Identification of voltage-gated sodium channel NaV1.7 inhibitors for chronic pain therapeutic development is an area of vigorous pursuit. In an effort to identify more potent leads compared to our previously reported GpTx-1 peptide series, electrophysiology screening of fractionated tarantula venom discovered the NaV1.7 inhibitory peptide JzTx-V from the Chinese earth tiger tarantula Chilobrachys jingzhao. The parent peptide displayed nominal selectivity over the skeletal muscle NaV1.4 channel. Attribute-based positional scan analoging identified a key Ile28Glu mutation that improved NaV1.4 selectivity over 100-fold, and further optimization yielded the potent and selective peptide leads AM-8145 and AM-0422. NMR analyses revealed that the I...
Human genetic studies have implicated the voltage-gated sodium channel Na(V)1.7 as a therapeutic tar...
Drug discovery research on new pain targets with human genetic validation, including the voltage-gat...
Voltage-gated sodium (NaV) channels are essential for the transmission of pain signals in humans mak...
Inhibitors of the voltage-gated sodium channel NaV1.7 are being investigated as pain therapeutics du...
The voltage-gated sodium NaV1.7 channel plays a key role as a mediator of action potential propagati...
Spider venoms are a rich source of ion channel modulators with therapeutic potential. Given the anal...
Pain places a devastating burden on patients and society and current pain therapeutics exhibit limit...
Na<sub>V</sub>1.7 is a voltage-gated sodium ion channel implicated by human genetic evidence as a th...
Management of chronic pain presents a major challenge, since many currently available treatments lac...
Voltage-gated sodium (NaV) channels are responsible for propagating action potentials in excitable c...
Spider venoms are a rich source of ion channel modulators with therapeutic potential. Given the anal...
Venom-derived peptides have attracted much attention as potential lead molecules for pharmaceutical ...
.Voltage-gated sodium (NaV) channels play crucial roles in a range of (patho)physiological processes...
The voltage-gated sodium channel Nav1.7 plays a crucial role in pain, and drugs that inhibit hNav1.7...
Venom-derived peptides have attracted much attention as potential lead molecules for pharmaceutical ...
Human genetic studies have implicated the voltage-gated sodium channel Na(V)1.7 as a therapeutic tar...
Drug discovery research on new pain targets with human genetic validation, including the voltage-gat...
Voltage-gated sodium (NaV) channels are essential for the transmission of pain signals in humans mak...
Inhibitors of the voltage-gated sodium channel NaV1.7 are being investigated as pain therapeutics du...
The voltage-gated sodium NaV1.7 channel plays a key role as a mediator of action potential propagati...
Spider venoms are a rich source of ion channel modulators with therapeutic potential. Given the anal...
Pain places a devastating burden on patients and society and current pain therapeutics exhibit limit...
Na<sub>V</sub>1.7 is a voltage-gated sodium ion channel implicated by human genetic evidence as a th...
Management of chronic pain presents a major challenge, since many currently available treatments lac...
Voltage-gated sodium (NaV) channels are responsible for propagating action potentials in excitable c...
Spider venoms are a rich source of ion channel modulators with therapeutic potential. Given the anal...
Venom-derived peptides have attracted much attention as potential lead molecules for pharmaceutical ...
.Voltage-gated sodium (NaV) channels play crucial roles in a range of (patho)physiological processes...
The voltage-gated sodium channel Nav1.7 plays a crucial role in pain, and drugs that inhibit hNav1.7...
Venom-derived peptides have attracted much attention as potential lead molecules for pharmaceutical ...
Human genetic studies have implicated the voltage-gated sodium channel Na(V)1.7 as a therapeutic tar...
Drug discovery research on new pain targets with human genetic validation, including the voltage-gat...
Voltage-gated sodium (NaV) channels are essential for the transmission of pain signals in humans mak...