4.5 Article

Insight toward epithelial Na+ channel mechanism revealed by the acid-sensing ion channel 1 structure

期刊

IUBMB LIFE
卷 60, 期 9, 页码 620-628

出版社

WILEY
DOI: 10.1002/iub.89

关键词

hypertension; epithelial transport; aldosterone

资金

  1. NIH
  2. AHA [R01DK059594, R01DK070571, EIA 0640054N]
  3. NATIONAL INSTITUTE OF DIABETES AND DIGESTIVE AND KIDNEY DISEASES [R01DK070571, R01DK059594] Funding Source: NIH RePORTER

向作者/读者索取更多资源

The epithelial Na+ channel/degenerin (ENaC/DEG) protein family includes a diverse group of ion channels, including nonvoltage-gated Na+ channels of epithelia and neurons, and the acid-sensing ion channel 1 (ASIC1). In mammalian epithelia, ENaC helps regulate Na+ and associated water transport, making it a critical determinant of systemic blood pressure and pulmonary mucosal fluidity. In the nervous system, ENaC/DEG proteins are related to sensory, transduction. While the importance and physiological function of these ion channels are established, less is known about their structure. One hallmark or the ENaC/DEG channel family is that each channel subunit has only two transmembrane domains connected by an exceedingly, large extracellular loop. This subunit structure was recently confirmed when Jasti and colleagues determined the crystal structure of chicken ASIC1, a neuronal acid-sensing ENaC/DEG channel. By mapping ENaC to the structural coordinates of cASIC1, as we do here, we hope to provide insight toward ENaC structure. ENaC, like ASIC1, appears to be a trimeric channel containing 1 alpha, 1 beta, and 1 gamma subunit. Heterotrimeric ENaC and monomeric ENaC subunits within the trimer possibly contain many of the major secondary, tertiary, and quaternary features identified in cASIC1 with a few subtle but critical differences. These differences are expected to have profound effects on channel behavior. In particular, they may contribute to ENaC insensitivity to acid and to its constitutive activity in the absence of time- and ligand-dependent inactivation. Experiments resulting from this comparison of cASIC1 and ENaC may help clarify unresolved issues related to ENaC architec ture, and may help identify secondary structures and residues critical to ENaC function. (C) 2008 IUBMB.

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