Cargando…

Erythroid‐specific inactivation of Slc12a6/Kcc3 by EpoR promoter‐driven Cre expression reduces K‐Cl cotransport activity in mouse erythrocytes

Investigation of erythrocytes from spontaneous or engineered germ‐line mutant mice has been instrumental in characterizing the physiological functions of components of the red cell cytoskeleton and membrane. However, the red blood cell expresses some proteins whose germline loss‐of‐function is embry...

Descripción completa

Detalles Bibliográficos
Autores principales: Shmukler, Boris E., Rivera, Alicia, Nishimura, Katherine, Hsu, Ann, Wohlgemuth, Jay G., Dlott, Jeffrey S., Michael Snyder, L., Brugnara, Carlo, Alper, Seth L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8915159/
https://www.ncbi.nlm.nih.gov/pubmed/35274823
http://dx.doi.org/10.14814/phy2.15186
_version_ 1784667951045017600
author Shmukler, Boris E.
Rivera, Alicia
Nishimura, Katherine
Hsu, Ann
Wohlgemuth, Jay G.
Dlott, Jeffrey S.
Michael Snyder, L.
Brugnara, Carlo
Alper, Seth L.
author_facet Shmukler, Boris E.
Rivera, Alicia
Nishimura, Katherine
Hsu, Ann
Wohlgemuth, Jay G.
Dlott, Jeffrey S.
Michael Snyder, L.
Brugnara, Carlo
Alper, Seth L.
author_sort Shmukler, Boris E.
collection PubMed
description Investigation of erythrocytes from spontaneous or engineered germ‐line mutant mice has been instrumental in characterizing the physiological functions of components of the red cell cytoskeleton and membrane. However, the red blood cell expresses some proteins whose germline loss‐of‐function is embryonic‐lethal, perinatal‐lethal, or confers reduced post‐weaning viability. Promoter regions of erythroid‐specific genes have been used to engineer erythroid‐specific expression of Cre recombinase. Through breeding with mice carrying appropriately spaced insertions of loxP sequences, generation of erythroid‐specific knockouts has been carried out for signaling enzymes, transcription factors, peptide hormones, and single transmembrane span signaling receptors. We report here the use of Cre recombinase expression driven by the erythropoietin receptor (EpoR) promoter to generate EpoR‐Cre;Kcc3(f) (/) (f) mice, designed to express erythroid‐specific knockout of the KCC3 K‐Cl cotransporter encoded by Kcc3/Slc12A6. We confirm KCC3 as the predominant K‐Cl cotransporter of adult mouse red cells in mice with better viability than previously exhibited by Kcc3 (−/−) germline knockouts. We demonstrate roughly proportionate preservation of K‐Cl stimulation by hypotonicity, staurosporine, and urea in the context of reduced, but not abrogated, K‐Cl function in EpoR‐Cre;Kcc3(f) (/) (f) mice. We also report functional evidence suggesting incomplete recombinase‐mediated excision of the Kcc3 gene in adult erythroid tissues.
format Online
Article
Text
id pubmed-8915159
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher John Wiley and Sons Inc.
record_format MEDLINE/PubMed
spelling pubmed-89151592022-03-18 Erythroid‐specific inactivation of Slc12a6/Kcc3 by EpoR promoter‐driven Cre expression reduces K‐Cl cotransport activity in mouse erythrocytes Shmukler, Boris E. Rivera, Alicia Nishimura, Katherine Hsu, Ann Wohlgemuth, Jay G. Dlott, Jeffrey S. Michael Snyder, L. Brugnara, Carlo Alper, Seth L. Physiol Rep Original Articles Investigation of erythrocytes from spontaneous or engineered germ‐line mutant mice has been instrumental in characterizing the physiological functions of components of the red cell cytoskeleton and membrane. However, the red blood cell expresses some proteins whose germline loss‐of‐function is embryonic‐lethal, perinatal‐lethal, or confers reduced post‐weaning viability. Promoter regions of erythroid‐specific genes have been used to engineer erythroid‐specific expression of Cre recombinase. Through breeding with mice carrying appropriately spaced insertions of loxP sequences, generation of erythroid‐specific knockouts has been carried out for signaling enzymes, transcription factors, peptide hormones, and single transmembrane span signaling receptors. We report here the use of Cre recombinase expression driven by the erythropoietin receptor (EpoR) promoter to generate EpoR‐Cre;Kcc3(f) (/) (f) mice, designed to express erythroid‐specific knockout of the KCC3 K‐Cl cotransporter encoded by Kcc3/Slc12A6. We confirm KCC3 as the predominant K‐Cl cotransporter of adult mouse red cells in mice with better viability than previously exhibited by Kcc3 (−/−) germline knockouts. We demonstrate roughly proportionate preservation of K‐Cl stimulation by hypotonicity, staurosporine, and urea in the context of reduced, but not abrogated, K‐Cl function in EpoR‐Cre;Kcc3(f) (/) (f) mice. We also report functional evidence suggesting incomplete recombinase‐mediated excision of the Kcc3 gene in adult erythroid tissues. John Wiley and Sons Inc. 2022-03-11 /pmc/articles/PMC8915159/ /pubmed/35274823 http://dx.doi.org/10.14814/phy2.15186 Text en © 2022 The Authors. Physiological Reports published by Wiley Periodicals LLC on behalf of The Physiological Society and the American 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 Original Articles
Shmukler, Boris E.
Rivera, Alicia
Nishimura, Katherine
Hsu, Ann
Wohlgemuth, Jay G.
Dlott, Jeffrey S.
Michael Snyder, L.
Brugnara, Carlo
Alper, Seth L.
Erythroid‐specific inactivation of Slc12a6/Kcc3 by EpoR promoter‐driven Cre expression reduces K‐Cl cotransport activity in mouse erythrocytes
title Erythroid‐specific inactivation of Slc12a6/Kcc3 by EpoR promoter‐driven Cre expression reduces K‐Cl cotransport activity in mouse erythrocytes
title_full Erythroid‐specific inactivation of Slc12a6/Kcc3 by EpoR promoter‐driven Cre expression reduces K‐Cl cotransport activity in mouse erythrocytes
title_fullStr Erythroid‐specific inactivation of Slc12a6/Kcc3 by EpoR promoter‐driven Cre expression reduces K‐Cl cotransport activity in mouse erythrocytes
title_full_unstemmed Erythroid‐specific inactivation of Slc12a6/Kcc3 by EpoR promoter‐driven Cre expression reduces K‐Cl cotransport activity in mouse erythrocytes
title_short Erythroid‐specific inactivation of Slc12a6/Kcc3 by EpoR promoter‐driven Cre expression reduces K‐Cl cotransport activity in mouse erythrocytes
title_sort erythroid‐specific inactivation of slc12a6/kcc3 by epor promoter‐driven cre expression reduces k‐cl cotransport activity in mouse erythrocytes
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8915159/
https://www.ncbi.nlm.nih.gov/pubmed/35274823
http://dx.doi.org/10.14814/phy2.15186
work_keys_str_mv AT shmuklerborise erythroidspecificinactivationofslc12a6kcc3byeporpromoterdrivencreexpressionreduceskclcotransportactivityinmouseerythrocytes
AT riveraalicia erythroidspecificinactivationofslc12a6kcc3byeporpromoterdrivencreexpressionreduceskclcotransportactivityinmouseerythrocytes
AT nishimurakatherine erythroidspecificinactivationofslc12a6kcc3byeporpromoterdrivencreexpressionreduceskclcotransportactivityinmouseerythrocytes
AT hsuann erythroidspecificinactivationofslc12a6kcc3byeporpromoterdrivencreexpressionreduceskclcotransportactivityinmouseerythrocytes
AT wohlgemuthjayg erythroidspecificinactivationofslc12a6kcc3byeporpromoterdrivencreexpressionreduceskclcotransportactivityinmouseerythrocytes
AT dlottjeffreys erythroidspecificinactivationofslc12a6kcc3byeporpromoterdrivencreexpressionreduceskclcotransportactivityinmouseerythrocytes
AT michaelsnyderl erythroidspecificinactivationofslc12a6kcc3byeporpromoterdrivencreexpressionreduceskclcotransportactivityinmouseerythrocytes
AT brugnaracarlo erythroidspecificinactivationofslc12a6kcc3byeporpromoterdrivencreexpressionreduceskclcotransportactivityinmouseerythrocytes
AT alpersethl erythroidspecificinactivationofslc12a6kcc3byeporpromoterdrivencreexpressionreduceskclcotransportactivityinmouseerythrocytes