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The degenerin/epithelial sodium channel (DEG/ENaC) superfamily of ion channels contains subfamilies with diverse functions that are fundamental to many physiological and pathological processes, ranging from synaptic transmission to epileptogenesis. The absence in mammals of some DEG/ENaCs subfamily orthologues such as FMRFamide peptide-activated sodium channels (FaNaCs), which have been identified only in mollusks, indicates that the various subfamilies diverged early in evolution. We recently reported that the nonproton agonist 2-guanidine-4-methylquinazoline (GMQ) activates acid-sensing ion channels (ASICs), a DEG/ENaC subfamily mainly in mammals, in the absence of acidosis. Here, we show that GMQ also could directly activate the mollusk-specific FaNaCs. Differences in ion selectivity and unitary conductance and effects of substitutions at key residues revealed that GMQ and FMRFamide activate FaNaCs via distinct mechanisms. The presence of two activation mechanisms in the FaNaC subfamily diverging early in the evolution of DEG/ENaCs suggested that dual gating is an ancient feature in this superfamily. Notably, the GMQ-gating mode is still preserved in the mammalian ASIC subfamily, whereas FMRFamide-mediated channel gating was lost during evolution. This implied that GMQ activation may be essential for the functions of mammalian DEG/ENaCs. Our findings provide new insights into the evolution of DEG/ENaCs and may facilitate the discovery and characterization of their endogenous agonists.
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http://dx.doi.org/10.1074/jbc.M117.814707 | DOI Listing |
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Guangxi Key Laboratory of Natural Polymer Chemistry and Physics, Key Laboratory of Nanobiosensor Analysis, College of Chemistry and Materials, Nanning Normal University, Nanning, 530001, PR China. Electronic address:
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Department of Neurology, University of Mississippi Medical Center, Jackson, MS 39216, USA.
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Department of Biomedical Sciences, University of Lausanne, Lausanne, Switzerland.
Changes in local proton concentrations within the body occur during synaptic transmission and metabolic activity and along the digestive tract. Perturbations to the strictly controlled physiological tissue pH are often associated with pathological processes. As such, many cell types require the ability to sense and respond to changes in local proton concentrations.
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Venom and Biotherapeutics Molecules Laboratory, Medical Biotechnology Department, Biotechnology Research Center, Pasteur Institute of Iran, Tehran, Iran.
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View Article and Find Full Text PDFBiochem Pharmacol
August 2025
School of Basic Medical Sciences, Xianning Medical College, Hubei University of Science and Technology, 88 Xianning Road, Xianning 437100 Hubei, PR China. Electronic address:
The epidermal growth factor receptor (EGFR) is located in primary sensory neurons and has been implicated in pain processing. However, its mechanism is still not well understood. The aim of the investigation is to determine whether EGFR signaling affects pain-associated ion channels in nociceptive dorsal root ganglion (DRG) neurons.
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