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1.
J Gen Physiol ; 156(8)2024 Aug 05.
Article in English | MEDLINE | ID: mdl-38968404

ABSTRACT

We used voltage clamp fluorometry to probe the movement of the S4 helix in the voltage-sensing domain of the sea urchin HCN channel (spHCN) expressed in Xenopus oocytes. We obtained markedly different fluorescence responses with either ALEXA-488 or MTS-TAMRA covalently linked to N-terminal Cys332 of the S4 helix. With hyperpolarizing steps, ALEXA-488 fluorescence increased rapidly, consistent with it reporting the initial inward movement of S4, as previously described. In contrast, MTS-TAMRA fluorescence increased more slowly and its early phase correlated with that of channel opening. Additionally, a slow fluorescence component that tracked the development of the mode shift, or channel hysteresis, could be resolved with both labels. We quantitated this component as an increased deactivation tail current delay with concomitantly longer activation periods and found it to depend strongly on the presence of K+ ions in the pore. Using collisional quenching experiments and structural predictions, we established that ALEXA-488 was more exposed to solvent than MTS-TAMRA. We propose that components of S4 movement during channel activation can be kinetically resolved using different fluorescent probes to reveal distinct biophysical properties. Our findings underscore the need to apply caution when interpreting voltage clamp fluorometry data and demonstrate the potential utility of different labels to interrogate distinct biophysical properties of voltage-gated membrane proteins.


Subject(s)
Fluorescent Dyes , Xenopus laevis , Animals , Fluorescent Dyes/chemistry , Ion Channel Gating/physiology , Hyperpolarization-Activated Cyclic Nucleotide-Gated Channels/metabolism , Hyperpolarization-Activated Cyclic Nucleotide-Gated Channels/genetics , Hyperpolarization-Activated Cyclic Nucleotide-Gated Channels/chemistry , Oocytes/metabolism , Sea Urchins , Membrane Potentials/physiology
2.
Nat Commun ; 15(1): 5216, 2024 Jun 18.
Article in English | MEDLINE | ID: mdl-38890331

ABSTRACT

Hyperpolarization and cyclic nucleotide (HCN) activated ion channels are critical for the automaticity of action potentials in pacemaking and rhythmic electrical circuits in the human body. Unlike most voltage-gated ion channels, the HCN and related plant ion channels activate upon membrane hyperpolarization. Although functional studies have identified residues in the interface between the voltage-sensing and pore domain as crucial for inverted electromechanical coupling, the structural mechanisms for this unusual voltage-dependence remain unclear. Here, we present cryo-electron microscopy structures of human HCN1 corresponding to Closed, Open, and a putative Intermediate state. Our structures reveal that the downward motion of the gating charges past the charge transfer center is accompanied by concomitant unwinding of the inner end of the S4 and S5 helices, disrupting the tight gating interface observed in the Closed state structure. This helix-coil transition at the intracellular gating interface accompanies a concerted iris-like dilation of the pore helices and underlies the reversed voltage dependence of HCN channels.


Subject(s)
Cryoelectron Microscopy , Hyperpolarization-Activated Cyclic Nucleotide-Gated Channels , Ion Channel Gating , Hyperpolarization-Activated Cyclic Nucleotide-Gated Channels/metabolism , Hyperpolarization-Activated Cyclic Nucleotide-Gated Channels/chemistry , Humans , Potassium Channels/chemistry , Potassium Channels/metabolism , Models, Molecular , Membrane Potentials/physiology
3.
Toxins (Basel) ; 16(6)2024 Jun 03.
Article in English | MEDLINE | ID: mdl-38922152

ABSTRACT

Studies on the interaction sites of peptide toxins and ion channels typically involve site-directed mutations in toxins. However, natural mutant toxins exist among them, offering insights into how the evolutionary process has conserved crucial sequences for activities and molecular target selection. In this study, we present a comparative investigation using electrophysiological approaches and computational analysis between two alpha toxins from evolutionarily close scorpion species of the genus Tityus, namely, Tst3 and Ts3 from T. stigmurus and T. serrulatus, respectively. These toxins exhibit three natural substitutions near the C-terminal region, which is directly involved in the interaction between alpha toxins and Nav channels. Additionally, we characterized the activity of the Tst3 toxin on Nav1.1-Nav1.7 channels. The three natural changes between the toxins did not alter sensitivity to Nav1.4, maintaining similar intensities regarding their ability to alter opening probabilities, delay fast inactivation, and induce persistent currents. Computational analysis demonstrated a preference for the down conformation of VSD4 and a shift in the conformational equilibrium towards this state. This illustrates that the sequence of these toxins retained the necessary information, even with alterations in the interaction site region. Through electrophysiological and computational analyses, screening of the Tst3 toxin on sodium isoform revealed its classification as a classic α-NaTx with a broad spectrum of activity. It effectively delays fast inactivation across all tested isoforms. Structural analysis of molecular energetics at the interface of the VSD4-Tst3 complex further confirmed this effect.


Subject(s)
Scorpion Venoms , Scorpions , Scorpion Venoms/chemistry , Scorpion Venoms/genetics , Animals , Brazil , Humans , Xenopus laevis , Ion Channel Gating/drug effects , Amino Acid Sequence , Animals, Poisonous
4.
Science ; 384(6703): 1453-1460, 2024 Jun 28.
Article in English | MEDLINE | ID: mdl-38870272

ABSTRACT

Insects detect and discriminate a diverse array of chemicals using odorant receptors (ORs), which are ligand-gated ion channels comprising a divergent odorant-sensing OR and a conserved odorant receptor co-receptor (Orco). In this work, we report structures of the ApOR5-Orco heterocomplex from the pea aphid Acyrthosiphon pisum alone and bound to its known activating ligand, geranyl acetate. In these structures, three ApOrco subunits serve as scaffold components that cannot bind the ligand and remain relatively unchanged. Upon ligand binding, the pore-forming helix S7b of ApOR5 shifts outward from the central pore axis, causing an asymmetrical pore opening for ion influx. Our study provides insights into odorant recognition and channel gating of the OR-Orco heterocomplex and offers structural resources to support development of innovative insecticides and repellents for pest control.


Subject(s)
Acetates , Aphids , Insect Proteins , Receptors, Odorant , Receptors, Odorant/chemistry , Receptors, Odorant/metabolism , Receptors, Odorant/genetics , Animals , Insect Proteins/chemistry , Insect Proteins/metabolism , Insect Proteins/genetics , Aphids/chemistry , Acetates/chemistry , Acetates/metabolism , Ligands , Terpenes/chemistry , Terpenes/metabolism , Odorants/analysis , Protein Subunits/chemistry , Protein Subunits/metabolism , Ion Channel Gating , Cryoelectron Microscopy , Acyclic Monoterpenes
5.
J Chem Inf Model ; 64(12): 4727-4738, 2024 Jun 24.
Article in English | MEDLINE | ID: mdl-38830626

ABSTRACT

Hyperpolarization-activated cyclic nucleotide-modulated (HCN) channels are opened in an allosteric manner by membrane hyperpolarization and cyclic nucleotides such as cAMP. Because of conflicting reports from experimental studies on whether cAMP binding to the four available binding sites in the channel tetramer operates cooperatively in gating, we employ here a computational approach as a promising route to examine ligand-induced conformational changes after binding to individual sites. By combining an elastic network model (ENM) with linear response theory (LRT) for modeling the apo-holo transition of the cyclic nucleotide-binding domain (CNBD) in HCN channels, we observe a distinct pattern of cooperativity matching the "positive-negative-positive" cooperativity reported from functional studies. This cooperativity pattern is highly conserved among HCN subtypes (HCN4, HCN1), but only to a lesser extent visible in structurally related channels, which are only gated by voltage (KAT1) or cyclic nucleotides (TAX4). This suggests an inherent cooperativity between subunits in HCN channels as part of a ligand-triggered gating mechanism in these channels.


Subject(s)
Cyclic AMP , Hyperpolarization-Activated Cyclic Nucleotide-Gated Channels , Ion Channel Gating , Models, Molecular , Hyperpolarization-Activated Cyclic Nucleotide-Gated Channels/metabolism , Hyperpolarization-Activated Cyclic Nucleotide-Gated Channels/chemistry , Cyclic AMP/metabolism , Anisotropy , Protein Subunits/metabolism , Protein Subunits/chemistry , Protein Conformation , Humans , Potassium Channels/metabolism , Potassium Channels/chemistry , Binding Sites
6.
Methods Mol Biol ; 2796: 229-248, 2024.
Article in English | MEDLINE | ID: mdl-38856905

ABSTRACT

Automated patch clamp recording is a valuable technique in drug discovery and the study of ion channels. It allows for the precise measurement and manipulation of channel currents, providing insights into their function and modulation by drugs or other compounds. The melanocortin 4 receptor (MC4-R) is a G protein-coupled receptor (GPCR) crucial to appetite regulation, energy balance, and body weight. MC4-R signaling is complex and involves interactions with other receptors and neuropeptides in the appetite-regulating circuitry. MC4-Rs, like other GPCRs, are known to modulate ion channels such as Kir7.1, an inward rectifier potassium channel, in response to ligand binding. This modulation is critical for controlling ion flow across the cell membrane, which can influence membrane potential, excitability, and neurotransmission. The MC4-R is the target for the anti-obesity drug Imcivree. However, this drug is known to lack optimal potency and also has side effects. Using high-throughput techniques for studying the MC4-R/Kir7.1 complex allows researchers to rapidly screen many compounds or conditions, aiding the development of drugs that target this system. Additionally, automated patch clamp recording of this receptor-channel complex and its ligands can provide valuable functional and pharmacological insights supporting the development of novel therapeutic strategies. This approach can be generalized to other GPCR-gated ion channel functional complexes, potentially accelerating the pace of research in different fields with the promise to uncover previously unknown aspects of receptor-ion channel interactions.


Subject(s)
Patch-Clamp Techniques , Potassium Channels, Inwardly Rectifying , Receptor, Melanocortin, Type 4 , Patch-Clamp Techniques/methods , Animals , Humans , Receptor, Melanocortin, Type 4/metabolism , Potassium Channels, Inwardly Rectifying/metabolism , Ion Channel Gating/drug effects , Receptors, G-Protein-Coupled/metabolism , HEK293 Cells
7.
Open Biol ; 14(6): 240028, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38896086

ABSTRACT

Acid-sensing ion channels (ASICs) are neuronal Na+-permeable ion channels activated by extracellular acidification. ASICs are involved in learning, fear sensing, pain sensation and neurodegeneration. Increasing the extracellular Ca2+ concentration decreases the H+ sensitivity of ASIC1a, suggesting a competition for binding sites between H+ and Ca2+ ions. Here, we predicted candidate residues for Ca2+ binding on ASIC1a, based on available structural information and our molecular dynamics simulations. With functional measurements, we identified several residues in cavities previously associated with pH-dependent gating, whose mutation reduced the modulation by extracellular Ca2+ of the ASIC1a pH dependence of activation and desensitization. This occurred likely owing to a disruption of Ca2+ binding. Our results link one of the two predicted Ca2+-binding sites in each ASIC1a acidic pocket to the modulation of channel activation. Mg2+ regulates ASICs in a similar way as does Ca2+. We show that Mg2+ shares some of the binding sites with Ca2+. Finally, we provide evidence that some of the ASIC1a Ca2+-binding sites are functionally conserved in the splice variant ASIC1b. Our identification of divalent cation-binding sites in ASIC1a shows how Ca2+ affects ASIC1a gating, elucidating a regulatory mechanism present in many ion channels.


Subject(s)
Acid Sensing Ion Channels , Calcium , Molecular Dynamics Simulation , Acid Sensing Ion Channels/metabolism , Acid Sensing Ion Channels/chemistry , Acid Sensing Ion Channels/genetics , Binding Sites , Calcium/metabolism , Animals , Protein Binding , Hydrogen-Ion Concentration , Magnesium/metabolism , Humans , Ion Channel Gating , Mutation , Protein Conformation
8.
Methods Mol Biol ; 2796: 139-156, 2024.
Article in English | MEDLINE | ID: mdl-38856900

ABSTRACT

Markov models are widely used to represent ion channel protein configurations as different states in the model's topology. Such models allow for dynamic simulation of ion channel kinetics through the simulated application of voltage potentials across a cell membrane. In this chapter, we present a general method for creating Markov models of ion channel kinetics using computational optimization alongside a fully featured example model of a cardiac potassium channel. Our methods cover designing training protocols, iteratively testing potential model topologies for structure identification, creation of algorithms for model simulation, as well as methods for assessing the quality of fit for a finalized model.


Subject(s)
Algorithms , Ion Channels , Markov Chains , Ion Channels/metabolism , Ion Channels/chemistry , Kinetics , Computer Simulation , Humans , Ion Channel Gating , Computational Biology/methods , Molecular Dynamics Simulation , Software
9.
Methods Mol Biol ; 2796: 87-95, 2024.
Article in English | MEDLINE | ID: mdl-38856896

ABSTRACT

Voltage-gated ion channels (VGICs) are integral membrane proteins crucial for transmitting electrical signals in excitable cells. Understanding the kinetics of these ion channels requires conducting patch-clamp experiments using genetically modified cell lines that express a single type of ion channel gene. However, this process relies on the continuous maintenance of cell lines to ensure an adequate supply of sample cells for patch-clamp experiments. Advancements in automated patch-clamp methods have enabled researchers to significantly increase the number of patch-clamped cells per experiment, from just a few cells to as many as 384 cells. Despite this progress, the manual task of preparing the cell samples remains a significant bottleneck in the kinetic screening of VGICs. Here we describe a method to address this challenge by generating ready-to-record (RTR) VGIC-expressing cells that can be frozen and stored separately from patch-clamp experiments. This decoupling of the cell sample preparation process from the patch-clamp experiments offers a streamlined approach to studying VGICs on manual or an automated patch-clamp system.


Subject(s)
Ion Channels , Patch-Clamp Techniques , Patch-Clamp Techniques/methods , Humans , Kinetics , Ion Channels/metabolism , Ion Channels/genetics , HEK293 Cells , Animals , Cell Line , Ion Channel Gating
10.
Methods Mol Biol ; 2796: 35-72, 2024.
Article in English | MEDLINE | ID: mdl-38856894

ABSTRACT

Fluorescence techniques have been widely used to shed light over the structure-function relationship of potassium channels for the last 40-50 years. In this chapter, we describe how a Förster resonance energy transfer between identical fluorophores (homo-FRET) approach can be applied to study the gating behavior of the prokaryotic channel KcsA. Two different gates have been described to control the K+ flux across the channel's pore, the helix-bundle crossing and the selectivity filter, located at the opposite sides of the channel transmembrane section. Both gates can be studied individually or by using a double-reporter system. Due to its homotetrameric structural arrangement, KcsA presents a high degree of symmetry that fulfills the first requisite to calculate intersubunit distances through this technique. The results obtained through this work have helped to uncover the conformational plasticity of the selectivity filter under different experimental conditions and the importance of its allosteric coupling to the opening of the activation (inner) gate. This biophysical approach usually requires low protein concentration and presents high sensitivity and reproducibility, complementing the high-resolution structural information provided by X-ray crystallography, cryo-EM, and NMR studies.


Subject(s)
Bacterial Proteins , Fluorescence Resonance Energy Transfer , Potassium Channels , Protein Conformation , Fluorescence Resonance Energy Transfer/methods , Potassium Channels/metabolism , Potassium Channels/chemistry , Bacterial Proteins/metabolism , Bacterial Proteins/chemistry , Ion Channel Gating , Models, Molecular
11.
Methods Mol Biol ; 2796: 119-138, 2024.
Article in English | MEDLINE | ID: mdl-38856899

ABSTRACT

Ion channels comprise one of the largest targets for drug development and treatment and have been a subject of enduring fascination since first discovered in the 1950s. Over the past decades, thousands of publications have explored the cellular biology and molecular physiology of these proteins, and many channel structures have been determined since the late 1990s. Trying to connect the dots between ion channel function and structure, voltage clamp fluorometry (VCF) emerges as a powerful tool because it allows monitoring of the conformational rearrangements underlying the different functional states of the channel. This technique represents an elegant harmonization of molecular biology, electrophysiology, and fluorescence. In the following chapter, we will provide a concise guide to performing VCF on Xenopus laevis oocytes using the two-electrode voltage clamp (TEVC) modality. This is the most widely used configuration on Xenopus oocytes for its relative simplicity and demonstrated success in a number of different ion channels utilizing a variety of attached labels.


Subject(s)
Fluorometry , Ion Channels , Oocytes , Patch-Clamp Techniques , Xenopus laevis , Animals , Patch-Clamp Techniques/methods , Fluorometry/methods , Oocytes/metabolism , Ion Channels/metabolism , Ion Channel Gating
12.
Methods Mol Biol ; 2796: 211-227, 2024.
Article in English | MEDLINE | ID: mdl-38856904

ABSTRACT

The dynamic clamp technique has emerged as a powerful tool in the field of cardiac electrophysiology, enabling researchers to investigate the intricate dynamics of ion currents in cardiac cells. Potassium channels play a critical role in the functioning of cardiac cells and the overall electrical stability of the heart. This chapter provides a comprehensive overview of the methods and applications of dynamic clamp in the study of key potassium currents in cardiac cells. A step-by-step guide is presented, detailing the experimental setup and protocols required for implementing the dynamic clamp technique in cardiac cell studies. Special attention is given to the design and construction of a dynamic clamp setup with Real Time eXperimental Interface, configurations, and the incorporation of mathematical models to mimic ion channel behavior. The chapter's core focuses on applying dynamic clamp to elucidate the properties of various potassium channels in cardiac cells. It discusses how dynamic clamp can be used to investigate channel kinetics, voltage-dependent properties, and the impact of different potassium channel subtypes on cardiac electrophysiology. The chapter will also include examples of specific dynamic clamp experiments that studied potassium currents or their applications in cardiac cells.


Subject(s)
Myocytes, Cardiac , Patch-Clamp Techniques , Potassium Channels , Patch-Clamp Techniques/methods , Potassium Channels/metabolism , Myocytes, Cardiac/metabolism , Animals , Humans , Ion Channel Gating , Potassium/metabolism , Kinetics
13.
Methods Mol Biol ; 2796: 249-270, 2024.
Article in English | MEDLINE | ID: mdl-38856906

ABSTRACT

Patch-clamp technique provides a unique possibility to record the ion channels' activity. This method enables tracking the changes in their functional states at controlled conditions on a real-time scale. Kinetic parameters evaluated for the patch-clamp signals form the fundamentals of electrophysiological characteristics of the channel functioning. Nevertheless, the noisy series of ionic currents flowing through the channel protein(s) seem to be bountiful of information, and the standard data processing techniques likely unravel only its part. Rapid development of artificial intelligence (AI) techniques, especially machine learning (ML), gives new prospects for whole channelology. Here we consider the question of the AI applications in the patch-clamp signal analysis. It turns out that the AI methods may not only enable for automatizing of signal analysis, but also they can be used in finding inherent patterns of channel gating and allow the researchers to uncover the details of gating machinery, which had been never considered before. In this work, we outline the currently known AI methods that turned out to be utilizable and useful in the analysis of patch-clamp signals. This chapter can be considered an introductory guide to the application of AI methods in the analysis of the time series of channel currents (together with its advantages, disadvantages, and limitations), but we also propose new possible directions in this field.


Subject(s)
Ion Channels , Machine Learning , Patch-Clamp Techniques , Patch-Clamp Techniques/methods , Patch-Clamp Techniques/instrumentation , Ion Channels/metabolism , Humans , Ion Channel Gating/physiology , Animals
14.
J Gen Physiol ; 156(7)2024 Jul 01.
Article in English | MEDLINE | ID: mdl-38832889

ABSTRACT

Voltage-gated ion channels are responsible for the electrical excitability of neurons and cardiomyocytes. Thus, they are obvious targets for pharmaceuticals aimed to modulate excitability. Compounds activating voltage-gated potassium (KV) channels are expected to reduce excitability. To search for new KV-channel activators, we performed a high-throughput screen of 10,000 compounds on a specially designed Shaker KV channel. Here, we report on a large family of channel-activating compounds with a carboxyl (COOH) group as the common motif. The most potent COOH activators are lipophilic (4 < LogP <7) and are suggested to bind at the interface between the lipid bilayer and the channel's positively charged voltage sensor. The negatively charged form of the COOH-group compounds is suggested to open the channel by electrostatically pulling the voltage sensor to an activated state. Several of the COOH-group compounds also activate the therapeutically important KV7.2/7.3 channel and can thus potentially be developed into antiseizure drugs. The COOH-group compounds identified in this study are suggested to act via the same site and mechanism of action as previously studied COOH-group compounds, such as polyunsaturated fatty acids and resin acids, but distinct from sites for several other types of potassium channel-activating compounds.


Subject(s)
Ion Channel Gating , Animals , Ion Channel Gating/drug effects , Shaker Superfamily of Potassium Channels/metabolism , KCNQ2 Potassium Channel/metabolism , KCNQ2 Potassium Channel/agonists , Potassium Channels, Voltage-Gated/metabolism , Potassium Channels, Voltage-Gated/drug effects , KCNQ3 Potassium Channel/metabolism , Humans , Xenopus laevis
15.
J Physiol Investig ; 67(3): 103-106, 2024 May 01.
Article in English | MEDLINE | ID: mdl-38857206

ABSTRACT

A recent study investigated the correlation between telmisartan (TEL) exposure and Alzheimer's disease (AD) risk among African Americans (AAs) and European Americans. Their findings indicated that moderate-to-high TEL exposure was linked to a decreased incidence of AD among AAs. These results suggest a potential association between TEL and a reduced risk of AD specifically within the AA population. Here, we investigated the effects of TEL, either alone or in combination with ranolazine (Ran) or dapagliflozin (Dapa), on voltage-gated Na + currents ( INa ) in Neuro-2a cells. TEL, primarily used for treating hypertension and cardiovascular disorders, showed a stimulatory effect on INa , while Ran and Dapa reversed this stimulation. In Neuro-2a cells, we demonstrated that with exposure to TEL, the transient ( INa(T) ) and late ( INa(L) ) components of INa were differentially stimulated with effective EC 50 's of 16.9 and 3.1 µM, respectively. The research implies that TEL's impact on INa might be associated with enhanced neuronal excitability. This study highlights the complex interplay between TEL, Ran, and Dapa on INa and their potential implications for AD, emphasizing the need for further investigation to understand the mechanisms involved.


Subject(s)
Acetanilides , Benzhydryl Compounds , Benzimidazoles , Benzoates , Glucosides , Neuroblastoma , Piperazines , Ranolazine , Telmisartan , Telmisartan/pharmacology , Telmisartan/therapeutic use , Glucosides/pharmacology , Glucosides/therapeutic use , Benzimidazoles/pharmacology , Benzimidazoles/therapeutic use , Ranolazine/pharmacology , Ranolazine/therapeutic use , Benzoates/pharmacology , Benzoates/therapeutic use , Neuroblastoma/drug therapy , Neuroblastoma/pathology , Cell Line, Tumor , Animals , Acetanilides/pharmacology , Piperazines/pharmacology , Piperazines/therapeutic use , Mice , Benzhydryl Compounds/pharmacology , Benzhydryl Compounds/therapeutic use , Neurons/drug effects , Neurons/metabolism , Ion Channel Gating/drug effects
16.
Proc Natl Acad Sci U S A ; 121(27): e2403333121, 2024 Jul 02.
Article in English | MEDLINE | ID: mdl-38923985

ABSTRACT

The transient receptor potential melastatin (TRPM) tetrameric cation channels are involved in a wide range of biological functions, from temperature sensing and taste transduction to regulation of cardiac function, inflammatory pain, and insulin secretion. The structurally conserved TRPM cytoplasmic domains make up >70 % of the total protein. To investigate the mechanism by which the TRPM cytoplasmic domains contribute to gating, we employed electrophysiology and cryo-EM to study TRPM5-a channel that primarily relies on activation via intracellular Ca2+. Here, we show that activation of mammalian TRPM5 channels is strongly altered by Ca2+-dependent desensitization. Structures of rat TRPM5 identify a series of conformational transitions triggered by Ca2+ binding, whereby formation and dissolution of cytoplasmic interprotomer interfaces appear to control activation and desensitization of the channel. This study shows the importance of the cytoplasmic assembly in TRPM5 channel function and sets the stage for future investigations of other members of the TRPM family.


Subject(s)
Calcium , Ion Channel Gating , TRPM Cation Channels , TRPM Cation Channels/metabolism , TRPM Cation Channels/chemistry , Animals , Ion Channel Gating/physiology , Rats , Calcium/metabolism , Humans , Cryoelectron Microscopy , HEK293 Cells , Cytosol/metabolism , Protein Domains , Protein Conformation
17.
Elife ; 122024 Jun 24.
Article in English | MEDLINE | ID: mdl-38913422

ABSTRACT

The serotonin-gated ion channel (5-HT3R) mediates excitatory neuronal communication in the gut and the brain. It is the target for setrons, a class of competitive antagonists widely used as antiemetics, and is involved in several neurological diseases. Cryo-electron microscopy (cryo-EM) of the 5-HT3R in complex with serotonin or setrons revealed that the protein has access to a wide conformational landscape. However, assigning known high-resolution structures to actual states contributing to the physiological response remains a challenge. In the present study, we used voltage-clamp fluorometry (VCF) to measure simultaneously, for 5-HT3R expressed at a cell membrane, conformational changes by fluorescence and channel opening by electrophysiology. Four positions identified by mutational screening report motions around and outside the serotonin-binding site through incorporation of cysteine-tethered rhodamine dyes with or without a nearby quenching tryptophan. VCF recordings show that the 5-HT3R has access to four families of conformations endowed with distinct fluorescence signatures: 'resting-like' without ligand, 'inhibited-like' with setrons, 'pre-active-like' with partial agonists, and 'active-like' (open channel) with partial and strong agonists. Data are remarkably consistent with cryo-EM structures, the fluorescence partners matching respectively apo, setron-bound, 5-HT bound-closed, and 5-HT-bound-open conformations. Data show that strong agonists promote a concerted motion of all fluorescently labeled sensors during activation, while partial agonists, especially when loss-of-function mutations are engineered, stabilize both active and pre-active conformations. In conclusion, VCF, though the monitoring of electrophysiologically silent conformational changes, illuminates allosteric mechanisms contributing to signal transduction and their differential regulation by important classes of physiological and clinical effectors.


Subject(s)
Fluorometry , Patch-Clamp Techniques , Protein Conformation , Receptors, Serotonin, 5-HT3 , Receptors, Serotonin, 5-HT3/metabolism , Receptors, Serotonin, 5-HT3/chemistry , Receptors, Serotonin, 5-HT3/genetics , Fluorometry/methods , Humans , Serotonin/metabolism , Cryoelectron Microscopy , HEK293 Cells , Binding Sites , Ion Channel Gating
18.
Methods Mol Biol ; 2799: 151-175, 2024.
Article in English | MEDLINE | ID: mdl-38727907

ABSTRACT

In vertebrate central neurons, NMDA receptors are glutamate- and glycine-gated ion channels that allow the passage of Na+ and Ca2+ ions into the cell when these neurotransmitters are simultaneously present. The passage of Ca2+ is critical for initiating the cellular processes underlying various forms of synaptic plasticity. These Ca2+ ions can autoregulate the NMDA receptor signal through multiple distinct mechanisms to reduce the total flux of cations. One such mechanism is the ability of Ca2+ ions to exclude the passage of Na+ ions resulting in a reduced unitary current conductance. In contrast to the well-characterized Mg2+ block, this "channel block" mechanism is voltage-independent. In this chapter, we discuss theoretical and experimental considerations for the study of channel block by Ca2+ using single-channel patch-clamp electrophysiology. We focus on two classic methodologies to quantify the dependence of unitary channel conductance on external concentrations of Ca2+ as the basis for quantifying Ca2+ block.


Subject(s)
Calcium , Patch-Clamp Techniques , Receptors, N-Methyl-D-Aspartate , Receptors, N-Methyl-D-Aspartate/metabolism , Calcium/metabolism , Patch-Clamp Techniques/methods , Animals , Ion Channel Gating , Humans , Sodium/metabolism
19.
Biophys J ; 123(12): 1735-1750, 2024 Jun 18.
Article in English | MEDLINE | ID: mdl-38762755

ABSTRACT

The light-gated anion channelrhodopsin GtACR1 is an important optogenetic tool for neuronal silencing. Its photochemistry, including its photointermediates, is poorly understood. The current mechanistic view presumes BR-like kinetics and assigns the open channel to a blue-absorbing L intermediate. Based on time-resolved absorption and electrophysiological data, we recently proposed a red-absorbing spectral form for the open channel state. Here, we report the results of a comprehensive kinetic analysis of the spectroscopic data combined with channel current information. The time evolutions of the spectral forms derived from the spectroscopic data are inconsistent with the single chain mechanism and are analyzed within the concept of parallel photocycles. The spectral forms partitioned into conductive and nonconductive parallel cycles are assigned to intermediate states. Rejecting reversible connections between conductive and nonconductive channel states leads to kinetic schemes with two independent conductive states corresponding to the fast- and slow-decaying current components. The conductive cycle is discussed in terms of a single cycle and two parallel cycles. The reaction mechanisms and reaction rates for the wild-type protein, the A75E, and the low-conductance D234N and S97E protein variants are derived. The parallel cycles of channelrhodopsin kinetics, its relation to BR photocycle, and the role of the M intermediate in channel closure are discussed.


Subject(s)
Ion Channel Gating , Kinetics , Rhodopsin/metabolism , Rhodopsin/chemistry , Rhodopsin/genetics , Animals , Anions/metabolism , Light , Models, Biological , Channelrhodopsins/metabolism , Channelrhodopsins/genetics , Channelrhodopsins/chemistry
20.
J Am Chem Soc ; 146(19): 13588-13597, 2024 May 15.
Article in English | MEDLINE | ID: mdl-38695646

ABSTRACT

Membrane channel proteins (MCPs) play key roles in matter transport through cell membranes and act as major targets for vaccines and drugs. For emerging ionic liquid (IL) drugs, a rational understanding of how ILs affect the structure and transport function of MCP is crucial to their design. In this work, GPU-accelerated microsecond-long molecular dynamics simulations were employed to investigate the modulating mechanism of ILs on MCP. Interestingly, ILs prefer to insert into the lipid bilayer and channel of aquaporin-2 (AQP2) but adsorb on the entrance of voltage-gated sodium channels (Nav). Molecular trajectory and free energy analysis reflect that ILs have a minimal impact on the structure of MCPs but significantly influence MCP functions. It demonstrates that ILs can decrease the overall energy barrier for water through AQP2 by 1.88 kcal/mol, whereas that for Na+ through Nav is increased by 1.70 kcal/mol. Consequently, the permeation rates of water and Na+ can be enhanced and reduced by at least 1 order of magnitude, respectively. Furthermore, an abnormal IL gating mechanism was proposed by combining the hydrophobic nature of MCP and confined water/ion coordination effects. More importantly, we performed experiments to confirm the influence of ILs on AQP2 in human cells and found that treatment with ILs significantly accelerated the changes in cell volume in response to altered external osmotic pressure. Overall, these quantitative results will not only deepen the understanding of IL-cell interactions but may also shed light on the rational design of drugs and disease diagnosis.


Subject(s)
Cell Membrane Permeability , Ion Channel Gating , Membrane Proteins/chemistry , Membrane Proteins/metabolism , Ionic Liquids/chemistry , Ionic Liquids/metabolism , Models, Molecular , Protein Structure, Tertiary , Water/chemistry , Cell Line
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