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muO conotoxins inhibit NaV channels by interfering with their voltage sensors in domain-2
Enrico Leipold1, Herbert DeBie, Stefan Zorn
1Center for Molecular Biomedicine, Department of Biophysics, Friedrich Schiller University, Jena, Germany.
Abstract:
The muO-conotoxins MrVIA and MrVIB are 31-residue peptides from Conus marmoreus, belonging to the O-superfamily of conotoxins with three disulfide bridges. They have attracted attention because they are inhibitors of tetrodotoxin-insensitive voltage-gated sodium channels (Na(V)1.8) and could therefore serve as lead structure for novel analgesics. The aim of this study was to elucidate the molecular mechanism by which muO-conotoxins affect Na(V) channels. Rat Na(V)1.4 channels and mutants thereof were expressed in mammalian cells and were assayed with the whole-cell patch-clamp method. Unlike for the M-superfamily mu-conotoxin GIIIA from Conus geographus, channel block by MrVIA was strongly diminished after activating the Na(V) channels by depolarizing voltage steps. Searching for the source of this voltage dependence, the gating charges in all four-voltage sensors were reduced by site-directed mutagenesis showing that alterations of the voltage sensor in domain-2 have the strongest impact on MrVIA action. These results, together with previous findings that the effect of MrVIA depends on the structure of the pore-loop in domain-3, suggest a functional similarity with scorpion beta-toxins. In fact, MrVIA functionally competed with the scorpion beta-toxin Ts1 from Tityus serrulatus, while it did not show competition with mu-GIIIA. Ts1 and mu-GIIIA did not compete either. Thus, similar to scorpion beta-toxins, muO-conotoxins are voltage-sensor toxins targeting receptor site-4 on Na(V) channels. They "block" Na(+) flow most likely by hindering the voltage sensor in domain-2 from activating and, hence, the channel from opening.
Insights
MuO-conotoxins MrVIA and MrVIB inhibit sodium channels (Na(V)1.8), offering potential for new pain relief. These toxins function similarly to scorpion beta-toxins, targeting voltage sensors to block channel activity.
Area of Science:
- Neuroscience
- Pharmacology
- Molecular Biology
Background:
- MuO-conotoxins MrVIA and MrVIB from Conus marmoreus are O-superfamily conotoxins.
- They inhibit tetrodotoxin-insensitive voltage-gated sodium channels (Na(V)1.8).
- These peptides are potential lead structures for novel analgesics.
Purpose of the Study:
- To elucidate the molecular mechanism of muO-conotoxin action on Na(V) channels.
- Investigate the voltage dependence and specific binding sites of MrVIA.
Main Methods:
- Expression of rat Na(V)1.4 channels and mutants in mammalian cells.
- Whole-cell patch-clamp electrophysiology.
- Site-directed mutagenesis to alter voltage sensors.
Main Results:
- MrVIA's channel block was voltage-dependent, diminishing upon channel activation.
- Mutations in the domain-2 voltage sensor significantly impacted MrVIA's action.
- MrVIA functionally competed with scorpion beta-toxin Ts1, but not with mu-GIIIA.
Conclusions:
- MuO-conotoxins act as voltage-sensor toxins, similar to scorpion beta-toxins.
- They target receptor site-4 on Na(V) channels.
- MrVIA likely hinders domain-2 voltage sensor activation, preventing channel opening.
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