The SLC9A-C Mammalian Na+/H+ Exchanger Family: Molecules, Mechanisms, and Physiology

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The SLC9A-C Mammalian Na+/H+ Exchanger Family : Molecules, Mechanisms, and Physiology. / Pedersen, S. F.; Counillon, L.

In: Physiological Reviews, Vol. 99, No. 4, 2019, p. 2015-2113.

Research output: Contribution to journalReviewResearchpeer-review

Harvard

Pedersen, SF & Counillon, L 2019, 'The SLC9A-C Mammalian Na+/H+ Exchanger Family: Molecules, Mechanisms, and Physiology', Physiological Reviews, vol. 99, no. 4, pp. 2015-2113. https://doi.org/10.1152/physrev.00028.2018

APA

Pedersen, S. F., & Counillon, L. (2019). The SLC9A-C Mammalian Na+/H+ Exchanger Family: Molecules, Mechanisms, and Physiology. Physiological Reviews, 99(4), 2015-2113. https://doi.org/10.1152/physrev.00028.2018

Vancouver

Pedersen SF, Counillon L. The SLC9A-C Mammalian Na+/H+ Exchanger Family: Molecules, Mechanisms, and Physiology. Physiological Reviews. 2019;99(4):2015-2113. https://doi.org/10.1152/physrev.00028.2018

Author

Pedersen, S. F. ; Counillon, L. / The SLC9A-C Mammalian Na+/H+ Exchanger Family : Molecules, Mechanisms, and Physiology. In: Physiological Reviews. 2019 ; Vol. 99, No. 4. pp. 2015-2113.

Bibtex

@article{0ae7ac13b9d84f4f92fc6ba48fa3a3ec,
title = "The SLC9A-C Mammalian Na+/H+ Exchanger Family: Molecules, Mechanisms, and Physiology",
abstract = "Na+/H+ exchangers play pivotal roles in the control of cell and tissue pH by mediating the electroneutral exchange of Na+ and H+ across cellular membranes. They belong to an ancient family of highly evolutionarily conserved proteins, and they play essential physiological roles in all phyla. In this review, we focus on the mammalian Na+/H+ exchangers (NHEs), the solute carrier (SLC) 9 family. This family of electroneutral transporters constitutes three branches: SLC9A, -B, and -C. Within these, each isoform exhibits distinct tissue expression profiles, regulation, and physiological roles. Some of these transporters are highly studied, with hundreds of original articles, and some are still only rudimentarily understood. In this review, we present and discuss the pioneering original work as well as the current state-of-the-art research on mammalian NHEs. We aim to provide the reader with a comprehensive view of core knowledge and recent insights into each family member, from gene organization over protein structure and regulation to physiological and pathophysiological roles. Particular attention is given to the integrated physiology of NHEs in the main organ systems. We provide several novel analyses and useful overviews, and we pinpoint main remaining enigmas, which we hope will inspire novel research on these highly versatile proteins.",
keywords = "acid-base homeostasis, genes and evolution, integrated physiology, mammalian NHEs, structure-function and regulation",
author = "Pedersen, {S. F.} and L. Counillon",
year = "2019",
doi = "10.1152/physrev.00028.2018",
language = "English",
volume = "99",
pages = "2015--2113",
journal = "Physiological Reviews",
issn = "0031-9333",
publisher = "American Physiological Society",
number = "4",

}

RIS

TY - JOUR

T1 - The SLC9A-C Mammalian Na+/H+ Exchanger Family

T2 - Molecules, Mechanisms, and Physiology

AU - Pedersen, S. F.

AU - Counillon, L.

PY - 2019

Y1 - 2019

N2 - Na+/H+ exchangers play pivotal roles in the control of cell and tissue pH by mediating the electroneutral exchange of Na+ and H+ across cellular membranes. They belong to an ancient family of highly evolutionarily conserved proteins, and they play essential physiological roles in all phyla. In this review, we focus on the mammalian Na+/H+ exchangers (NHEs), the solute carrier (SLC) 9 family. This family of electroneutral transporters constitutes three branches: SLC9A, -B, and -C. Within these, each isoform exhibits distinct tissue expression profiles, regulation, and physiological roles. Some of these transporters are highly studied, with hundreds of original articles, and some are still only rudimentarily understood. In this review, we present and discuss the pioneering original work as well as the current state-of-the-art research on mammalian NHEs. We aim to provide the reader with a comprehensive view of core knowledge and recent insights into each family member, from gene organization over protein structure and regulation to physiological and pathophysiological roles. Particular attention is given to the integrated physiology of NHEs in the main organ systems. We provide several novel analyses and useful overviews, and we pinpoint main remaining enigmas, which we hope will inspire novel research on these highly versatile proteins.

AB - Na+/H+ exchangers play pivotal roles in the control of cell and tissue pH by mediating the electroneutral exchange of Na+ and H+ across cellular membranes. They belong to an ancient family of highly evolutionarily conserved proteins, and they play essential physiological roles in all phyla. In this review, we focus on the mammalian Na+/H+ exchangers (NHEs), the solute carrier (SLC) 9 family. This family of electroneutral transporters constitutes three branches: SLC9A, -B, and -C. Within these, each isoform exhibits distinct tissue expression profiles, regulation, and physiological roles. Some of these transporters are highly studied, with hundreds of original articles, and some are still only rudimentarily understood. In this review, we present and discuss the pioneering original work as well as the current state-of-the-art research on mammalian NHEs. We aim to provide the reader with a comprehensive view of core knowledge and recent insights into each family member, from gene organization over protein structure and regulation to physiological and pathophysiological roles. Particular attention is given to the integrated physiology of NHEs in the main organ systems. We provide several novel analyses and useful overviews, and we pinpoint main remaining enigmas, which we hope will inspire novel research on these highly versatile proteins.

KW - acid-base homeostasis

KW - genes and evolution

KW - integrated physiology

KW - mammalian NHEs

KW - structure-function and regulation

U2 - 10.1152/physrev.00028.2018

DO - 10.1152/physrev.00028.2018

M3 - Review

C2 - 31507243

AN - SCOPUS:85072030147

VL - 99

SP - 2015

EP - 2113

JO - Physiological Reviews

JF - Physiological Reviews

SN - 0031-9333

IS - 4

ER -

ID: 227518332