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1.
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
2.
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
3.
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
4.
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
5.
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
6.
Sci Rep ; 14(1): 14315, 2024 06 21.
Article in English | MEDLINE | ID: mdl-38906952

ABSTRACT

Head-fixation of mice enables high-resolution monitoring of neuronal activity coupled with precise control of environmental stimuli. Virtual reality can be used to emulate the visual experience of movement during head fixation, but a low inertia floating real-world environment (mobile homecage, MHC) has the potential to engage more sensory modalities and provide a richer experimental environment for complex behavioral tasks. However, it is not known whether mice react to this adapted environment in a similar manner to real environments, or whether the MHC can be used to implement validated, maze-based behavioral tasks. Here, we show that hippocampal place cell representations are intact in the MHC and that the system allows relatively long (20 min) whole-cell patch clamp recordings from dorsal CA1 pyramidal neurons, revealing sub-threshold membrane potential dynamics. Furthermore, mice learn the location of a liquid reward within an adapted T-maze guided by 2-dimensional spatial navigation cues and relearn the location when spatial contingencies are reversed. Bilateral infusions of scopolamine show that this learning is hippocampus-dependent and requires intact cholinergic signalling. Therefore, we characterize the MHC system as an experimental tool to study sub-threshold membrane potential dynamics that underpin complex navigation behaviors.


Subject(s)
Hippocampus , Maze Learning , Spatial Navigation , Animals , Mice , Spatial Navigation/physiology , Male , Hippocampus/physiology , Pyramidal Cells/physiology , Mice, Inbred C57BL , Membrane Potentials/physiology , CA1 Region, Hippocampal/physiology , Virtual Reality , Scopolamine/pharmacology , Patch-Clamp Techniques/methods
7.
Methods Mol Biol ; 2799: 139-150, 2024.
Article in English | MEDLINE | ID: mdl-38727906

ABSTRACT

Epilepsy is one of the most represented neurological diseases worldwide. However, in many cases, the precise molecular mechanisms of epileptogenesis and ictiogenesis are unknown. Because of their important role in synaptic function and neuronal excitability, NMDA receptors are implicated in various epileptogenic mechanisms. Most of these are subunit specific and require a precise analysis of the subunit composition of the NMDARs implicated. Here, we describe an express electrophysiological method to analyze the contribution of NMDAR subunits to spontaneous postsynaptic activity in identified cells in brain slices using patch clamp whole cell recordings.


Subject(s)
Patch-Clamp Techniques , Receptors, N-Methyl-D-Aspartate , Synapses , Receptors, N-Methyl-D-Aspartate/metabolism , Animals , Patch-Clamp Techniques/methods , Synapses/metabolism , Synapses/physiology , Brain/metabolism , Brain/cytology , Neurons/metabolism , Mice , Rats , Protein Subunits/metabolism
8.
Methods Mol Biol ; 2799: 177-200, 2024.
Article in English | MEDLINE | ID: mdl-38727908

ABSTRACT

In the mammalian central nervous system (CNS), fast excitatory transmission relies primarily on the ionic fluxes generated by ionotropic glutamate receptors (iGluRs). Among iGluRs, NMDA receptors (NMDARs) are unique in their ability to pass large, Ca2+-rich currents. Importantly, their high Ca2+ permeability is essential for normal CNS function and is under physiological control. For this reason, the accurate measurement of NMDA receptor Ca2+ permeability represents a valuable experimental step in evaluating the mechanism by which these receptors contribute to a variety of physiological and pathological conditions. In this chapter, we provide a theoretical and practical overview of the common methods used to estimate the Ca2+ permeability of ion channels as they apply to NMDA receptors. Specifically, we describe the principles and methodology used to calculate relative permeability (PCa/PNa) and fractional permeability (Pf), along with the relationship between these two metrics. With increasing knowledge about the structural dynamics of ion channels and of the ongoing environmental fluctuations in which channels operate in vivo, the ability to quantify the Ca2+ entering cells through specific ion channels remains a tool essential to delineating the molecular mechanisms that support health and cause disease.


Subject(s)
Calcium , Patch-Clamp Techniques , Receptors, N-Methyl-D-Aspartate , Receptors, N-Methyl-D-Aspartate/metabolism , Calcium/metabolism , Patch-Clamp Techniques/methods , Animals , Humans , Permeability , Cell Membrane Permeability
9.
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
10.
Methods Mol Biol ; 2799: 201-223, 2024.
Article in English | MEDLINE | ID: mdl-38727909

ABSTRACT

Neuronal N-methyl-D-aspartate (NMDA) receptors are well known for their pivotal role in memory formation. Originally, they were thought to be exclusive to neurons. However, numerous studies revealed their functional expression also on various types of glial cells in the nervous system. Here, the methodology on how to study the physiology of NMDA receptors selectively on astrocytes will be described in detail. Astrocytes are the main class of neuroglia that control transmitter and ion homeostasis, which link cerebral blood flow and neuronal energy demands, but also affect synaptic transmission directly.


Subject(s)
Astrocytes , Receptors, N-Methyl-D-Aspartate , Astrocytes/metabolism , Receptors, N-Methyl-D-Aspartate/metabolism , Animals , Mice , Patch-Clamp Techniques/methods , Cells, Cultured , Neurons/metabolism , Rats
11.
Methods Mol Biol ; 2799: 257-267, 2024.
Article in English | MEDLINE | ID: mdl-38727912

ABSTRACT

The NMDAR is a heterotetramer composed of two GluN1 subunits and two GluN2 and/or GluN3 subunits, with the GluN2 subunits exhibiting significant diversity in their structure and function. Recent studies have highlighted the importance of characterizing the specific roles of each GluN2 subunit across central nervous system regions and developmental stages, as well as their unique contributions to NMDAR-mediated signaling and plasticity. Understanding the distinct functions of GluN2 subunits is critical for the development of targeted therapeutic strategies for NMDAR-related disorders. However, measuring the functional contribution of individual GluN2 subtypes in ex vivo slices is challenging. Conventionally, pharmacological or genetic approaches are used, but, in many cases, this is not possible or is restricted to population-level NMDAR responses. Here, we describe a technique for using biophysical properties of miniature synaptic NMDAR responses as a proxy to measure the functional contribution of specific GluN2-NMDAR subunits to individual synapses within a neuron.


Subject(s)
Protein Subunits , Receptors, N-Methyl-D-Aspartate , Synapses , Receptors, N-Methyl-D-Aspartate/metabolism , Receptors, N-Methyl-D-Aspartate/genetics , Animals , Synapses/metabolism , Protein Subunits/metabolism , Mice , Neurons/metabolism , Rats , Patch-Clamp Techniques/methods , Synaptic Transmission
12.
Neural Comput ; 36(7): 1286-1331, 2024 Jun 07.
Article in English | MEDLINE | ID: mdl-38776965

ABSTRACT

In computational neuroscience, multicompartment models are among the most biophysically realistic representations of single neurons. Constructing such models usually involves the use of the patch-clamp technique to record somatic voltage signals under different experimental conditions. The experimental data are then used to fit the many parameters of the model. While patching of the soma is currently the gold-standard approach to build multicompartment models, several studies have also evidenced a richness of dynamics in dendritic and axonal sections. Recording from the soma alone makes it hard to observe and correctly parameterize the activity of nonsomatic compartments. In order to provide a richer set of data as input to multicompartment models, we here investigate the combination of somatic patch-clamp recordings with recordings of high-density microelectrode arrays (HD-MEAs). HD-MEAs enable the observation of extracellular potentials and neural activity of neuronal compartments at subcellular resolution. In this work, we introduce a novel framework to combine patch-clamp and HD-MEA data to construct multicompartment models. We first validate our method on a ground-truth model with known parameters and show that the use of features extracted from extracellular signals, in addition to intracellular ones, yields models enabling better fits than using intracellular features alone. We also demonstrate our procedure using experimental data by constructing cell models from in vitro cell cultures. The proposed multimodal fitting procedure has the potential to augment the modeling efforts of the computational neuroscience community and provide the field with neuronal models that are more realistic and can be better validated.


Subject(s)
Microelectrodes , Models, Neurological , Neurons , Patch-Clamp Techniques , Neurons/physiology , Patch-Clamp Techniques/methods , Patch-Clamp Techniques/instrumentation , Animals , Action Potentials/physiology , Computer Simulation
13.
PLoS Comput Biol ; 20(5): e1012053, 2024 May.
Article in English | MEDLINE | ID: mdl-38709828

ABSTRACT

Monosynaptic connectivity mapping is crucial for building circuit-level models of neural computation. Two-photon optogenetic stimulation, when combined with whole-cell recording, enables large-scale mapping of physiological circuit parameters. In this experimental setup, recorded postsynaptic currents are used to infer the presence and strength of connections. For many cell types, nearby connections are those we expect to be strongest. However, when the postsynaptic cell expresses opsin, optical excitation of nearby cells can induce direct photocurrents in the postsynaptic cell. These photocurrent artifacts contaminate synaptic currents, making it difficult or impossible to probe connectivity for nearby cells. To overcome this problem, we developed a computational tool, Photocurrent Removal with Constraints (PhoRC). Our method is based on a constrained matrix factorization model which leverages the fact that photocurrent kinetics are less variable than those of synaptic currents. We demonstrate on real and simulated data that PhoRC consistently removes photocurrents while preserving synaptic currents, despite variations in photocurrent kinetics across datasets. Our method allows the discovery of synaptic connections which would have been otherwise obscured by photocurrent artifacts, and may thus reveal a more complete picture of synaptic connectivity. PhoRC runs faster than real time and is available as open source software.


Subject(s)
Artifacts , Computational Biology , Models, Neurological , Optogenetics , Optogenetics/methods , Animals , Computational Biology/methods , Synapses/physiology , Mice , Neurons/physiology , Software , Computer Simulation , Algorithms , Patch-Clamp Techniques/methods , Humans
14.
Ann N Y Acad Sci ; 1535(1): 62-75, 2024 May.
Article in English | MEDLINE | ID: mdl-38602714

ABSTRACT

Hippocampal pyramidal neuronal activity has been previously studied using conventional patch clamp in isolated cells and brain slices. We here introduce the loose patch clamping study of voltage-activated currents from in situ pyramidal neurons in murine cornus ammonis 1 hippocampal coronal slices. Depolarizing pulses of 15-ms duration elicited early transient inward, followed by transient and prolonged outward currents in the readily identifiable junctional region between the stratum pyramidalis (SP) and oriens (SO) containing pyramidal cell somas and initial segments. These resembled pyramidal cell currents previously recorded using conventional patch clamp. Shortening the depolarizing pulses to >1-2 ms continued to evoke transient currents; hyperpolarizing pulses to varying voltages evoked decays whose time constants could be shortened to <1 ms, clarifying the speed of clamping in this experimental system. The inward and outward currents had distinct pharmacological characteristics and voltage-dependent inactivation and recovery from inactivation. Comparative recordings from the SP, known to contain pyramidal cell somas, demonstrated similar current properties. Recordings from the SO and stratum radiatum demonstrated smaller inward and outward current magnitudes and reduced transient outward currents, consistent with previous conventional patch clamp results from their different interneuron types. The loose patch clamp method is thus useful for in situ studies of neurons in hippocampal brain slices.


Subject(s)
Patch-Clamp Techniques , Pyramidal Cells , Animals , Patch-Clamp Techniques/methods , Mice , Pyramidal Cells/physiology , Membrane Potentials/physiology , Hippocampus/physiology , Hippocampus/cytology , Neurons/physiology , CA1 Region, Hippocampal/physiology , CA1 Region, Hippocampal/cytology , Mice, Inbred C57BL , Male
15.
J Neurosci Methods ; 407: 110143, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38670536

ABSTRACT

BACKGROUND: Silicon-based micro-pillar substrates (MPS), as three-dimensional cell culture platforms with vertically aligned micro-patterned scaffolding structures, are known to facilitate high-quality growth and morphology of dorsal root ganglion (DRG) sensory neurons, promote neurite outgrowth and enhance neurite alignment. However, the electrophysiological aspects of DRG neurons cultured on silicon MPSs have not been thoroughly investigated, which is of greatest importance to ensure that such substrates do not disrupt neuronal homeostasis and function before their widespread adoption in diverse biomedical applications. NEW METHOD: We conducted whole-cell patch-clamp recordings to explore the electrophysiological properties of DRG neurons cultured on MPS arrays, utilizing a custom-made upright patch-clamp setup. RESULTS: Our findings revealed that DRG neurons exhibited similar electrophysiological responses on patterned MPS samples when compared to the control planar glass surfaces. Notably, there were no significant differences observed in the action potential parameters or firing patterns of action potentials between neurons grown on either substrate. COMPARISON WITH EXISTING METHODS: In the current study we for the first time confirmed that successful electrophysiological recordings can be obtained from the cells grown on MPS. CONCLUSION: Our results imply that, despite the potential alterations caused by the cumulative trauma of tissue harvest and cell dissociation, essential functional cell properties of DRG neurons appear to be relatively maintained on MPS surfaces. Therefore, vertically aligned silicon MPSs could be considered as a potentially effective three-dimensional system for supporting a controlled cellular environment in culture.


Subject(s)
Ganglia, Spinal , Patch-Clamp Techniques , Silicon , Ganglia, Spinal/physiology , Ganglia, Spinal/cytology , Animals , Patch-Clamp Techniques/instrumentation , Patch-Clamp Techniques/methods , Cells, Cultured , Action Potentials/physiology , Neurons/physiology , Neurons/cytology , Rats, Sprague-Dawley , Rats , Cell Culture Techniques, Three Dimensional/methods , Cell Culture Techniques, Three Dimensional/instrumentation , Electrophysiological Phenomena/physiology
16.
Methods Mol Biol ; 2757: 315-359, 2024.
Article in English | MEDLINE | ID: mdl-38668975

ABSTRACT

Unlike in the Cnidaria, where muscle cells are coupled together into an epithelium, ctenophore muscles are single, elongated, intramesogleal structures resembling vertebrate smooth muscle. Under voltage-clamp, these fibers can be separated into different classes with different sets of membrane ion channels. The ion channel makeup is related to the muscle's anatomical position and specific function. For example, Beroe ovata radial fibers, which are responsible for maintaining the rigidity of the body wall, generate sequences of brief action potentials whereas longitudinal fibers, which are concerned with mouth opening and body flexions, often produce single longer duration action potentials.Beroe muscle contractions depend on the influx of Ca2+. During an action potential the inward current is carried by Ca2+, and the increase in intracellular Ca2+ concentration generated can be monitored in FLUO-3-loaded cells. Confocal microscopy in line scan mode shows that the Ca2+ spreads from the outer membrane into the core of the fiber and is cleared from there relatively slowly. The rise in intracellular Ca2+ is linked to an increase in a Ca2+-activated K+ conductance (KCa), which can also be elicited by iontophoretic Ca2+ injection. Near the cell membrane, Ca2+ clearance monitored using FLUO3, matches the decline in the KCa conductance. For light loads, Ca2+ is cleared rapidly, but this fast system is insufficient when Ca2+ influx is maintained. Action potential frequency may be regulated by the slowly developing KCa conductance.


Subject(s)
Calcium , Ctenophora , Muscle, Smooth , Animals , Muscle, Smooth/physiology , Muscle, Smooth/metabolism , Calcium/metabolism , Ctenophora/physiology , Patch-Clamp Techniques/methods , Action Potentials/physiology , Muscle Contraction/physiology , Electrophysiological Phenomena , Electrophysiology/methods , Microscopy, Confocal
17.
Methods Enzymol ; 696: 3-24, 2024.
Article in English | MEDLINE | ID: mdl-38658085

ABSTRACT

Tight regulation of molecules moving through the cell membrane is particularly important for free-living microorganisms because of their small cell volumes and frequent changes in the chemical composition of the extracellular environment. This is true for nutrients, but even more so for toxic molecules. Traditionally, the transport of these diverse molecules in microorganisms has been studied on cell populations rather than on single cells, mainly because of technical difficulties. The goal of this chapter is to make available a detailed method to prepare yeast spheroplasts to study the movement of fluoride ions across the plasma membrane of single cells by the patch-clamp technique. In this procedure, three steps are critical to achieve high resistance (GΩ) seals between the membrane and the glass electrode: (1) appropriate removal of the cell wall by enzymatic treatment; (2) balance between the osmotic strength of sealing solutions and cell membrane turgor; and (3) meticulous morphological inspection of spheroplasts suitable for gigaseal formation. We show now that this method, originally developed for Saccharomyces cerevisiae, can also be applied to Candida albicans, an opportunistic human pathogen.


Subject(s)
Candida albicans , Fluorides , Patch-Clamp Techniques , Saccharomyces cerevisiae , Spheroplasts , Saccharomyces cerevisiae/metabolism , Candida albicans/metabolism , Candida albicans/physiology , Fluorides/chemistry , Patch-Clamp Techniques/methods , Spheroplasts/metabolism , Cell Membrane/metabolism , Ion Channels/metabolism
18.
Expert Opin Drug Discov ; 19(5): 523-535, 2024 May.
Article in English | MEDLINE | ID: mdl-38481119

ABSTRACT

INTRODUCTION: Automated patch clamp (APC) is now well established as a mature technology for ion channel drug discovery in academia, biotech and pharma companies, and in contract research organizations (CRO), for a variety of applications including channelopathy research, compound screening, target validation and cardiac safety testing. AREAS COVERED: Ion channels are an important class of drugged and approved drug targets. The authors present a review of the current state of ion channel drug discovery along with new and exciting developments in ion channel research involving APC. This includes topics such as native and iPSC-derived cells in ion channel drug discovery, channelopathy research, organellar and biologics in ion channel drug discovery. EXPERT OPINION: It is our belief that APC will continue to play a critical role in ion channel drug discovery, not only in 'classical' hit screening, target validation and cardiac safety testing, but extending these applications to include high throughput organellar recordings and optogenetics. In this way, with advancements in APC capabilities and applications, together with high resolution cryo-EM structures, ion channel drug discovery will be re-invigorated, leading to a growing list of ion channel ligands in clinical development.


Subject(s)
Drug Discovery , Ion Channels , Patch-Clamp Techniques , Humans , Drug Discovery/methods , Ion Channels/drug effects , Animals , Patch-Clamp Techniques/methods , Drug Industry/methods , High-Throughput Screening Assays/methods , Drug Development/methods , Induced Pluripotent Stem Cells , Ligands
19.
Biochem Biophys Res Commun ; 596: 49-55, 2022 03 12.
Article in English | MEDLINE | ID: mdl-35114584

ABSTRACT

The T618I KCNH2-encoded hERG mutation is the most frequently observed mutation in genotyped cases of the congenital short QT syndrome (SQTS), a cardiac condition associated with ventricular fibrillation and sudden death. Most T618I hERG carriers exhibit a pronounced U wave on the electrocardiogram and appear vulnerable to ventricular, but not atrial fibrillation (AF). The basis for these effects is unclear. This study used the action potential (AP) voltage clamp technique to determine effects of the T618I mutation on hERG current (IhERG) elicited by APs from different cardiac regions. Whole-cell patch-clamp recordings were made at 37 °C of IhERG from hERG-transfected HEK-293 cells. Maximal IhERG during a ventricular AP command was increased ∼4-fold for T618I IhERG and occurred much earlier during AP repolarization. The mutation also increased peak repolarizing currents elicited by Purkinje fibre (PF) APs. Maximal wild-type (WT) IhERG current during the PF waveform was 87.2 ± 4.5% of maximal ventricular repolarizing current whilst for the T618I mutant, the comparable value was 47.7 ± 2.7%. Thus, the T618I mutation exacerbated differences in repolarizing IhERG between PF and ventricular APs; this could contribute to heterogeneity of ventricular-PF repolarization and consequently to the U waves seen in T618I carriers. The comparatively shorter duration and lack of pronounced plateau of the atrial AP led to a smaller effect of the T618I mutation during the atrial AP, which may help account for the lack of reported AF in T618I carriers. Use of a paired ventricular AP protocol revealed an alteration to protective IhERG transients that affect susceptibility to premature excitation late in AP repolarization/early in diastole. These observations may help explain altered arrhythmia susceptibility in this form of the SQTS.


Subject(s)
Action Potentials/genetics , Arrhythmias, Cardiac/genetics , ERG1 Potassium Channel/genetics , Mutation , Patch-Clamp Techniques/methods , Electrocardiography/methods , HEK293 Cells , Heart Atria/metabolism , Heart Ventricles/metabolism , Humans , Purkinje Fibers/metabolism
20.
Pflugers Arch ; 474(2): 243-260, 2022 02.
Article in English | MEDLINE | ID: mdl-34734327

ABSTRACT

The capacity of astrocytes to adapt their biochemical and functional features upon physiological and pathological stimuli is a fundamental property at the basis of their ability to regulate the homeostasis of the central nervous system (CNS). It is well known that in primary cultured astrocytes, the expression of plasma membrane ion channels and transporters involved in homeostatic tasks does not closely reflect the pattern observed in vivo. The individuation of culture conditions that promote the expression of the ion channel array found in vivo is crucial when aiming at investigating the mechanisms underlying their dynamics upon various physiological and pathological stimuli. A chemically defined medium containing growth factors and hormones (G5) was previously shown to induce the growth, differentiation, and maturation of primary cultured astrocytes. Here we report that under these culture conditions, rat cortical astrocytes undergo robust morphological changes acquiring a multi-branched phenotype, which develops gradually during the 2-week period of culturing. The shape changes were paralleled by variations in passive membrane properties and background conductance owing to the differential temporal development of inwardly rectifying chloride (Cl-) and potassium (K+) currents. Confocal and immunoblot analyses showed that morphologically differentiated astrocytes displayed a large increase in the expression of the inward rectifier Cl- and K+ channels ClC-2 and Kir4.1, respectively, which are relevant ion channels in vivo. Finally, they exhibited a large diminution of the intermediate filaments glial fibrillary acidic protein (GFAP) and vimentin which are upregulated in reactive astrocytes in vivo. Taken together the data indicate that long-term culturing of cortical astrocytes in this chemical-defined medium promotes a quiescent functional phenotype. This culture model could aid to address the regulation of ion channel expression involved in CNS homeostasis in response to physiological and pathological challenges.


Subject(s)
Astrocytes/metabolism , Homeostasis/physiology , Animals , CLC-2 Chloride Channels/metabolism , Cell Membrane/metabolism , Central Nervous System/metabolism , Central Nervous System/physiology , Chlorides/metabolism , Patch-Clamp Techniques/methods , Potassium/metabolism , Potassium Channels, Inwardly Rectifying/metabolism , Rats , Rats, Sprague-Dawley , Vimentin/metabolism
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