ProTx-II is a disulfide-rich peptide toxin from tarantula venom able to inhibit the human voltage-gated sodium channel 1.7 (hNa(V)1.7), a channel reported to be involved in nociception, and thus it might have potential as a pain therapeutic. ProTx-II acts by binding to the membrane-embedded voltage sensor domain of hNa(V)1.7, but the precise peptide channel-binding site and the importance of membrane binding on the inhibitory activity of ProTx-II remain unknown. In this study, we examined the structure and membrane-binding properties of ProTx-II and several analogues using NMR spectroscopy, surface plasmon resonance, fluorescence spectroscopy, and molecular dynamics simulations. Our results show a direct correlation between ProTx-II membran...
Spider venoms are a rich source of ion channel modulators with therapeutic potential. Given the anal...
Gating modifier toxins (GMTs) are venom-derived peptides isolated from spiders and other venomous cr...
Compelling human genetic studies have identified the voltage-gated sodium channel NaV1.7 as a promis...
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...
Free to read at publisher's site. ProTx-II is a disulfide-rich peptide toxin from tarantula venom ab...
Free to read at publisher's site. The human voltage-gated sodium channel sub-type 1.7 (hNaV1.7) is e...
The human voltage-gated sodium channel sub-type 1.7 (hNaV1.7) is emerging as an attractive target fo...
Voltage gated sodium channels (VGSCs) are essential to the propagation of nerve cell impulses and th...
Spider venoms are a rich source of ion channel modulators with therapeutic potential. Given the anal...
Gating modifier toxins (GMTs) from spider venom can inhibit voltage gated sodium channels (NaVs) inv...
The voltage-gated sodium channel Nav1.7 plays a crucial role in pain, and drugs that inhibit hNav1.7...
The voltage-gated sodium NaV1.7 channel plays a key role as a mediator of action potential propagati...
Gating modifier toxins (GMTs) from spider venom can inhibit voltage gated sodium channels (NaVs) inv...
Voltage-gated ion channels (VGICs) are specialised ion channels that have a voltage dependent mode o...
Spider venoms are a rich source of ion channel modulators with therapeutic potential. Given the anal...
Gating modifier toxins (GMTs) are venom-derived peptides isolated from spiders and other venomous cr...
Compelling human genetic studies have identified the voltage-gated sodium channel NaV1.7 as a promis...
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...
Free to read at publisher's site. ProTx-II is a disulfide-rich peptide toxin from tarantula venom ab...
Free to read at publisher's site. The human voltage-gated sodium channel sub-type 1.7 (hNaV1.7) is e...
The human voltage-gated sodium channel sub-type 1.7 (hNaV1.7) is emerging as an attractive target fo...
Voltage gated sodium channels (VGSCs) are essential to the propagation of nerve cell impulses and th...
Spider venoms are a rich source of ion channel modulators with therapeutic potential. Given the anal...
Gating modifier toxins (GMTs) from spider venom can inhibit voltage gated sodium channels (NaVs) inv...
The voltage-gated sodium channel Nav1.7 plays a crucial role in pain, and drugs that inhibit hNav1.7...
The voltage-gated sodium NaV1.7 channel plays a key role as a mediator of action potential propagati...
Gating modifier toxins (GMTs) from spider venom can inhibit voltage gated sodium channels (NaVs) inv...
Voltage-gated ion channels (VGICs) are specialised ion channels that have a voltage dependent mode o...
Spider venoms are a rich source of ion channel modulators with therapeutic potential. Given the anal...
Gating modifier toxins (GMTs) are venom-derived peptides isolated from spiders and other venomous cr...
Compelling human genetic studies have identified the voltage-gated sodium channel NaV1.7 as a promis...