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1.
Cell ; 187(5): 1160-1176.e21, 2024 Feb 29.
Article in English | MEDLINE | ID: mdl-38382524

ABSTRACT

The α7 nicotinic acetylcholine receptor is a pentameric ligand-gated ion channel that plays an important role in cholinergic signaling throughout the nervous system. Its unique physiological characteristics and implications in neurological disorders and inflammation make it a promising but challenging therapeutic target. Positive allosteric modulators overcome limitations of traditional α7 agonists, but their potentiation mechanisms remain unclear. Here, we present high-resolution structures of α7-modulator complexes, revealing partially overlapping binding sites but varying conformational states. Structure-guided functional and computational tests suggest that differences in modulator activity arise from the stable rotation of a channel gating residue out of the pore. We extend the study using a time-resolved cryoelectron microscopy (cryo-EM) approach to reveal asymmetric state transitions for this homomeric channel and also find that a modulator with allosteric agonist activity exploits a distinct channel-gating mechanism. These results define mechanisms of α7 allosteric modulation and activation with implications across the pentameric receptor superfamily.


Subject(s)
alpha7 Nicotinic Acetylcholine Receptor , Humans , alpha7 Nicotinic Acetylcholine Receptor/chemistry , alpha7 Nicotinic Acetylcholine Receptor/metabolism , alpha7 Nicotinic Acetylcholine Receptor/ultrastructure , Binding Sites , Cryoelectron Microscopy , Inflammation/drug therapy , Signal Transduction , Allosteric Regulation
2.
Cell ; 186(3): 543-559.e19, 2023 02 02.
Article in English | MEDLINE | ID: mdl-36669484

ABSTRACT

Learning has been associated with modifications of synaptic and circuit properties, but the precise changes storing information in mammals have remained largely unclear. We combined genetically targeted voltage imaging with targeted optogenetic activation and silencing of pre- and post-synaptic neurons to study the mechanisms underlying hippocampal behavioral timescale plasticity. In mice navigating a virtual-reality environment, targeted optogenetic activation of individual CA1 cells at specific places induced stable representations of these places in the targeted cells. Optical elicitation, recording, and modulation of synaptic transmission in behaving mice revealed that activity in presynaptic CA2/3 cells was required for the induction of plasticity in CA1 and, furthermore, that during induction of these place fields in single CA1 cells, synaptic input from CA2/3 onto these same cells was potentiated. These results reveal synaptic implementation of hippocampal behavioral timescale plasticity and define a methodology to resolve synaptic plasticity during learning and memory in behaving mammals.


Subject(s)
CA1 Region, Hippocampal , Hippocampus , Mice , Animals , CA1 Region, Hippocampal/physiology , Hippocampus/physiology , Neuronal Plasticity/physiology , Learning/physiology , Neurons , Synaptic Transmission/physiology , Mammals
3.
Cell ; 186(9): 2002-2017.e21, 2023 04 27.
Article in English | MEDLINE | ID: mdl-37080201

ABSTRACT

Paired mapping of single-cell gene expression and electrophysiology is essential to understand gene-to-function relationships in electrogenic tissues. Here, we developed in situ electro-sequencing (electro-seq) that combines flexible bioelectronics with in situ RNA sequencing to stably map millisecond-timescale electrical activity and profile single-cell gene expression from the same cells across intact biological networks, including cardiac and neural patches. When applied to human-induced pluripotent stem-cell-derived cardiomyocyte patches, in situ electro-seq enabled multimodal in situ analysis of cardiomyocyte electrophysiology and gene expression at the cellular level, jointly defining cell states and developmental trajectories. Using machine-learning-based cross-modal analysis, in situ electro-seq identified gene-to-electrophysiology relationships throughout cardiomyocyte development and accurately reconstructed the evolution of gene expression profiles based on long-term stable electrical measurements. In situ electro-seq could be applicable to create spatiotemporal multimodal maps in electrogenic tissues, potentiating the discovery of cell types and gene programs responsible for electrophysiological function and dysfunction.


Subject(s)
Electronics , Sequence Analysis, RNA , Humans , Cell Differentiation , Induced Pluripotent Stem Cells/physiology , Myocytes, Cardiac/metabolism , Single-Cell Analysis , Transcriptome , Electronics/methods
4.
Cell ; 186(20): 4325-4344.e26, 2023 09 28.
Article in English | MEDLINE | ID: mdl-37652010

ABSTRACT

KCR channelrhodopsins (K+-selective light-gated ion channels) have received attention as potential inhibitory optogenetic tools but more broadly pose a fundamental mystery regarding how their K+ selectivity is achieved. Here, we present 2.5-2.7 Å cryo-electron microscopy structures of HcKCR1 and HcKCR2 and of a structure-guided mutant with enhanced K+ selectivity. Structural, electrophysiological, computational, spectroscopic, and biochemical analyses reveal a distinctive mechanism for K+ selectivity; rather than forming the symmetrical filter of canonical K+ channels achieving both selectivity and dehydration, instead, three extracellular-vestibule residues within each monomer form a flexible asymmetric selectivity gate, while a distinct dehydration pathway extends intracellularly. Structural comparisons reveal a retinal-binding pocket that induces retinal rotation (accounting for HcKCR1/HcKCR2 spectral differences), and design of corresponding KCR variants with increased K+ selectivity (KALI-1/KALI-2) provides key advantages for optogenetic inhibition in vitro and in vivo. Thus, discovery of a mechanism for ion-channel K+ selectivity also provides a framework for next-generation optogenetics.


Subject(s)
Channelrhodopsins , Rhinosporidium , Humans , Channelrhodopsins/chemistry , Channelrhodopsins/genetics , Channelrhodopsins/metabolism , Channelrhodopsins/ultrastructure , Cryoelectron Microscopy , Ion Channels , Potassium/metabolism , Rhinosporidium/chemistry
5.
Cell ; 184(4): 912-930.e20, 2021 02 18.
Article in English | MEDLINE | ID: mdl-33571430

ABSTRACT

Electrical stimulation is a promising tool for modulating brain networks. However, it is unclear how stimulation interacts with neural patterns underlying behavior. Specifically, how might external stimulation that is not sensitive to the state of ongoing neural dynamics reliably augment neural processing and improve function? Here, we tested how low-frequency epidural alternating current stimulation (ACS) in non-human primates recovering from stroke interacted with task-related activity in perilesional cortex and affected grasping. We found that ACS increased co-firing within task-related ensembles and improved dexterity. Using a neural network model, we found that simulated ACS drove ensemble co-firing and enhanced propagation of neural activity through parts of the network with impaired connectivity, suggesting a mechanism to link increased co-firing to enhanced dexterity. Together, our results demonstrate that ACS restores neural processing in impaired networks and improves dexterity following stroke. More broadly, these results demonstrate approaches to optimize stimulation to target neural dynamics.


Subject(s)
Action Potentials/physiology , Stroke/physiopathology , Animals , Behavior, Animal/physiology , Biomechanical Phenomena/physiology , Electric Stimulation , Haplorhini , Motor Cortex/physiopathology , Neural Networks, Computer , Neurons/physiology , Task Performance and Analysis , Time Factors
6.
Cell ; 180(3): 521-535.e18, 2020 02 06.
Article in English | MEDLINE | ID: mdl-31978320

ABSTRACT

Cortical layer 1 (L1) interneurons have been proposed as a hub for attentional modulation of underlying cortex, but the transformations that this circuit implements are not known. We combined genetically targeted voltage imaging with optogenetic activation and silencing to study the mechanisms underlying sensory processing in mouse barrel cortex L1. Whisker stimuli evoked precisely timed single spikes in L1 interneurons, followed by strong lateral inhibition. A mild aversive stimulus activated cholinergic inputs and evoked a bimodal distribution of spiking responses in L1. A simple conductance-based model that only contained lateral inhibition within L1 recapitulated the sensory responses and the winner-takes-all cholinergic responses, and the model correctly predicted that the network would function as a spatial and temporal high-pass filter for excitatory inputs. Our results demonstrate that all-optical electrophysiology can reveal basic principles of neural circuit function in vivo and suggest an intuitive picture for how L1 transforms sensory and modulatory inputs. VIDEO ABSTRACT.


Subject(s)
Electrophysiology/methods , Evoked Potentials, Somatosensory/physiology , Interneurons/physiology , Neural Inhibition/physiology , Optical Imaging/methods , Somatosensory Cortex/cytology , Action Potentials/physiology , Animals , Cholinergic Neurons/physiology , Female , HEK293 Cells , Humans , Male , Mice , Mice, Inbred C57BL , Mice, Transgenic , Patch-Clamp Techniques/methods , Synaptic Potentials/physiology , Vibrissae/physiology
7.
Cell ; 182(1): 112-126.e18, 2020 07 09.
Article in English | MEDLINE | ID: mdl-32504542

ABSTRACT

Every decision we make is accompanied by a sense of confidence about its likely outcome. This sense informs subsequent behavior, such as investing more-whether time, effort, or money-when reward is more certain. A neural representation of confidence should originate from a statistical computation and predict confidence-guided behavior. An additional requirement for confidence representations to support metacognition is abstraction: they should emerge irrespective of the source of information and inform multiple confidence-guided behaviors. It is unknown whether neural confidence signals meet these criteria. Here, we show that single orbitofrontal cortex neurons in rats encode statistical decision confidence irrespective of the sensory modality, olfactory or auditory, used to make a choice. The activity of these neurons also predicts two confidence-guided behaviors: trial-by-trial time investment and cross-trial choice strategy updating. Orbitofrontal cortex thus represents decision confidence consistent with a metacognitive process that is useful for mediating confidence-guided economic decisions.


Subject(s)
Behavior/physiology , Prefrontal Cortex/physiology , Animals , Choice Behavior/physiology , Decision Making , Models, Biological , Neurons/physiology , Rats, Long-Evans , Sensation/physiology , Task Performance and Analysis , Time Factors
8.
Cell ; 176(4): 913-927.e18, 2019 02 07.
Article in English | MEDLINE | ID: mdl-30686581

ABSTRACT

Tissue engineering using cardiomyocytes derived from human pluripotent stem cells holds a promise to revolutionize drug discovery, but only if limitations related to cardiac chamber specification and platform versatility can be overcome. We describe here a scalable tissue-cultivation platform that is cell source agnostic and enables drug testing under electrical pacing. The plastic platform enabled on-line noninvasive recording of passive tension, active force, contractile dynamics, and Ca2+ transients, as well as endpoint assessments of action potentials and conduction velocity. By combining directed cell differentiation with electrical field conditioning, we engineered electrophysiologically distinct atrial and ventricular tissues with chamber-specific drug responses and gene expression. We report, for the first time, engineering of heteropolar cardiac tissues containing distinct atrial and ventricular ends, and we demonstrate their spatially confined responses to serotonin and ranolazine. Uniquely, electrical conditioning for up to 8 months enabled modeling of polygenic left ventricular hypertrophy starting from patient cells.


Subject(s)
Myocytes, Cardiac/cytology , Tissue Culture Techniques/instrumentation , Tissue Engineering/methods , Action Potentials , Cell Differentiation , Cells, Cultured , Electrophysiological Phenomena , Humans , Induced Pluripotent Stem Cells/cytology , Models, Biological , Myocardium/cytology , Myocytes, Cardiac/metabolism , Pluripotent Stem Cells/cytology , Tissue Culture Techniques/methods
9.
Cell ; 178(2): 413-428.e22, 2019 07 11.
Article in English | MEDLINE | ID: mdl-31230710

ABSTRACT

Social interactions occur between multiple individuals, but what is the detailed relationship between the neural dynamics across their brains? To address this question across timescales and levels of neural activity, we used wireless electrophysiology to simultaneously record from pairs of bats engaged in a wide range of natural social interactions. We found that neural activity was remarkably correlated between their brains over timescales from seconds to hours. The correlation depended on a shared social environment and was most prominent in high frequency local field potentials (>30 Hz), followed by local spiking activity. Furthermore, the degree of neural correlation covaried with the extent of social interactions, and an increase in correlation preceded their initiation. These results show that inter-brain correlation is an inherent feature of natural social interactions, reveal the domain of neural activity where it is most prominent, and provide a foundation for studying its functional role in social behaviors.


Subject(s)
Brain/physiology , Chiroptera/physiology , Neurons/physiology , Action Potentials , Animals , Female , Male , Social Behavior , Wireless Technology
10.
Cell ; 179(7): 1590-1608.e23, 2019 12 12.
Article in English | MEDLINE | ID: mdl-31835034

ABSTRACT

Optical interrogation of voltage in deep brain locations with cellular resolution would be immensely useful for understanding how neuronal circuits process information. Here, we report ASAP3, a genetically encoded voltage indicator with 51% fluorescence modulation by physiological voltages, submillisecond activation kinetics, and full responsivity under two-photon excitation. We also introduce an ultrafast local volume excitation (ULoVE) method for kilohertz-rate two-photon sampling in vivo with increased stability and sensitivity. Combining a soma-targeted ASAP3 variant and ULoVE, we show single-trial tracking of spikes and subthreshold events for minutes in deep locations, with subcellular resolution and with repeated sampling over days. In the visual cortex, we use soma-targeted ASAP3 to illustrate cell-type-dependent subthreshold modulation by locomotion. Thus, ASAP3 and ULoVE enable high-speed optical recording of electrical activity in genetically defined neurons at deep locations during awake behavior.


Subject(s)
Brain/physiology , GTPase-Activating Proteins/genetics , Microscopy, Fluorescence, Multiphoton/methods , Optogenetics/methods , Theta Rhythm , Wakefulness , Action Potentials , Animals , Brain/metabolism , CHO Cells , Cells, Cultured , Cricetinae , Cricetulus , Female , GTPase-Activating Proteins/metabolism , Green Fluorescent Proteins/genetics , Green Fluorescent Proteins/metabolism , HEK293 Cells , Humans , Male , Mice , Mice, Inbred C57BL , Phosphoric Monoester Hydrolases/genetics , Phosphoric Monoester Hydrolases/metabolism , Rats , Rats, Sprague-Dawley , Running
11.
Cell ; 178(4): 993-1003.e12, 2019 08 08.
Article in English | MEDLINE | ID: mdl-31353218

ABSTRACT

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.


Subject(s)
Action Potentials/physiology , Bacterial Outer Membrane/metabolism , Escherichia coli/metabolism , Ion Channel Gating/physiology , Voltage-Gated Sodium Channels/metabolism , Animals , Cell Line , Cryoelectron Microscopy , Crystallography, X-Ray , Mutation , Protein Conformation, alpha-Helical , Sodium/metabolism , Spodoptera/cytology , Voltage-Gated Sodium Channels/chemistry
12.
Cell ; 174(1): 32-43.e15, 2018 06 28.
Article in English | MEDLINE | ID: mdl-29958111

ABSTRACT

The organization of action into sequences underlies complex behaviors that are essential for organismal survival and reproduction. Despite extensive studies of innate sequences in relation to central pattern generators, how learned action sequences are controlled and whether they are organized as a chain or a hierarchy remain largely unknown. By training mice to perform heterogeneous action sequences, we demonstrate that striatal direct and indirect pathways preferentially encode different behavioral levels of sequence structure. State-dependent closed-loop optogenetic stimulation of the striatal direct pathway can selectively insert a single action element into the sequence without disrupting the overall sequence length. Optogenetic manipulation of the striatal indirect pathway completely removes the ongoing subsequence while leaving the following subsequence to be executed with the appropriate timing and length. These results suggest that learned action sequences are not organized in a serial but rather a hierarchical structure that is distinctly controlled by basal ganglia pathways.


Subject(s)
Learning , Neurons/metabolism , Optogenetics , Animals , Behavior, Animal/drug effects , Behavior, Animal/radiation effects , Diphtheria Toxin/pharmacology , Electrodes, Implanted , Evoked Potentials, Visual , Female , Lasers , Male , Mice , Mice, Inbred C57BL , Mice, Knockout , Muscimol/pharmacology , Nerve Tissue Proteins/deficiency , Nerve Tissue Proteins/genetics , Nerve Tissue Proteins/metabolism , Neurons/drug effects , RGS Proteins/genetics , Receptors, N-Methyl-D-Aspartate/deficiency , Receptors, N-Methyl-D-Aspartate/genetics , Receptors, N-Methyl-D-Aspartate/metabolism
13.
Cell ; 173(6): 1329-1342.e18, 2018 05 31.
Article in English | MEDLINE | ID: mdl-29731170

ABSTRACT

Observational learning is a powerful survival tool allowing individuals to learn about threat-predictive stimuli without directly experiencing the pairing of the predictive cue and punishment. This ability has been linked to the anterior cingulate cortex (ACC) and the basolateral amygdala (BLA). To investigate how information is encoded and transmitted through this circuit, we performed electrophysiological recordings in mice observing a demonstrator mouse undergo associative fear conditioning and found that BLA-projecting ACC (ACC→BLA) neurons preferentially encode socially derived aversive cue information. Inhibition of ACC→BLA alters real-time amygdala representation of the aversive cue during observational conditioning. Selective inhibition of the ACC→BLA projection impaired acquisition, but not expression, of observational fear conditioning. We show that information derived from observation about the aversive value of the cue is transmitted from the ACC to the BLA and that this routing of information is critically instructive for observational fear conditioning. VIDEO ABSTRACT.


Subject(s)
Basolateral Nuclear Complex/physiology , Cerebral Cortex/physiology , Learning/physiology , Amygdala/physiology , Animals , Behavior, Animal , Conditioning, Classical , Electrophysiological Phenomena , Fear , Light , Male , Memory/physiology , Mice , Neural Pathways/physiology , Neurons/physiology , Optogenetics , Prefrontal Cortex/physiology
14.
Cell ; 169(6): 1013-1028.e14, 2017 Jun 01.
Article in English | MEDLINE | ID: mdl-28575666

ABSTRACT

Primates recognize complex objects such as faces with remarkable speed and reliability. Here, we reveal the brain's code for facial identity. Experiments in macaques demonstrate an extraordinarily simple transformation between faces and responses of cells in face patches. By formatting faces as points in a high-dimensional linear space, we discovered that each face cell's firing rate is proportional to the projection of an incoming face stimulus onto a single axis in this space, allowing a face cell ensemble to encode the location of any face in the space. Using this code, we could precisely decode faces from neural population responses and predict neural firing rates to faces. Furthermore, this code disavows the long-standing assumption that face cells encode specific facial identities, confirmed by engineering faces with drastically different appearance that elicited identical responses in single face cells. Our work suggests that other objects could be encoded by analogous metric coordinate systems. PAPERCLIP.


Subject(s)
Facial Recognition , Models, Neurological , Temporal Lobe/physiology , Animals , Humans , Macaca , Magnetic Resonance Imaging , Male , Neurons/cytology , Temporal Lobe/cytology
15.
Cell ; 168(1-2): 280-294.e12, 2017 Jan 12.
Article in English | MEDLINE | ID: mdl-28065412

ABSTRACT

Vision influences behavior, but ongoing behavior also modulates vision in animals ranging from insects to primates. The function and biophysical mechanisms of most such modulations remain unresolved. Here, we combine behavioral genetics, electrophysiology, and high-speed videography to advance a function for behavioral modulations of visual processing in Drosophila. We argue that a set of motion-sensitive visual neurons regulate gaze-stabilizing head movements. We describe how, during flight turns, Drosophila perform a set of head movements that require silencing their gaze-stability reflexes along the primary rotation axis of the turn. Consistent with this behavioral requirement, we find pervasive motor-related inputs to the visual neurons, which quantitatively silence their predicted visual responses to rotations around the relevant axis while preserving sensitivity around other axes. This work proposes a function for a behavioral modulation of visual processing and illustrates how the brain can remove one sensory signal from a circuit carrying multiple related signals.


Subject(s)
Drosophila melanogaster/physiology , Visual Pathways , Animals , Drosophila melanogaster/cytology , Flight, Animal , Head Movements , Neurons/cytology , Optic Flow , Patch-Clamp Techniques , Potassium Channels, Inwardly Rectifying/metabolism
16.
Physiol Rev ; 104(3): 1265-1333, 2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38153307

ABSTRACT

The complexity of cardiac electrophysiology, involving dynamic changes in numerous components across multiple spatial (from ion channel to organ) and temporal (from milliseconds to days) scales, makes an intuitive or empirical analysis of cardiac arrhythmogenesis challenging. Multiscale mechanistic computational models of cardiac electrophysiology provide precise control over individual parameters, and their reproducibility enables a thorough assessment of arrhythmia mechanisms. This review provides a comprehensive analysis of models of cardiac electrophysiology and arrhythmias, from the single cell to the organ level, and how they can be leveraged to better understand rhythm disorders in cardiac disease and to improve heart patient care. Key issues related to model development based on experimental data are discussed, and major families of human cardiomyocyte models and their applications are highlighted. An overview of organ-level computational modeling of cardiac electrophysiology and its clinical applications in personalized arrhythmia risk assessment and patient-specific therapy of atrial and ventricular arrhythmias is provided. The advancements presented here highlight how patient-specific computational models of the heart reconstructed from patient data have achieved success in predicting risk of sudden cardiac death and guiding optimal treatments of heart rhythm disorders. Finally, an outlook toward potential future advances, including the combination of mechanistic modeling and machine learning/artificial intelligence, is provided. As the field of cardiology is embarking on a journey toward precision medicine, personalized modeling of the heart is expected to become a key technology to guide pharmaceutical therapy, deployment of devices, and surgical interventions.


Subject(s)
Arrhythmias, Cardiac , Models, Cardiovascular , Humans , Arrhythmias, Cardiac/physiopathology , Animals , Computer Simulation , Translational Research, Biomedical , Myocytes, Cardiac/physiology , Electrophysiological Phenomena/physiology , Action Potentials/physiology
17.
Cell ; 167(6): 1650-1662.e15, 2016 Dec 01.
Article in English | MEDLINE | ID: mdl-27912066

ABSTRACT

Electrophysiological field potential dynamics are of fundamental interest in basic and clinical neuroscience, but how specific cell types shape these dynamics in the live brain is poorly understood. To empower mechanistic studies, we created an optical technique, TEMPO, that records the aggregate trans-membrane voltage dynamics of genetically specified neurons in freely behaving mice. TEMPO has >10-fold greater sensitivity than prior fiber-optic techniques and attains the noise minimum set by quantum mechanical photon shot noise. After validating TEMPO's capacity to track established oscillations in the delta, theta, and gamma frequency bands, we compared the D1- and D2-dopamine-receptor-expressing striatal medium spiny neurons (MSNs), which are interspersed and electrically indistinguishable. Unexpectedly, MSN population dynamics exhibited two distinct coherent states that were commonly indiscernible in electrical recordings and involved synchronized hyperpolarizations across both MSN subtypes. Overall, TEMPO allows the deconstruction of normal and pathologic neurophysiological states into trans-membrane voltage activity patterns of specific cell types.


Subject(s)
Brain Waves , Mice/physiology , Neurophysiology/methods , Voltage-Sensitive Dye Imaging/methods , Animals , Female , Male , Mice, Inbred BALB C
18.
Mol Cell ; 83(24): 4555-4569.e4, 2023 Dec 21.
Article in English | MEDLINE | ID: mdl-38035882

ABSTRACT

Modulation of large conductance intracellular ligand-activated potassium (BK) channel family (Slo1-3) by auxiliary subunits allows diverse physiological functions in excitable and non-excitable cells. Cryoelectron microscopy (cryo-EM) structures of voltage-gated potassium (Kv) channel complexes have provided insights into how voltage sensitivity is modulated by auxiliary subunits. However, the modulation mechanisms of BK channels, particularly as ligand-activated ion channels, remain unknown. Slo1 is a Ca2+-activated and voltage-gated BK channel and is expressed in neurons, muscle cells, and epithelial cells. Using cryo-EM and electrophysiology, we show that the LRRC26-γ1 subunit modulates not only voltage but also Ca2+ sensitivity of Homo sapiens Slo1. LRRC26 stabilizes the active conformation of voltage-senor domains of Slo1 by an extracellularly S4-locking mechanism. Furthermore, it also stabilizes the active conformation of Ca2+-sensor domains of Slo1 intracellularly, which is functionally equivalent to intracellular Ca2+ in the activation of Slo1. Such a dual allosteric modulatory mechanism may be general in regulating the intracellular ligand-activated BK channel complexes.


Subject(s)
Calcium , Large-Conductance Calcium-Activated Potassium Channels , Humans , Calcium/metabolism , Cryoelectron Microscopy , Ion Channel Gating/physiology , Large-Conductance Calcium-Activated Potassium Channels/genetics , Large-Conductance Calcium-Activated Potassium Channels/chemistry , Large-Conductance Calcium-Activated Potassium Channels/metabolism , Ligands , Potassium , Allosteric Regulation
19.
Mol Cell ; 81(6): 1160-1169.e5, 2021 03 18.
Article in English | MEDLINE | ID: mdl-33503406

ABSTRACT

Voltage-gated sodium channels are targets for many analgesic and antiepileptic drugs whose therapeutic mechanisms and binding sites have been well characterized. We describe the identification of a previously unidentified receptor site within the NavMs voltage-gated sodium channel. Tamoxifen, an estrogen receptor modulator, and its primary and secondary metabolic products bind at the intracellular exit of the channel, which is a site that is distinct from other previously characterized sodium channel drug sites. These compounds inhibit NavMs and human sodium channels with similar potencies and prevent sodium conductance by delaying channel recovery from the inactivated state. This study therefore not only describes the structure and pharmacology of a site that could be leveraged for the development of new drugs for the treatment of sodium channelopathies but may also have important implications for off-target health effects of this widely used therapeutic drug.


Subject(s)
Models, Molecular , Tamoxifen/chemistry , Voltage-Gated Sodium Channels/chemistry , HEK293 Cells , Humans
20.
Mol Cell ; 81(1): 38-48.e4, 2021 01 07.
Article in English | MEDLINE | ID: mdl-33232657

ABSTRACT

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.


Subject(s)
NAV1.7 Voltage-Gated Sodium Channel/chemistry , Spider Venoms/chemistry , Amino Acid Substitution , Animals , Humans , Mutation, Missense , NAV1.7 Voltage-Gated Sodium Channel/genetics , NAV1.7 Voltage-Gated Sodium Channel/metabolism , Sf9 Cells , Spodoptera
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