, Shiigai T, Ida T, Shinohara S, et al. Primary role of hyperkalemia in the acidosis of hyporeninemic hypoaldosteronism. Nephron. 1988;49:203–9.CrossRef
32.
go back to reference Sebastian A, Schambelan M, Lindenfeld S, Morris RC Jr. Amelioration of metabolic acidosis with fludrocortisone therapy in hyporeninemic hypoaldosteronism. N Engl J Med. 1977;297:576–83.CrossRef Sebastian A, Schambelan M, Lindenfeld S, Morris RC Jr. Amelioration of metabolic acidosis with fludrocortisone therapy in hyporeninemic hypoaldosteronism. N Engl J Med. 1977;297:576–83.CrossRef
33.
go back to reference Pela I, Gasperini S, Pasquini E, Donati MA. Hyperkalemia after acute metabolic decompensation in two children with vitamin B12-unresponsive methylmalonic acidemia and normal renal function. Clin Nephrol. 2006;66:63–6.CrossRef Pela I, Gasperini S, Pasquini E, Donati MA. Hyperkalemia after acute metabolic decompensation in two children with vitamin B12-unresponsive methylmalonic acidemia and normal renal function. Clin Nephrol. 2006;66:63–6.CrossRef
34.
go back to reference Bushinsky DA, Parker WR, Alexander KM, Krieger NS. Metabolic, but not respiratory, acidosis increases bone PGE2 levels and calcium release. Am J Physiol. 2001;281:F1058–66. Bushinsky DA, Parker WR, Alexander KM, Krieger NS. Metabolic, but not respiratory, acidosis increases bone PGE2 levels and calcium release. Am J Physiol. 2001;281:F1058–66.
35.
go back to reference Lambers TT, Oancea E, de Groot T, Topala CN, Hoenderop JG, Bindels RJ. Extracellular pH dynamically controls cell surface delivery of functional TRPV5 channels. Mol Cell Biol. 2007;27:1486–94.CrossRef Lambers TT, Oancea E, de Groot T, Topala CN, Hoenderop JG, Bindels RJ. Extracellular pH dynamically controls cell surface delivery of functional TRPV5 channels. Mol Cell Biol. 2007;27:1486–94.CrossRef
36.
go back to reference Zhai XY, Thomsen JS, Birn H, Kristoffersen IB, Andreasen A, Christensen EI. Three-dimensional reconstruction of the mouse nephron. J Am Soc Nephrol. 2006;17:77–88.CrossRef Zhai XY, Thomsen JS, Birn H, Kristoffersen IB, Andreasen A, Christensen EI. Three-dimensional reconstruction of the mouse nephron. J Am Soc Nephrol. 2006;17:77–88.CrossRef
Metadata
Title
Upregulation of calbindin D28k in the late distal tubules in the potassium-loaded adrenalectomized mouse kidney
Authors
Mizuka Kobayashi
Yukiko Yasuoka
Yuichi Sato
Ming Zhou
Hiroshi Abe
Katsumasa Kawahara
Hirotsugu Okamoto
Publication date
01-06-2011
Publisher
Springer Japan
Published in
Clinical and Experimental Nephrology / Issue 3/2011
Print ISSN: 1342-1751
Electronic ISSN: 1437-7799
DOI
https://doi.org/10.1007/s10157-011-0414-4

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