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1.
Cell ; 178(4): 993-1003.e12, 2019 08 08.
Artículo en Inglés | MEDLINE | ID: mdl-31353218

RESUMEN

Voltage-gated sodium (NaV) channels initiate action potentials in nerve, muscle, and other electrically excitable cells. The structural basis of voltage gating is uncertain because the resting state exists only at deeply negative membrane potentials. To stabilize the resting conformation, we inserted voltage-shifting mutations and introduced a disulfide crosslink in the VS of the ancestral bacterial sodium channel NaVAb. Here, we present a cryo-EM structure of the resting state and a complete voltage-dependent gating mechanism. The S4 segment of the VS is drawn intracellularly, with three gating charges passing through the transmembrane electric field. This movement forms an elbow connecting S4 to the S4-S5 linker, tightens the collar around the S6 activation gate, and prevents its opening. Our structure supports the classical "sliding helix" mechanism of voltage sensing and provides a complete gating mechanism for voltage sensor function, pore opening, and activation-gate closure based on high-resolution structures of a single sodium channel protein.


Asunto(s)
Potenciales de Acción/fisiología , Membrana Externa Bacteriana/metabolismo , Escherichia coli/metabolismo , Activación del Canal Iónico/fisiología , Canales de Sodio Activados por Voltaje/metabolismo , Animales , Línea Celular , Microscopía por Crioelectrón , Cristalografía por Rayos X , Mutación , Conformación Proteica en Hélice alfa , Sodio/metabolismo , Spodoptera/citología , Canales de Sodio Activados por Voltaje/química
2.
Mol Cell ; 81(1): 38-48.e4, 2021 01 07.
Artículo en Inglés | MEDLINE | ID: mdl-33232657

RESUMEN

Voltage-gated sodium channels initiate electrical signals and are frequently targeted by deadly gating-modifier neurotoxins, including tarantula toxins, which trap the voltage sensor in its resting state. The structural basis for tarantula-toxin action remains elusive because of the difficulty of capturing the functionally relevant form of the toxin-channel complex. Here, we engineered the model sodium channel NaVAb with voltage-shifting mutations and the toxin-binding site of human NaV1.7, an attractive pain target. This mutant chimera enabled us to determine the cryoelectron microscopy (cryo-EM) structure of the channel functionally arrested by tarantula toxin. Our structure reveals a high-affinity resting-state-specific toxin-channel interaction between a key lysine residue that serves as a "stinger" and penetrates a triad of carboxyl groups in the S3-S4 linker of the voltage sensor. By unveiling this high-affinity binding mode, our studies establish a high-resolution channel-docking and resting-state locking mechanism for huwentoxin-IV and provide guidance for developing future resting-state-targeted analgesic drugs.


Asunto(s)
Canal de Sodio Activado por Voltaje NAV1.7/química , Venenos de Araña/química , Sustitución de Aminoácidos , Animales , Humanos , Mutación Missense , Canal de Sodio Activado por Voltaje NAV1.7/genética , Canal de Sodio Activado por Voltaje NAV1.7/metabolismo , Células Sf9 , Spodoptera
3.
J Comp Neurol ; 522(13): 3052-74, 2014 Sep 01.
Artículo en Inglés | MEDLINE | ID: mdl-24639247

RESUMEN

The medial prefrontal cortex (mPFC) of both rats and rabbits has been shown to support trace eyeblink conditioning, presumably by providing an input to the cerebellum via the pons that bridges the temporal gap between conditioning stimuli. The pons of rats and rabbits, however, shows divergence in gross anatomical organization, leaving open the question of whether the topography of prefrontal inputs to the pons is similar in rats and rabbits. To investigate this question, we injected anterograde tracer into the mPFC of rats and rabbits to visualize and map in 3D the distribution of labeled terminals in the pons. Effective mPFC injections showed labeled axons in the ipsilateral descending pyramidal tract in both species. In rats, discrete clusters of densely labeled terminals were observed primarily in the rostromedial pons. Clusters of labeled terminals were also observed contralateral to mPFC injection sites in rats, appearing as a less dense "mirror-image" of ipsilateral labeling. In rabbits, mPFC labeled corticopontine terminals were absent in the rostral pons, and instead were restricted to the intermediate pons. The densest terminal fields were typically observed in association with the ipsilateral pyramidal tract as it descended ventromedially through the rabbit pons. No contralateral terminal labeling was observed for any injections made in the rabbit mPFC. The results suggest the possibility that mPFC inputs to the pons may be integrated with different sources of cortical inputs between rats and rabbits. The resulting implications for mPFC or pons manipulations for studies of trace eyeblink in each species are discussed.


Asunto(s)
Vías Eferentes/fisiología , Puente/anatomía & histología , Corteza Prefrontal/anatomía & histología , Animales , Dextranos/metabolismo , Colorantes Fluorescentes/metabolismo , Lateralidad Funcional , Imagenología Tridimensional , Masculino , Microscopía Fluorescente , Conejos , Ratas , Ratas Sprague-Dawley , Especificidad de la Especie
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