The voltage-gated sodium channel NaV1.7 is an important target for drug development due to its role in pain perception. Recombinant expression of full-length channels and their use for biophysical characterization of interactions with potential drug candidates is challenging due to the protein size and complexity. To overcome this issue, we developed a protocol for the recombinant expression in E. coli and refolding into lipids of the isolated voltage sensing domain (VSD) of repeat II of NaV1.7, obtaining yields of about 2 mg of refolded VSD from 1 L bacterial cell culture. This VSD is known to be involved in the binding of a number of gating-modifier toxins, including the tarantula toxins ProTx-II and GpTx-I. Binding studies using microsca...
Voltage-gated sodium (Na-V) channel gating is a complex phenomenon which involves a distinct contrib...
ProTx-II is a disulfide-rich peptide toxin from tarantula venom able to inhibit the human voltage-ga...
.Voltage-gated sodium (NaV) channels play crucial roles in a range of (patho)physiological processes...
The voltage-gated sodium channel NaV1.7 is an important target for drug development due to its role ...
The voltage-gated sodium channel Nav1.7 plays a crucial role in pain, and drugs that inhibit hNav1.7...
Voltage gated sodium channels (VGSCs) are essential to the propagation of nerve cell impulses and th...
Human voltage gated sodium (hNav) channels have been implicated in a multitude of debilitating cardi...
Identification of voltage-gated sodium channel NaV1.7 inhibitors for chronic pain therapeutic develo...
Gating modifier toxins (GMTs) from spider venom can inhibit voltage gated sodium channels (Na(V)s) i...
Voltage-gated sodium channels (NaVs) are activated by transiting the voltage sensor from the deactiv...
Disulfide-rich animal venom peptides targeting either the voltage-sensing domain or the pore domain ...
Exploring the interaction of ligands with voltage-gated sodium channels (NaVs) has advanced our unde...
Spider venoms are a rich source of ion channel modulators with therapeutic potential. Given the anal...
Voltage- activated sodium (Na-v) channels are crucial for the generation and propagation of nerve im...
Free to read at publisher's site. ProTx-II is a disulfide-rich peptide toxin from tarantula venom ab...
Voltage-gated sodium (Na-V) channel gating is a complex phenomenon which involves a distinct contrib...
ProTx-II is a disulfide-rich peptide toxin from tarantula venom able to inhibit the human voltage-ga...
.Voltage-gated sodium (NaV) channels play crucial roles in a range of (patho)physiological processes...
The voltage-gated sodium channel NaV1.7 is an important target for drug development due to its role ...
The voltage-gated sodium channel Nav1.7 plays a crucial role in pain, and drugs that inhibit hNav1.7...
Voltage gated sodium channels (VGSCs) are essential to the propagation of nerve cell impulses and th...
Human voltage gated sodium (hNav) channels have been implicated in a multitude of debilitating cardi...
Identification of voltage-gated sodium channel NaV1.7 inhibitors for chronic pain therapeutic develo...
Gating modifier toxins (GMTs) from spider venom can inhibit voltage gated sodium channels (Na(V)s) i...
Voltage-gated sodium channels (NaVs) are activated by transiting the voltage sensor from the deactiv...
Disulfide-rich animal venom peptides targeting either the voltage-sensing domain or the pore domain ...
Exploring the interaction of ligands with voltage-gated sodium channels (NaVs) has advanced our unde...
Spider venoms are a rich source of ion channel modulators with therapeutic potential. Given the anal...
Voltage- activated sodium (Na-v) channels are crucial for the generation and propagation of nerve im...
Free to read at publisher's site. ProTx-II is a disulfide-rich peptide toxin from tarantula venom ab...
Voltage-gated sodium (Na-V) channel gating is a complex phenomenon which involves a distinct contrib...
ProTx-II is a disulfide-rich peptide toxin from tarantula venom able to inhibit the human voltage-ga...
.Voltage-gated sodium (NaV) channels play crucial roles in a range of (patho)physiological processes...