2015
DOI: 10.1126/science.aac5464
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Structural basis of Nav1.7 inhibition by an isoform-selective small-molecule antagonist

Abstract: A channel involved in pain perception Voltage-gated sodium (Nav) channels propagate electrical signals in muscle cells and neurons. In humans, Nav1.7 plays a key role in pain perception. It is challenging to target a particular Nav isoform; however, arylsulfonamide antagonists selective for Nav1.7 have been reported recently. Ahuja et al. characterized the binding of these small molecules to human Nav channels. To further investigate the mechanism, they engineered… Show more

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Cited by 269 publications
(313 citation statements)
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References 60 publications
(134 reference statements)
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“…Ion channels are responsible for a number of channelopathies (i.e., pathological conditions of various origins), including genetic channelopathies caused by malfunctioning ion channels (78). Nevertheless, despite recent efforts resulting in the discovery of novel potential drugs targeting ion channels (39,40), this class of proteins remains quite underexploited in drug discovery because it poses significant challenges (78)(79)(80)(81). For many years,…”
Section: Discussionmentioning
confidence: 99%
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“…Ion channels are responsible for a number of channelopathies (i.e., pathological conditions of various origins), including genetic channelopathies caused by malfunctioning ion channels (78). Nevertheless, despite recent efforts resulting in the discovery of novel potential drugs targeting ion channels (39,40), this class of proteins remains quite underexploited in drug discovery because it poses significant challenges (78)(79)(80)(81). For many years,…”
Section: Discussionmentioning
confidence: 99%
“…Finally, substrate-mimicking strategies, traditionally adopted for enzymes, are hardly an option for ion channels: Competition with the permeant ion in the selectivity filter can be attained only by another ion or by small fragments. Recent advances in the biophysical characterization and screening of ion channels, together with continuing progress in biomolecular simulations, have paved the way for successful drug design campaigns (39,40,82) that have made ion channels pharmaceutically tractable, as well as attractive, targets. Notably, targeting ion channels increased the therapeutic options in areas such as cardiovascular diseases, neuropathic pain, diabetes, and cancer (79,81).…”
Section: S1mentioning
confidence: 99%
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“…4, D and E). The X-ray crystallographic structure of Na V Ab-hNa V 1.7-VSD-IV chimera shows a phosphatidylcholine (23) bound to the same region of the structure where Gly-856 is positioned in our structural model. Interaction of the phosphodiester head groups of lipids are essential for voltage-dependent gating (24,25), suggesting that alteration of the lipid-channel interaction may modulate Na V channel function.…”
Section: Structural Modeling Of the Wild-type And Mutant Na V 17 Chamentioning
confidence: 99%
“…8-10). The detailed view of toxin binding, however, is unsupported by structural biology, as no high-resolution structure of a eukaryotic Na V has been solved to date (11)(12)(13)(14)(15)(16). Na V homology models, constructed based on X-ray analyses of prokaryotic Na + and K + voltage-gated channels, do not sufficiently account for experimental structure-activity relationship (SAR) data (6,(17)(18)(19)(20), and the molecular details underlying distinct differences in toxin potencies toward individual Na V subtypes remain undefined (5,6,(21)(22)(23).…”
mentioning
confidence: 99%