Gating modifier toxins (GMTs) are venom-derived peptides isolated from spiders and other venomous creatures and modulate activity of disease-relevant voltage-gated ion channels and are therefore being pursued as therapeutic leads. The amphipathic surface profile of GMTs has prompted the proposal that some GMTs simultaneously bind to the cell membrane and voltage-gated ion channels in a trimolecular complex. Here, we examined whether there is a relationship among spider GMT amphipathicity, membrane binding, and potency or selectivity for voltage-gated sodium (NaV) channels. We used NMR spectroscopy and in silico,/i> calculations to examine the structures and physicochemical properties of a panel of nine GMTs and deployed surface plasmon reso...
Voltage-gated sodium (Na-v) channels play a central role in the propagation of action potentials in ...
Voltage-activated sodium (Nav) channels are essential in generating and propagating nerve impulses, ...
.Voltage-gated sodium (NaV) channels play crucial roles in a range of (patho)physiological processes...
Gating modifier toxins (GMTs) are venom-derived peptides isolated from spiders and other venomous cr...
Spider peptide toxins have attracted attention because of their ability to target voltage-gated ion ...
Gating modifier toxins (GMTs) from spider venom can inhibit voltage gated sodium channels (NaVs) inv...
Gating modifier toxins (GMTs) from spider venom can inhibit voltage gated sodium channels (NaVs) inv...
Many venom peptides are potent and selective inhibitors of voltage-gated ion channels, including cha...
Free to read at publisher's site. Many venom peptides are potent and selective inhibitors of voltage...
The human voltage-gated sodium channel sub-type 1.7 (hNaV1.7) is emerging as an attractive target fo...
Free to read at publisher's site. The human voltage-gated sodium channel sub-type 1.7 (hNaV1.7) is e...
Voltage-gated ion channels (VGICs) are specialised ion channels that have a voltage dependent mode o...
Free to read at publisher's site. ProTx-II is a disulfide-rich peptide toxin from tarantula venom ab...
ProTx-II is a disulfide-rich peptide toxin from tarantula venom able to inhibit the human voltage-ga...
ProTx-II is a disulfide-rich peptide toxin from tarantula venom able to inhibit the human voltage-ga...
Voltage-gated sodium (Na-v) channels play a central role in the propagation of action potentials in ...
Voltage-activated sodium (Nav) channels are essential in generating and propagating nerve impulses, ...
.Voltage-gated sodium (NaV) channels play crucial roles in a range of (patho)physiological processes...
Gating modifier toxins (GMTs) are venom-derived peptides isolated from spiders and other venomous cr...
Spider peptide toxins have attracted attention because of their ability to target voltage-gated ion ...
Gating modifier toxins (GMTs) from spider venom can inhibit voltage gated sodium channels (NaVs) inv...
Gating modifier toxins (GMTs) from spider venom can inhibit voltage gated sodium channels (NaVs) inv...
Many venom peptides are potent and selective inhibitors of voltage-gated ion channels, including cha...
Free to read at publisher's site. Many venom peptides are potent and selective inhibitors of voltage...
The human voltage-gated sodium channel sub-type 1.7 (hNaV1.7) is emerging as an attractive target fo...
Free to read at publisher's site. The human voltage-gated sodium channel sub-type 1.7 (hNaV1.7) is e...
Voltage-gated ion channels (VGICs) are specialised ion channels that have a voltage dependent mode o...
Free to read at publisher's site. ProTx-II is a disulfide-rich peptide toxin from tarantula venom ab...
ProTx-II is a disulfide-rich peptide toxin from tarantula venom able to inhibit the human voltage-ga...
ProTx-II is a disulfide-rich peptide toxin from tarantula venom able to inhibit the human voltage-ga...
Voltage-gated sodium (Na-v) channels play a central role in the propagation of action potentials in ...
Voltage-activated sodium (Nav) channels are essential in generating and propagating nerve impulses, ...
.Voltage-gated sodium (NaV) channels play crucial roles in a range of (patho)physiological processes...