Voltage-gated sodium channels (Navs) are critical determinants of cellular excitability. These ion channels exist as large heteromultimeric structures and their activity is tightly controlled. In neurons, the isoform Nav1.6 is highly enriched at the axon initial segment and nodes, making it critical for the initiation and propagation of neuronal impulses. Changes in Nav1.6 expression and function profoundly impact the input-output properties of neurons in normal and pathological conditions. While mutations in Nav1.6 may cause channel dysfunction, aberrant changes may also be the result of complex modes of regulation, including various protein-protein interactions and post-translational modifications, which can alter membrane excitability an...
International audienceCell excitability and its modulation by hormones and neurotransmitters involve...
Abstract. Besides initiating and propagating action potentials in established neuronal circuits, vol...
Neocortical pyramidal neurons express several distinct subtypes of voltage-gated Na+ channels. In ma...
<div><p>Voltage-gated sodium channels are responsible for the initiation and propagation of action p...
Abstract The voltage-gated sodium channel (Nav) plays a key role in regulation of neuronal excitabil...
International audienceIn neurons, voltage-gated sodium (Nav) channels underlie the generation and pr...
Voltage-gated sodium (Nav) channels are intrinsic plasma membrane proteins that initiate the action ...
Voltage-gated sodium channels (Navs) are large four-domain transmembrane proteins responsible for th...
Trafficking regulates the subcellular distribution of voltage-gated sodium channels in primary senso...
The inhibition of voltage-gated sodium (Na-V) channels in somatosensory neurons presents a promising...
Nav1.6 is the primary voltage-gated sodium channel isoform expressed in mature axon initial segments...
Indiana University-Purdue University Indianapolis (IUPUI)The voltage-gated sodium channels (VGSCs) a...
Thesis (Master's)--University of Washington, 2020Voltage-gated sodium channels (Navs) are responsibl...
Migraine is a condition that has affected many for generations and yet remains poorly understood. Mu...
In neurones and other electrically excitable tissues, voltage-dependent sodium (Nav) channels play a...
International audienceCell excitability and its modulation by hormones and neurotransmitters involve...
Abstract. Besides initiating and propagating action potentials in established neuronal circuits, vol...
Neocortical pyramidal neurons express several distinct subtypes of voltage-gated Na+ channels. In ma...
<div><p>Voltage-gated sodium channels are responsible for the initiation and propagation of action p...
Abstract The voltage-gated sodium channel (Nav) plays a key role in regulation of neuronal excitabil...
International audienceIn neurons, voltage-gated sodium (Nav) channels underlie the generation and pr...
Voltage-gated sodium (Nav) channels are intrinsic plasma membrane proteins that initiate the action ...
Voltage-gated sodium channels (Navs) are large four-domain transmembrane proteins responsible for th...
Trafficking regulates the subcellular distribution of voltage-gated sodium channels in primary senso...
The inhibition of voltage-gated sodium (Na-V) channels in somatosensory neurons presents a promising...
Nav1.6 is the primary voltage-gated sodium channel isoform expressed in mature axon initial segments...
Indiana University-Purdue University Indianapolis (IUPUI)The voltage-gated sodium channels (VGSCs) a...
Thesis (Master's)--University of Washington, 2020Voltage-gated sodium channels (Navs) are responsibl...
Migraine is a condition that has affected many for generations and yet remains poorly understood. Mu...
In neurones and other electrically excitable tissues, voltage-dependent sodium (Nav) channels play a...
International audienceCell excitability and its modulation by hormones and neurotransmitters involve...
Abstract. Besides initiating and propagating action potentials in established neuronal circuits, vol...
Neocortical pyramidal neurons express several distinct subtypes of voltage-gated Na+ channels. In ma...