Two Functional Epithelial Sodium Channel Isoforms Are Present in Rodents despite Pronounced Evolutionary Pseudogenization and Exon Fusion

Author:

Gettings Sean M12ORCID,Maxeiner Stephan3ORCID,Tzika Maria1,Cobain Matthew R D1ORCID,Ruf Irina4,Benseler Fritz5,Brose Nils5,Krasteva-Christ Gabriela3,Vande Velde Greetje2,Schönberger Matthias2,Althaus Mike6ORCID

Affiliation:

1. School of Natural and Environmental Sciences, Newcastle University, Newcastle upon Tyne, United Kingdom

2. Biomedical Imaging, Department of Imaging and Pathology, Faculty of Medicine, KU Leuven, Leuven, Belgium

3. Institute for Anatomy and Cell Biology, Saarland University School of Medicine, Homburg, Germany

4. Division of Messel Research and Mammalogy, Senckenberg Research Institute and Natural History Museum Frankfurt, Frankfurt am Main, Germany

5. Department of Molecular Neurobiology, Max Planck Institute of Experimental Medicine, Göttingen, Germany

6. Institute for Functional Gene Analytics, Department of Natural Sciences, Bonn-Rhein-Sieg University of Applied Sciences, Rheinbach, Germany

Abstract

Abstract The epithelial sodium channel (ENaC) plays a key role in salt and water homeostasis in tetrapod vertebrates. There are four ENaC subunits (α, β, γ, δ), forming heterotrimeric αβγ- or δβγ-ENaCs. Although the physiology of αβγ-ENaC is well understood, for decades the field has stalled with respect to δβγ-ENaC due to the lack of mammalian model organisms. The SCNN1D gene coding for δ-ENaC was previously believed to be absent in rodents, hindering studies using standard laboratory animals. We analyzed all currently available rodent genomes and discovered that SCNN1D is present in rodents but was independently lost in five rodent lineages, including the Muridae (mice and rats). The independent loss of SCNN1D in rodent lineages may be constrained by phylogeny and taxon-specific adaptation to dry habitats, however habitat aridity does not provide a selection pressure for maintenance of SCNN1D across Rodentia. A fusion of two exons coding for a structurally flexible region in the extracellular domain of δ-ENaC appeared in the Hystricognathi (a group that includes guinea pigs). This conserved pattern evolved at least 41 Ma and represents a new autapomorphic feature for this clade. Exon fusion does not impair functionality of guinea pig (Cavia porcellus) δβγ-ENaC expressed in Xenopus oocytes. Electrophysiological characterization at the whole-cell and single-channel level revealed conserved biophysical features and mechanisms controlling guinea pig αβγ- and δβγ-ENaC function as compared with human orthologs. Guinea pigs therefore represent commercially available mammalian model animals that will help shed light on the physiological function of δ-ENaC.

Funder

Medical School of Saarland University

State of North Rhine-Westphalia

DFG

Research Foundation Flanders

Publisher

Oxford University Press (OUP)

Subject

Genetics,Molecular Biology,Ecology, Evolution, Behavior and Systematics

Reference68 articles.

1. Habitat preferences of alpine marmots, Marmota marmota;Allainé;Can J Zool,1994

2. Mechano-sensitivity of epithelial sodium channels (ENaCs): laminar shear stress increases ion channel open probability;Althaus;FASEB J,2007

3. Middle Eocene rodents from Peruvian Amazonia reveal the pattern and timing of caviomorph origins and biogeography;Antoine;Proc Biol Sci,2012

4. A new subunit of the epithelial Na+ channel identifies regions involved in Na+ self-inhibition;Babini;J Biol Chem,2003

5. Kinases as targets for ENaC regulation;Baines;Curr Mol Pharmacol,2013

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