Voltage-gated sodium channels (VGSCs) are responsible for the generation of the action potential. Among nine classified VGSC subtypes (Nav1.1–Nav1.9), Nav1.7 is primarily expressed in the sensory neurons, contributing to the nociception transmission. Therefore Nav1.7 becomes a promising target for analgesic drug development. In this study, we compared the influence of an array of VGSC agonists including veratridine, BmK NT1, brevetoxin-2, deltamethrin and antillatoxin (ATX) on membrane depolarization which was detected by Fluorescence Imaging Plate Reader (FLIPR) membrane potential (FMP) blue dye. In HEK-293 cells heterologously expressing hNav1.7 α-subunit, ATX produced a robust membrane depolarization with an EC50 value of 7.8 ± 2.9 nM wh...
International audienceVoltage-gated sodium channels (Nav) are molecular targets of clinically used d...
Voltage-gated sodium channels (NaVs) are key therapeutic targets for pain, epilepsy and cardiac arrh...
Summary: Selective block of NaV1.7 promises to produce non-narcotic analgesic activity without motor...
Voltage-gated sodium channels (VGSCs) are responsible for the generation of the action potential. Am...
Voltage-gated sodium channels (VGSCs) are responsible for the generation of the action potential. Am...
Human voltage gated sodium (hNav) channels have been implicated in a multitude of debilitating cardi...
Voltage-gated sodium channels (Nav) represent a therapeutically validated group of targets for the d...
Voltage-gated sodium channels (Nav) constitute the molecular targets of clinically used drugs for tr...
Chronic pain is a widespread disorder affecting millions of people and is insufficiently addressed b...
Voltage-gated sodium (NaV) channels are critical molecular determinants of action potential generati...
The voltage-gated sodium channel Nav1.7 plays a crucial role in pain, and drugs that inhibit hNav1.7...
Voltage-gated sodium (Nav) channels are therapeutic targets for several disorders affecting humans, ...
International audienceVoltage-gated Na+ (NaV) channels are significant therapeutic targets for the t...
Voltage-gated sodium channels (NaVs) are key therapeutic targets for pain, epilepsy and cardiac arrh...
Voltage-gated Na+ (NaV) channels are significant therapeutic targets for the treatment of cardiac an...
International audienceVoltage-gated sodium channels (Nav) are molecular targets of clinically used d...
Voltage-gated sodium channels (NaVs) are key therapeutic targets for pain, epilepsy and cardiac arrh...
Summary: Selective block of NaV1.7 promises to produce non-narcotic analgesic activity without motor...
Voltage-gated sodium channels (VGSCs) are responsible for the generation of the action potential. Am...
Voltage-gated sodium channels (VGSCs) are responsible for the generation of the action potential. Am...
Human voltage gated sodium (hNav) channels have been implicated in a multitude of debilitating cardi...
Voltage-gated sodium channels (Nav) represent a therapeutically validated group of targets for the d...
Voltage-gated sodium channels (Nav) constitute the molecular targets of clinically used drugs for tr...
Chronic pain is a widespread disorder affecting millions of people and is insufficiently addressed b...
Voltage-gated sodium (NaV) channels are critical molecular determinants of action potential generati...
The voltage-gated sodium channel Nav1.7 plays a crucial role in pain, and drugs that inhibit hNav1.7...
Voltage-gated sodium (Nav) channels are therapeutic targets for several disorders affecting humans, ...
International audienceVoltage-gated Na+ (NaV) channels are significant therapeutic targets for the t...
Voltage-gated sodium channels (NaVs) are key therapeutic targets for pain, epilepsy and cardiac arrh...
Voltage-gated Na+ (NaV) channels are significant therapeutic targets for the treatment of cardiac an...
International audienceVoltage-gated sodium channels (Nav) are molecular targets of clinically used d...
Voltage-gated sodium channels (NaVs) are key therapeutic targets for pain, epilepsy and cardiac arrh...
Summary: Selective block of NaV1.7 promises to produce non-narcotic analgesic activity without motor...