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A five amino acids deletion in NKCC2 of C57BL/6 mice affects analysis of NKCC2 phosphorylation but does not impact kidney function

AIM: The phosphorylation level of the furosemide‐sensitive Na(+)‐K(+)‐2Cl(−) cotransporter (NKCC2) in the thick ascending limb (TAL) is used as a surrogate marker for NKCC2 activation and TAL function. However, in mice, analyses of NKCC2 phosphorylation with antibodies against phosphorylated threoni...

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Autores principales: Moser, Sandra, Sugano, Yuya, Wengi, Agnieszka, Fisi, Viktoria, Lindtoft Rosenbaek, Lena, Mariniello, Marta, Loffing‐Cueni, Dominique, McCormick, James A., Fenton, Robert A., Loffing, Johannes
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8384713/
https://www.ncbi.nlm.nih.gov/pubmed/34114742
http://dx.doi.org/10.1111/apha.13705
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author Moser, Sandra
Sugano, Yuya
Wengi, Agnieszka
Fisi, Viktoria
Lindtoft Rosenbaek, Lena
Mariniello, Marta
Loffing‐Cueni, Dominique
McCormick, James A.
Fenton, Robert A.
Loffing, Johannes
author_facet Moser, Sandra
Sugano, Yuya
Wengi, Agnieszka
Fisi, Viktoria
Lindtoft Rosenbaek, Lena
Mariniello, Marta
Loffing‐Cueni, Dominique
McCormick, James A.
Fenton, Robert A.
Loffing, Johannes
author_sort Moser, Sandra
collection PubMed
description AIM: The phosphorylation level of the furosemide‐sensitive Na(+)‐K(+)‐2Cl(−) cotransporter (NKCC2) in the thick ascending limb (TAL) is used as a surrogate marker for NKCC2 activation and TAL function. However, in mice, analyses of NKCC2 phosphorylation with antibodies against phosphorylated threonines 96 and 101 (anti‐pT96/pT101) give inconsistent results. We aimed (a) to elucidate these inconsistencies and (b) to develop a phosphoform‐specific antibody that ensures reliable detection of NKCC2 phosphorylation in mice. METHODS: Genetic information, molecular biology, biochemical techniques and mouse phenotyping was used to study NKCC2 and kidney function in two commonly used mouse strains (ie 129Sv and in C57BL/6 mice). Moreover, a new phosphoform‐specific mouse NKCC2 antibody was developed and characterized. RESULTS: Amino acids sequence alignment revealed that C57BL/6 mice have a strain‐specific five amino acids deletion (ΔF97‐T101) in NKCC2 that diminishes the detection of NKCC2 phosphorylation with previously developed pT96/pT101 NKCC2 antibodies. Instead, the antibodies cross‐react with the phosphorylated thiazide‐sensitive NaCl cotransporter (NCC), which can obscure interpretation of results. Interestingly, the deletion in NKCC2 does not impact on kidney function and/or expression of renal ion transport proteins as indicated by the analysis of the F2 generation of crossbred 129Sv and C57BL/6 mice. A newly developed pT96 NKCC2 antibody detects pNKCC2 in both mouse strains and shows no cross‐reactivity with phosphorylated NCC. CONCLUSION: Our work reveals a hitherto unappreciated, but essential, strain difference in the amino acids sequence of mouse NKCC2 that needs to be considered when analysing NKCC2 phosphorylation in mice. The new pNKCC2 antibody circumvents this technical caveat.
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spelling pubmed-83847132021-09-28 A five amino acids deletion in NKCC2 of C57BL/6 mice affects analysis of NKCC2 phosphorylation but does not impact kidney function Moser, Sandra Sugano, Yuya Wengi, Agnieszka Fisi, Viktoria Lindtoft Rosenbaek, Lena Mariniello, Marta Loffing‐Cueni, Dominique McCormick, James A. Fenton, Robert A. Loffing, Johannes Acta Physiol (Oxf) Renal Physiology AIM: The phosphorylation level of the furosemide‐sensitive Na(+)‐K(+)‐2Cl(−) cotransporter (NKCC2) in the thick ascending limb (TAL) is used as a surrogate marker for NKCC2 activation and TAL function. However, in mice, analyses of NKCC2 phosphorylation with antibodies against phosphorylated threonines 96 and 101 (anti‐pT96/pT101) give inconsistent results. We aimed (a) to elucidate these inconsistencies and (b) to develop a phosphoform‐specific antibody that ensures reliable detection of NKCC2 phosphorylation in mice. METHODS: Genetic information, molecular biology, biochemical techniques and mouse phenotyping was used to study NKCC2 and kidney function in two commonly used mouse strains (ie 129Sv and in C57BL/6 mice). Moreover, a new phosphoform‐specific mouse NKCC2 antibody was developed and characterized. RESULTS: Amino acids sequence alignment revealed that C57BL/6 mice have a strain‐specific five amino acids deletion (ΔF97‐T101) in NKCC2 that diminishes the detection of NKCC2 phosphorylation with previously developed pT96/pT101 NKCC2 antibodies. Instead, the antibodies cross‐react with the phosphorylated thiazide‐sensitive NaCl cotransporter (NCC), which can obscure interpretation of results. Interestingly, the deletion in NKCC2 does not impact on kidney function and/or expression of renal ion transport proteins as indicated by the analysis of the F2 generation of crossbred 129Sv and C57BL/6 mice. A newly developed pT96 NKCC2 antibody detects pNKCC2 in both mouse strains and shows no cross‐reactivity with phosphorylated NCC. CONCLUSION: Our work reveals a hitherto unappreciated, but essential, strain difference in the amino acids sequence of mouse NKCC2 that needs to be considered when analysing NKCC2 phosphorylation in mice. The new pNKCC2 antibody circumvents this technical caveat. John Wiley and Sons Inc. 2021-06-26 2021-09 /pmc/articles/PMC8384713/ /pubmed/34114742 http://dx.doi.org/10.1111/apha.13705 Text en © 2021 The Authors. Acta Physiologica published by John Wiley & Sons Ltd on behalf of Scandinavian Physiological Society https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Renal Physiology
Moser, Sandra
Sugano, Yuya
Wengi, Agnieszka
Fisi, Viktoria
Lindtoft Rosenbaek, Lena
Mariniello, Marta
Loffing‐Cueni, Dominique
McCormick, James A.
Fenton, Robert A.
Loffing, Johannes
A five amino acids deletion in NKCC2 of C57BL/6 mice affects analysis of NKCC2 phosphorylation but does not impact kidney function
title A five amino acids deletion in NKCC2 of C57BL/6 mice affects analysis of NKCC2 phosphorylation but does not impact kidney function
title_full A five amino acids deletion in NKCC2 of C57BL/6 mice affects analysis of NKCC2 phosphorylation but does not impact kidney function
title_fullStr A five amino acids deletion in NKCC2 of C57BL/6 mice affects analysis of NKCC2 phosphorylation but does not impact kidney function
title_full_unstemmed A five amino acids deletion in NKCC2 of C57BL/6 mice affects analysis of NKCC2 phosphorylation but does not impact kidney function
title_short A five amino acids deletion in NKCC2 of C57BL/6 mice affects analysis of NKCC2 phosphorylation but does not impact kidney function
title_sort five amino acids deletion in nkcc2 of c57bl/6 mice affects analysis of nkcc2 phosphorylation but does not impact kidney function
topic Renal Physiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8384713/
https://www.ncbi.nlm.nih.gov/pubmed/34114742
http://dx.doi.org/10.1111/apha.13705
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