PLoS Genetics· 2026Q1
Forward genetics reveals a conserved CNBHD-CNBHD interface that restrains EAG channel activation to regulate sleep
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- 2026year
Short summary
A gain-of-function mutation (G574E) in the C. elegans EAG channel EGL-2 suppresses sleep by inhibiting neuronal activity, revealing a conserved CNBHD-CNBHD interface that restrains channel activation.
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Key points
- A forward genetic screen in C. elegans identified a mutation (G574E) in the EAG channel EGL-2 that suppresses sleep.
- The mutation alters a conserved glycine at the CNBHD-CNBHD interface, inhibiting the ALA sleep-promoting neuron.
- Perturbation of this interface, not the specific amino acid change, underlies the sleep-suppressing phenotype.
- Mutations at homologous residues in C. elegans UNC-103 and human hERG channels also show gain-of-function effects.
AI-generated from the title and abstract; the full text is not read.
Abstract
KCNH voltage-gated potassium channels regulate neuronal excitability, yet how their hallmark cyclic nucleotide-binding homology domains (CNBHDs) influence channel gating to regulate behavior remains unclear. Using an unbiased forward genetic screen in Caenorhabditis elegans , we identified a gain-of-function mutation in the EAG-subfamily KCNH channel EGL-2 that suppresses sleep. The mutation (G574E) alters a highly conserved glycine residue at the interface between CNBHDs of adjacent channel subunits. EGL-2 functions cell-autonomously in the central sleep-promoting neuron ALA. In vivo calcium imaging showed that the gain-of-function mutation suppresses sleep by inhibiting ALA neuronal activity, consistent with enhanced potassium channel activity. Genetic analysis demonstrated that the sleep-suppressing phenotype of G574E requires both an intact potassium selectivity filter and the intrinsic ligand-occupied CNBHD. A second substitution at the same glycine (G574R), which introduces a positively charged side chain in contrast to the negatively charged side chain in G574E, similarly suppresses sleep, indicating that perturbation of the CNBHD-CNBHD interface, rather than the specific amino acid change, underlies the phenotype. Moreover, mutations at the corresponding residue in the ERG-subfamily KCNH channels C. elegans UNC-103 and human hERG also produce gain-of-function effects, and electrophysiological analysis showed that hERG(G749R) shifts voltage-dependent channel activation to more negative potentials and accelerates activation kinetics. These findings identify EGL-2 as an important sleep regulator and uncover a conserved molecular mechanism by which the CNBHD-CNBHD interface restrains KCNH channel activation to regulate neuronal excitability and behavior.
The authors' abstract, as published at the source. PLoS Genetics, 2026 · DOI ↗
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