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1.
Nature ; 620(7976): 1117-1125, 2023 Aug.
Article de Anglais | MEDLINE | ID: mdl-37587339

RÉSUMÉ

PIEZOs are mechanosensitive ion channels that convert force into chemoelectric signals1,2 and have essential roles in diverse physiological settings3. In vitro studies have proposed that PIEZO channels transduce mechanical force through the deformation of extensive blades of transmembrane domains emanating from a central ion-conducting pore4-8. However, little is known about how these channels interact with their native environment and which molecular movements underlie activation. Here we directly observe the conformational dynamics of the blades of individual PIEZO1 molecules in a cell using nanoscopic fluorescence imaging. Compared with previous structural models of PIEZO1, we show that the blades are significantly expanded at rest by the bending stress exerted by the plasma membrane. The degree of expansion varies dramatically along the length of the blade, where decreased binding strength between subdomains can explain increased flexibility of the distal blade. Using chemical and mechanical modulators of PIEZO1, we show that blade expansion and channel activation are correlated. Our findings begin to uncover how PIEZO1 is activated in a native environment. More generally, as we reliably detect conformational shifts of single nanometres from populations of channels, we expect that this approach will serve as a framework for the structural analysis of membrane proteins through nanoscopic imaging.


Sujet(s)
Canaux ioniques , Membrane cellulaire/métabolisme , Fluorescence , Canaux ioniques/composition chimique , Canaux ioniques/métabolisme , Modèles moléculaires , Mouvement , Conformation des protéines , Analyse sur cellule unique
2.
Cell ; 184(8): 2121-2134.e13, 2021 04 15.
Article de Anglais | MEDLINE | ID: mdl-33735609

RÉSUMÉ

The α7 nicotinic acetylcholine receptor plays critical roles in the central nervous system and in the cholinergic inflammatory pathway. This ligand-gated ion channel assembles as a homopentamer, is exceptionally permeable to Ca2+, and desensitizes faster than any other Cys-loop receptor. The α7 receptor has served as a prototype for the Cys-loop superfamily yet has proven refractory to structural analysis. We present cryo-EM structures of the human α7 nicotinic receptor in a lipidic environment in resting, activated, and desensitized states, illuminating the principal steps in the gating cycle. The structures also reveal elements that contribute to its function, including a C-terminal latch that is permissive for channel opening, and an anionic ring in the extracellular vestibule that contributes to its high conductance and calcium permeability. Comparisons among the α7 structures provide a foundation for mapping the gating cycle and reveal divergence in gating mechanisms in the Cys-loop receptor superfamily.


Sujet(s)
Récepteur nicotinique de l'acétylcholine alpha7/métabolisme , Séquence d'acides aminés , Sites de fixation , Bungarotoxines/composition chimique , Bungarotoxines/métabolisme , Calcium/métabolisme , Membrane cellulaire/composition chimique , Cryomicroscopie électronique , Vésicules extracellulaires/métabolisme , Cellules HEK293 , Humains , Simulation de dynamique moléculaire , Mutagenèse dirigée , Techniques de patch-clamp , Domaines protéiques , Protéines recombinantes/biosynthèse , Protéines recombinantes/composition chimique , Protéines recombinantes/isolement et purification , Récepteur nicotinique de l'acétylcholine alpha7/composition chimique , Récepteur nicotinique de l'acétylcholine alpha7/génétique
3.
Nature ; 585(7824): 303-308, 2020 09.
Article de Anglais | MEDLINE | ID: mdl-32879488

RÉSUMÉ

Most general anaesthetics and classical benzodiazepine drugs act through positive modulation of γ-aminobutyric acid type A (GABAA) receptors to dampen neuronal activity in the brain1-5. However, direct structural information on the mechanisms of general anaesthetics at their physiological receptor sites is lacking. Here we present cryo-electron microscopy structures of GABAA receptors bound to intravenous anaesthetics, benzodiazepines and inhibitory modulators. These structures were solved in a lipidic environment and are complemented by electrophysiology and molecular dynamics simulations. Structures of GABAA receptors in complex with the anaesthetics phenobarbital, etomidate and propofol reveal both distinct and common transmembrane binding sites, which are shared in part by the benzodiazepine drug diazepam. Structures in which GABAA receptors are bound by benzodiazepine-site ligands identify an additional membrane binding site for diazepam and suggest an allosteric mechanism for anaesthetic reversal by flumazenil. This study provides a foundation for understanding how pharmacologically diverse and clinically essential drugs act through overlapping and distinct mechanisms to potentiate inhibitory signalling in the brain.


Sujet(s)
Anesthésiques généraux/composition chimique , Anesthésiques généraux/pharmacologie , Barbituriques/composition chimique , Barbituriques/pharmacologie , Benzodiazépines/composition chimique , Benzodiazépines/pharmacologie , Cryomicroscopie électronique , Récepteurs GABA-A/composition chimique , Régulation allostérique/effets des médicaments et des substances chimiques , Anesthésiques généraux/métabolisme , Barbituriques/métabolisme , Benzodiazépines/métabolisme , Bicuculline/composition chimique , Bicuculline/métabolisme , Bicuculline/pharmacologie , Sites de fixation , Fixation compétitive/effets des médicaments et des substances chimiques , Diazépam/composition chimique , Diazépam/métabolisme , Diazépam/pharmacologie , Électrophysiologie , Étomidate/composition chimique , Étomidate/métabolisme , Étomidate/pharmacologie , Flumazénil/pharmacologie , Antagonistes du récepteur GABA-A/composition chimique , Antagonistes du récepteur GABA-A/métabolisme , Antagonistes du récepteur GABA-A/pharmacologie , Humains , Ligands , Modèles moléculaires , Conformation moléculaire , Simulation de dynamique moléculaire , Phénobarbital/composition chimique , Phénobarbital/métabolisme , Phénobarbital/pharmacologie , Picrotoxine/composition chimique , Picrotoxine/métabolisme , Picrotoxine/pharmacologie , Propofol/composition chimique , Propofol/métabolisme , Propofol/pharmacologie , Récepteurs GABA-A/métabolisme , Récepteurs GABA-A/ultrastructure , Acide gamma-amino-butyrique/composition chimique , Acide gamma-amino-butyrique/métabolisme , Acide gamma-amino-butyrique/pharmacologie
4.
Neuropharmacology ; 171: 108086, 2020 07.
Article de Anglais | MEDLINE | ID: mdl-32272141

RÉSUMÉ

Here we begin by briefly reviewing landmark structural studies on the nicotinic acetylcholine receptor. We highlight challenges that had to be overcome to push through resolution barriers, then focus on what has been gleaned in the past few years from crystallographic and single particle cryo-EM studies of different nicotinic receptor subunit assemblies and ligand complexes. We discuss insights into ligand recognition, ion permeation, and allosteric gating. We then highlight some foundational aspects of nicotinic receptor structural biology that remain unresolved and are areas ripe for future exploration. This article is part of the special issue on 'Contemporary Advances in Nicotine Neuropharmacology'.


Sujet(s)
Récepteurs nicotiniques/composition chimique , Récepteurs nicotiniques/effets des médicaments et des substances chimiques , Animaux , Cryomicroscopie électronique , Cristallographie , Humains
5.
Elife ; 92020 01 28.
Article de Anglais | MEDLINE | ID: mdl-31990273

RÉSUMÉ

Pentameric ligand-gated ion channels (pLGICs) or Cys-loop receptors are involved in fast synaptic signaling in the nervous system. Allosteric modulators bind to sites that are remote from the neurotransmitter binding site, but modify coupling of ligand binding to channel opening. In this study, we developed nanobodies (single domain antibodies), which are functionally active as allosteric modulators, and solved co-crystal structures of the prokaryote (Erwinia) channel ELIC bound either to a positive or a negative allosteric modulator. The allosteric nanobody binding sites partially overlap with those of small molecule modulators, including a vestibule binding site that is not accessible in some pLGICs. Using mutagenesis, we extrapolate the functional importance of the vestibule binding site to the human 5-HT3 receptor, suggesting a common mechanism of modulation in this protein and ELIC. Thus we identify key elements of allosteric binding sites, and extend drug design possibilities in pLGICs with an accessible vestibule site.


Sujet(s)
Protéines bactériennes , Erwinia/génétique , Canaux ioniques régulés par des ligands , Récepteurs sérotoninergiques 5-HT3 , Protéines bactériennes/composition chimique , Protéines bactériennes/génétique , Protéines bactériennes/métabolisme , Sites de fixation/génétique , Canaux ioniques régulés par des ligands/composition chimique , Canaux ioniques régulés par des ligands/génétique , Canaux ioniques régulés par des ligands/métabolisme , Modèles moléculaires , Mutagenèse dirigée , Conformation des protéines , Récepteurs sérotoninergiques 5-HT3/composition chimique , Récepteurs sérotoninergiques 5-HT3/génétique , Récepteurs sérotoninergiques 5-HT3/métabolisme , Anticorps à domaine unique/composition chimique , Anticorps à domaine unique/métabolisme
6.
Am J Hum Genet ; 105(6): 1286-1293, 2019 12 05.
Article de Anglais | MEDLINE | ID: mdl-31708116

RÉSUMÉ

Congenital anomalies of the kidney and urinary tract (CAKUT) are the most common cause of chronic kidney disease in the first three decades of life, and in utero obstruction to urine flow is a frequent cause of secondary upper urinary tract malformations. Here, using whole-exome sequencing, we identified three different biallelic mutations in CHRNA3, which encodes the α3 subunit of the nicotinic acetylcholine receptor, in five affected individuals from three unrelated families with functional lower urinary tract obstruction and secondary CAKUT. Four individuals from two families have additional dysautonomic features, including impaired pupillary light reflexes. Functional studies in vitro demonstrated that the mutant nicotinic acetylcholine receptors were unable to generate current following stimulation with acetylcholine. Moreover, the truncating mutations p.Thr337Asnfs∗81 and p.Ser340∗ led to impaired plasma membrane localization of CHRNA3. Although the importance of acetylcholine signaling in normal bladder function has been recognized, we demonstrate for the first time that mutations in CHRNA3 can cause bladder dysfunction, urinary tract malformations, and dysautonomia. These data point to a pathophysiologic sequence by which monogenic mutations in genes that regulate bladder innervation may secondarily cause CAKUT.


Sujet(s)
Maladies du système nerveux autonome/étiologie , Rein/malformations , Mutation , Récepteurs nicotiniques/génétique , Voies urinaires/malformations , Malformations urogénitales/étiologie , Adulte , Maladies du système nerveux autonome/génétique , Maladies du système nerveux autonome/anatomopathologie , Femelle , Études de suivi , Humains , Rein/anatomopathologie , Mâle , Pedigree , Pronostic , Voies urinaires/anatomopathologie , Malformations urogénitales/génétique , Malformations urogénitales/anatomopathologie , Jeune adulte
7.
Neuron ; 104(3): 501-511.e6, 2019 11 06.
Article de Anglais | MEDLINE | ID: mdl-31488329

RÉSUMÉ

Nicotinic acetylcholine receptors are pentameric ion channels that mediate fast chemical neurotransmission. The α3ß4 nicotinic receptor subtype forms the principal relay between the central and peripheral nervous systems in the autonomic ganglia. This receptor is also expressed focally in brain areas that affect reward circuits and addiction. Here, we present structures of the α3ß4 nicotinic receptor in lipidic and detergent environments, using functional reconstitution to define lipids appropriate for structural analysis. The structures of the receptor in complex with nicotine, as well as the α3ß4-selective ligand AT-1001, complemented by molecular dynamics, suggest principles of agonist selectivity. The structures further reveal much of the architecture of the intracellular domain, where mutagenesis experiments and simulations define residues governing ion conductance.


Sujet(s)
Nicotine/métabolisme , Agonistes nicotiniques/métabolisme , Récepteurs nicotiniques/métabolisme , Récepteurs nicotiniques/ultrastructure , Sodium/métabolisme , Cryomicroscopie électronique , Ganglions du système nerveux autonome , Cellules HEK293 , Humains , Simulation de dynamique moléculaire , Oligopeptides/métabolisme , Techniques de patch-clamp , Structure tertiaire des protéines
8.
Nature ; 557(7704): 261-265, 2018 05.
Article de Anglais | MEDLINE | ID: mdl-29720657

RÉSUMÉ

Fast chemical communication in the nervous system is mediated by neurotransmitter-gated ion channels. The prototypical member of this class of cell surface receptors is the cation-selective nicotinic acetylcholine receptor. As with most ligand-gated ion channels, nicotinic receptors assemble as oligomers of subunits, usually as hetero-oligomers and often with variable stoichiometries 1 . This intrinsic heterogeneity in protein composition provides fine tunability in channel properties, which is essential to brain function, but frustrates structural and biophysical characterization. The α4ß2 subtype of the nicotinic acetylcholine receptor is the most abundant isoform in the human brain and is the principal target in nicotine addiction. This pentameric ligand-gated ion channel assembles in two stoichiometries of α- and ß-subunits (2α:3ß and 3α:2ß). Both assemblies are functional and have distinct biophysical properties, and an imbalance in the ratio of assemblies is linked to both nicotine addiction2,3 and congenital epilepsy4,5. Here we leverage cryo-electron microscopy to obtain structures of both receptor assemblies from a single sample. Antibody fragments specific to ß2 were used to 'break' symmetry during particle alignment and to obtain high-resolution reconstructions of receptors of both stoichiometries in complex with nicotine. The results reveal principles of subunit assembly and the structural basis of the distinctive biophysical and pharmacological properties of the two different stoichiometries of this receptor.


Sujet(s)
Cryomicroscopie électronique , Sous-unités de protéines/composition chimique , Sous-unités de protéines/métabolisme , Récepteurs nicotiniques/métabolisme , Récepteurs nicotiniques/ultrastructure , Animaux , Sites de fixation , Conductivité électrique , Femelle , Humains , Fragments Fab d'immunoglobuline/immunologie , Fragments Fab d'immunoglobuline/pharmacologie , Ouverture et fermeture des portes des canaux ioniques , Souris , Souris de lignée BALB C , Modèles moléculaires , Nicotine/composition chimique , Nicotine/métabolisme , Nicotine/pharmacologie , Isoformes de protéines/composition chimique , Isoformes de protéines/immunologie , Isoformes de protéines/métabolisme , Isoformes de protéines/ultrastructure , Structure quaternaire des protéines/effets des médicaments et des substances chimiques , Sous-unités de protéines/agonistes , Sous-unités de protéines/immunologie , Récepteurs nicotiniques/composition chimique , Récepteurs nicotiniques/immunologie
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