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Keyword
- epithelial sodium channel (ENaC)3
- acid sensing ion channel (ASIC)1
- acid-sensing ion channel (ASIC)1
- aldosterone1
- amiloride1
- blood pressure1
- chaperone1
- gating1
- genetic polymorphism1
- hypertension1
- kidney1
- MEC-61
- mechanotransduction1
- Na+ self-inhibition1
- nonvoltage-gated ion channel1
- patch clamp1
- PON31
- pore1
- shear stress1
- Xenopus1
Membrane Biology
3 Results
- Membrane BiologyOpen Access
Paraoxonase 3 functions as a chaperone to decrease functional expression of the epithelial sodium channel
Journal of Biological ChemistryVol. 295Issue 15p4950–4962Published online: February 20, 2020- Shujie Shi
- Nicolas Montalbetti
- Xueqi Wang
- Brittney M. Rush
- Allison L. Marciszyn
- Catherine J. Baty
- and others
Cited in Scopus: 3The paraoxonase (PON) family comprises three highly conserved members: PON1, PON2, and PON3. They are orthologs of Caenorhabditis elegans MEC-6, an endoplasmic reticulum–resident chaperone that has a critical role in proper assembly and surface expression of the touch-sensing degenerin channel in nematodes. We have shown recently that MEC-6 and PON2 negatively regulate functional expression of the epithelial Na+ channel (ENaC), suggesting that the chaperone function is conserved within this family. - 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. - Membrane BiologyOpen Access
Pore-lining residues of MEC-4 and MEC-10 channel subunits tune the Caenorhabditis elegans degenerin channel's response to shear stress
Journal of Biological ChemistryVol. 293Issue 27p10757–10766Published online: May 9, 2018- Shujie Shi
- Stephanie M. Mutchler
- Brandon M. Blobner
- Ossama B. Kashlan
- Thomas R. Kleyman
Cited in Scopus: 3The Caenorhabditis elegans MEC-4/MEC-10 channel mediates the worm's response to gentle body touch and is activated by laminar shear stress (LSS) when expressed in Xenopus oocytes. Substitutions at multiple sites within the second transmembrane domain (TM2) of MEC-4 or MEC-10 abolish the gentle touch response in worms, but the roles of these residues in mechanosensing are unclear. The present study therefore examined the role of specific MEC-4 and MEC-10 TM2 residues in the channel's response to LSS.