miR-263a Regulates ENaC to Maintain Osmotic and Intestinal Stem Cell Homeostasis in Drosophila

Dev Cell. 2017 Jan 9;40(1):23-36. doi: 10.1016/j.devcel.2016.11.023. Epub 2016 Dec 22.

Abstract

Proper regulation of osmotic balance and response to tissue damage is crucial in maintaining intestinal stem cell (ISC) homeostasis. We found that Drosophila miR-263a downregulates the expression of epithelial sodium channel (ENaC) subunits in enterocytes (ECs) to maintain osmotic and ISC homeostasis. In the absence of miR-263a, the intraluminal surface of the intestine displays dehydration-like phenotypes, Na+ levels are increased in ECs, stress pathways are activated in ECs, and ISCs overproliferate. Furthermore, miR-263a mutants have increased bacterial load and expression of antimicrobial peptides. Strikingly, these phenotypes are reminiscent of the pathophysiology of cystic fibrosis (CF) in which loss-of-function mutations in the chloride channel CF transmembrane conductance regulator can elevate the activity of ENaC, suggesting that Drosophila could be used as a model for CF. Finally, we provide evidence that overexpression of miR-183, the human ortholog of miR-263a, can also directly target the expressions of all three subunits of human ENaC.

Keywords: Drosophila; ENaC; cystic fibrosis; miR-183; miR-263a; microRNA.

Publication types

  • Research Support, N.I.H., Extramural
  • Research Support, Non-U.S. Gov't

MeSH terms

  • Animals
  • Bacterial Load / genetics
  • Cell Membrane / metabolism
  • Cell Proliferation
  • Drosophila Proteins / genetics
  • Drosophila Proteins / metabolism*
  • Drosophila melanogaster / cytology
  • Drosophila melanogaster / metabolism*
  • Epithelial Cells / metabolism
  • Epithelial Sodium Channels / genetics
  • Epithelial Sodium Channels / metabolism*
  • Epithelium / metabolism
  • Gene Expression Regulation
  • Homeostasis* / genetics
  • Hydrogen-Ion Concentration
  • Intestines / cytology*
  • MicroRNAs / genetics
  • MicroRNAs / metabolism*
  • Models, Biological
  • Mutation / genetics
  • Osmosis*
  • Phenotype
  • Signal Transduction / genetics
  • Sodium / metabolism
  • Stem Cells / cytology
  • Stem Cells / metabolism*
  • Stress, Physiological / genetics

Substances

  • Drosophila Proteins
  • Epithelial Sodium Channels
  • MIRN263 microRNA, Drosophila
  • MicroRNAs
  • Sodium