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Keyword
- acid-sensing ion channel (ASIC)2
- amiloride2
- epithelial sodium channel (ENaC)2
- Na+ self-inhibition2
- [2-(trimethylammonium) ethyl] methanethiosulfonate bromide.1
- ACIC1
- acid-sensing ion channel1
- allosteric regulation1
- blood pressure1
- channel gating1
- degenerin1
- ENaC1
- epithelial Na+ channel1
- extracellular domain1
- genetic polymorphism1
- homology modeling1
- methanethiosulfonate1
- MTS1
- MTSES1
- MTSET1
- nonvoltage-gated ion channel1
- patch clamp1
- protein domain1
- sodium (2-sulfonatoethyl) methanethiosulfonate1
- Xenopus1
Membrane Biology
2 Results
- Research ArticleOpen Access
Accessibility of ENaC extracellular domain central core residues
Journal of Biological ChemistryVol. 298Issue 5101860Published online: March 23, 2022- Lei Zhang
- Xueqi Wang
- Jingxin Chen
- Thomas R. Kleyman
- Shaohu Sheng
Cited in Scopus: 1The epithelial Na+ channel (ENaC)/degenerin family has a similar extracellular architecture, where specific regulatory factors interact and alter channel gating behavior. The extracellular palm domain serves as a key link to the channel pore. In this study, we used cysteine-scanning mutagenesis to assess the functional effects of Cys-modifying reagents on palm domain β10 strand residues in mouse ENaC. Of the 13 ENaC α subunit mutants with Cys substitutions examined, only mutants at sites in the proximal region of β10 exhibited changes in channel activity in response to methanethiosulfonate reagents. - Membrane BiologyOpen Access
Analyses of epithelial Na+ channel variants reveal that an extracellular β-ball domain critically regulates ENaC gating
Journal of Biological ChemistryVol. 294Issue 45p16765–16775Published online: September 24, 2019- Xueqi Wang
- Jingxin Chen
- Shujie Shi
- Shaohu Sheng
- Thomas R. Kleyman
Cited in Scopus: 2Epithelial Na+ channel (ENaC)-mediated Na+ transport has a key role in the regulation of extracellular fluid volume, blood pressure, and extracellular [K+]. Among the thousands of human ENaC variants, only a few exist whose functional consequences have been experimentally tested. Here, we used the Xenopus oocyte expression system to investigate the functional roles of four nonsynonymous human ENaC variants located within the β7-strand and its adjacent loop of the α-subunit extracellular β-ball domain.