Proceedings of the National Academy of Sciences · 1998 · 143 citations · 35 references
Epithelial Na+ channels are expressed widely in absorptive epithelia such as the renal collecting duct and the colon and play a critical role in fluid and electrolyte homeostasis. Recent studies have shown that these channels interact via PY motifs in the C terminals of their alpha, beta, and gamma subunits with the WW domains of the ubiquitin-protein ligase Nedd4. Mutation or deletion of these PY motifs (as occurs, for example, in the heritable form of hypertension known as Liddle's syndrome) leads to increased Na+ channel activity. Thus, binding of Nedd4 by the PY motifs would appear to be part of a physiological control system for down-regulation of Na+ channel activity. The nature of this control system is, however, unknown. In the present paper, we show that Nedd4 mediates the ubiquitin-dependent down-regulation of Na+ channel activity in response to increased intracellular Na+. We further show that Nedd4 operates downstream of Go in this feedback pathway. We find, however, that Nedd4 is not involved in the feedback control of Na+ channels by intracellular anions. Finally, we show that Nedd4 has no influence on Na+ channel activity when the Na+ and anion feedback systems are inactive. We conclude that Nedd4 normally mediates feedback control of epithelial Na+ channels by intracellular Na+, and we suggest that the increased Na+ channel activity observed in Liddle's syndrome is attributable to the loss of this regulatory feedback system.
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A Multiubiquitin Chain Is Confined to Specific Lysine in a Targeted Short-Lived Protein
Vincent Chau, John W. Tobias, Andreas Bachmair et al. · Science · 1989 · 1.5K citations
Degradation of CFTR by the ubiquitin-proteasome pathway
Cristina L. Ward, Satoshi ŌMURA, Ron R. Kopito · Cell · 1995 · 1.3K citations · Full text
The GTP-binding protein, Go9 regulates neuronal calcium channels
J. Hescheler, Walter Rosenthal, W. Trautwein et al. · Nature · 1987 · 907 citations
Molecular Neuroscience, Molecular Physiology, Neurophysiology +7