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1.
Br J Pharmacol ; 180 Suppl 2: S145-S222, 2023 10.
Article in English | MEDLINE | ID: mdl-38123150

ABSTRACT

The Concise Guide to PHARMACOLOGY 2023/24 is the sixth in this series of biennial publications. The Concise Guide provides concise overviews, mostly in tabular format, of the key properties of approximately 1800 drug targets, and over 6000 interactions with about 3900 ligands. There is an emphasis on selective pharmacology (where available), plus links to the open access knowledgebase source of drug targets and their ligands (https://www.guidetopharmacology.org/), which provides more detailed views of target and ligand properties. Although the Concise Guide constitutes almost 500 pages, the material presented is substantially reduced compared to information and links presented on the website. It provides a permanent, citable, point-in-time record that will survive database updates. The full contents of this section can be found at http://onlinelibrary.wiley.com/doi/10.1111/bph.16178. Ion channels are one of the six major pharmacological targets into which the Guide is divided, with the others being: G protein-coupled receptors, nuclear hormone receptors, catalytic receptors, enzymes and transporters. These are presented with nomenclature guidance and summary information on the best available pharmacological tools, alongside key references and suggestions for further reading. The landscape format of the Concise Guide is designed to facilitate comparison of related targets from material contemporary to mid-2023, and supersedes data presented in the 2021/22, 2019/20, 2017/18, 2015/16 and 2013/14 Concise Guides and previous Guides to Receptors and Channels. It is produced in close conjunction with the Nomenclature and Standards Committee of the International Union of Basic and Clinical Pharmacology (NC-IUPHAR), therefore, providing official IUPHAR classification and nomenclature for human drug targets, where appropriate.


Subject(s)
Databases, Pharmaceutical , Pharmacology , Humans , Ion Channels/chemistry , Ligands , Receptors, G-Protein-Coupled , Databases, Factual
2.
Br J Pharmacol ; 178 Suppl 1: S157-S245, 2021 Oct.
Article in English | MEDLINE | ID: mdl-34529831

ABSTRACT

The Concise Guide to PHARMACOLOGY 2021/22 is the fifth in this series of biennial publications. The Concise Guide provides concise overviews, mostly in tabular format, of the key properties of nearly 1900 human drug targets with an emphasis on selective pharmacology (where available), plus links to the open access knowledgebase source of drug targets and their ligands (www.guidetopharmacology.org), which provides more detailed views of target and ligand properties. Although the Concise Guide constitutes over 500 pages, the material presented is substantially reduced compared to information and links presented on the website. It provides a permanent, citable, point-in-time record that will survive database updates. The full contents of this section can be found at http://onlinelibrary.wiley.com/doi/bph.15539. Ion channels are one of the six major pharmacological targets into which the Guide is divided, with the others being: G protein-coupled receptors, nuclear hormone receptors, catalytic receptors, enzymes and transporters. These are presented with nomenclature guidance and summary information on the best available pharmacological tools, alongside key references and suggestions for further reading. The landscape format of the Concise Guide is designed to facilitate comparison of related targets from material contemporary to mid-2021, and supersedes data presented in the 2019/20, 2017/18, 2015/16 and 2013/14 Concise Guides and previous Guides to Receptors and Channels. It is produced in close conjunction with the Nomenclature and Standards Committee of the International Union of Basic and Clinical Pharmacology (NC-IUPHAR), therefore, providing official IUPHAR classification and nomenclature for human drug targets, where appropriate.


Subject(s)
Databases, Pharmaceutical , Pharmacology , Humans , Ion Channels , Knowledge Bases , Ligands , Receptors, G-Protein-Coupled
3.
JCI Insight ; 4(9)2019 05 02.
Article in English | MEDLINE | ID: mdl-31045576

ABSTRACT

Hyperpolarization-activated cyclic nucleotide-gated (HCN) channels are dually gated channels that are operated by voltage and by neurotransmitters via the cAMP system. cAMP-dependent HCN regulation has been proposed to play a key role in regulating circuit behavior in the thalamus. By analyzing a knockin mouse model (HCN2EA), in which binding of cAMP to HCN2 was abolished by 2 amino acid exchanges (R591E, T592A), we found that cAMP gating of HCN2 is essential for regulating the transition between the burst and tonic modes of firing in thalamic dorsal-lateral geniculate (dLGN) and ventrobasal (VB) nuclei. HCN2EA mice display impaired visual learning, generalized seizures of thalamic origin, and altered NREM sleep properties. VB-specific deletion of HCN2, but not of HCN4, also induced these generalized seizures of the absence type, corroborating a key role of HCN2 in this particular nucleus for controlling consciousness. Together, our data define distinct pathological phenotypes resulting from the loss of cAMP-mediated gating of a neuronal HCN channel.


Subject(s)
Cyclic AMP/metabolism , Hyperpolarization-Activated Cyclic Nucleotide-Gated Channels/genetics , Hyperpolarization-Activated Cyclic Nucleotide-Gated Channels/metabolism , Seizures/metabolism , Animals , Behavior, Animal , Epilepsy/metabolism , HEK293 Cells , Humans , Hyperpolarization-Activated Cyclic Nucleotide-Gated Channels/chemistry , Male , Mice , Mice, Inbred C57BL , Mice, Knockout , Models, Molecular , Neurons/metabolism , Potassium Channels , Thalamus/metabolism , Transcriptome
4.
Front Mol Neurosci ; 10: 436, 2017.
Article in English | MEDLINE | ID: mdl-29375299

ABSTRACT

Hyperpolarization-activated cyclic nucleotide-gated channels (HCNs) in the nervous system are implicated in a variety of neuronal functions including learning and memory, regulation of vigilance states and pain. Dysfunctions or genetic loss of these channels have been shown to cause human diseases such as epilepsy, depression, schizophrenia, and Parkinson's disease. The physiological functions of HCN1 and HCN2 channels in the nervous system have been analyzed using genetic knockout mouse models. By contrast, there are no such genetic studies for HCN3 channels so far. Here, we use a HCN3-deficient (HCN3-/-) mouse line, which has been previously generated in our group to examine the expression and function of this channel in the CNS. Specifically, we investigate the role of HCN3 channels for the regulation of circadian rhythm and for the determination of behavior. Contrary to previous suggestions we find that HCN3-/- mice show normal visual, photic, and non-photic circadian function. In addition, HCN3-/- mice are impaired in processing contextual information, which is characterized by attenuated long-term extinction of contextual fear and increased fear to a neutral context upon repeated exposure.

5.
Front Neurosci ; 10: 356, 2016.
Article in English | MEDLINE | ID: mdl-27516733

ABSTRACT

Fluorescence resonance energy transfer (FRET) is a powerful method for the detection and quantification of stationary and dynamic protein-protein interactions. Technical limitations have hampered systematic in vivo FRET experiments to study protein-protein interactions in their native environment. Here, we describe a rapid and robust protocol that combines adeno-associated virus (AAV) vector-mediated in vivo delivery of genetically encoded FRET partners with ex vivo FRET measurements. The method was established on acutely isolated outer segments of murine rod and cone photoreceptors and relies on the high co-transduction efficiency of retinal photoreceptors by co-delivered AAV vectors. The procedure can be used for the systematic analysis of protein-protein interactions of wild type or mutant outer segment proteins in their native environment. Conclusively, our protocol can help to characterize the physiological and pathophysiological relevance of photoreceptor specific proteins and, in principle, should also be transferable to other cell types.

6.
Anesthesiology ; 122(5): 1047-59, 2015 May.
Article in English | MEDLINE | ID: mdl-25782754

ABSTRACT

BACKGROUND: The thalamus is thought to be crucially involved in the anesthetic state. Here, we investigated the effect of the inhaled anesthetic xenon on stimulus-evoked thalamocortical network activity and on excitability of thalamocortical neurons. Because hyperpolarization-activated, cyclic nucleotide-gated cation (HCN) channels are key regulators of neuronal excitability in the thalamus, the effect of xenon on HCN channels was examined. METHODS: The effects of xenon on thalamocortical network activity were investigated in acutely prepared brain slices from adult wild-type and HCN2 knockout mice by means of voltage-sensitive dye imaging. The influence of xenon on single-cell excitability in brain slices was investigated using the whole-cell patch-clamp technique. Effects of xenon on HCN channels were verified in human embryonic kidney cells expressing HCN2 channels. RESULTS: Xenon concentration-dependently diminished thalamocortical signal propagation. In neurons, xenon reduced HCN channel-mediated Ih current amplitude by 33.4 ± 12.2% (at -133 mV; n = 7; P = 0.041) and caused a left-shift in the voltage of half-maximum activation (V1/2) from -98.8 ± 1.6 to -108.0 ± 4.2 mV (n = 8; P = 0.035). Similar effects were seen in human embryonic kidney cells. The impairment of HCN channel function was negligible when intracellular cyclic adenosine monophosphate level was increased. Using HCN2 mice, we could demonstrate that xenon did neither attenuate in vitro thalamocortical signal propagation nor did it show sedating effects in vivo. CONCLUSIONS: Here, we clearly showed that xenon impairs HCN2 channel function, and this impairment is dependent on intracellular cyclic adenosine monophosphate levels. We provide evidence that this effect reduces thalamocortical signal propagation and probably contributes to the hypnotic properties of xenon.


Subject(s)
Anesthetics, Inhalation/pharmacology , Hyperpolarization-Activated Cyclic Nucleotide-Gated Channels/drug effects , Potassium Channels/drug effects , Xenon/pharmacology , Animals , Cerebral Cortex/cytology , Cerebral Cortex/drug effects , Cyclic AMP/metabolism , Humans , Hyperpolarization-Activated Cyclic Nucleotide-Gated Channels/genetics , In Vitro Techniques , Mice , Mice, Inbred C57BL , Mice, Knockout , Nerve Net/cytology , Nerve Net/drug effects , Neurons/drug effects , Patch-Clamp Techniques , Potassium Channels/genetics , Thalamus/cytology , Thalamus/drug effects
7.
Circulation ; 128(24): 2585-94, 2013 Dec 17.
Article in English | MEDLINE | ID: mdl-24218458

ABSTRACT

BACKGROUND: Sinus node dysfunction (SND) is a major clinically relevant disease that is associated with sudden cardiac death and requires surgical implantation of electric pacemaker devices. Frequently, SND occurs in heart failure and hypertension, conditions that lead to electric instability of the heart. Although the pathologies of acquired SND have been studied extensively, little is known about the molecular and cellular mechanisms that cause congenital SND. METHODS AND RESULTS: Here, we show that the HCN1 protein is highly expressed in the sinoatrial node and is colocalized with HCN4, the main sinoatrial pacemaker channel isoform. To characterize the cardiac phenotype of HCN1-deficient mice, a detailed functional characterization of pacemaker mechanisms in single isolated sinoatrial node cells, explanted beating sinoatrial node preparation, telemetric in vivo electrocardiography, echocardiography, and in vivo electrophysiology was performed. On the basis of these experiments we demonstrate that mice lacking the pacemaker channel HCN1 display congenital SND characterized by bradycardia, sinus dysrhythmia, prolonged sinoatrial node recovery time, increased sinoatrial conduction time, and recurrent sinus pauses. As a consequence of SND, HCN1-deficient mice display a severely reduced cardiac output. CONCLUSIONS: We propose that HCN1 stabilizes the leading pacemaker region within the sinoatrial node and hence is crucial for stable heart rate and regular beat-to-beat variation. Furthermore, we suggest that HCN1-deficient mice may be a valuable genetic disease model for human SND.


Subject(s)
Disease Models, Animal , Hyperpolarization-Activated Cyclic Nucleotide-Gated Channels/deficiency , Potassium Channels/deficiency , Sick Sinus Syndrome/physiopathology , Animals , Cardiac Output/physiology , Female , Heart Rate/physiology , Hyperpolarization-Activated Cyclic Nucleotide-Gated Channels/genetics , Hyperpolarization-Activated Cyclic Nucleotide-Gated Channels/metabolism , Male , Mice , Mice, Inbred C57BL , Mice, Knockout , Potassium Channels/genetics , Potassium Channels/metabolism , Sinoatrial Node/metabolism , Sinoatrial Node/physiopathology
8.
J Biol Chem ; 288(11): 7580-7589, 2013 Mar 15.
Article in English | MEDLINE | ID: mdl-23382386

ABSTRACT

Most ion channels consist of the principal ion-permeating core subunit(s) and accessory proteins that are assembled with the channel core. The biological functions of the latter proteins are diverse and include the regulation of the biophysical properties of the ion channel, its connection to signaling pathways and the control of its cell surface expression. There is recent evidence that native hyperpolarization-activated cyclic nucleotide-gated channel complexes (HCN1-4) also contain accessory subunits, among which TRIP8b (tetratricopeptide repeat-containing Rab8b-interacting protein) has been most extensively studied. Here, we identify KCTD3, a so far uncharacterized member of the potassium channel tetramerization-domain containing (KCTD) protein family as an HCN3-interacting protein. KCTD3 is widely expressed in brain and some non-neuronal tissues and colocalizes with HCN3 in specific regions of the brain including hypothalamus. Within the HCN channel family, KCTD3 specifically binds to HCN3 and leads to a profound up-regulation of cell surface expression and current density of this channel. HCN3 can also functionally interact with TRIP8b; however, we found no evidence for channel complexes containing both TRIP8b and KCTD3. The C terminus of HCN3 is crucially required for functional interaction with KCTD3. Replacement of the cytosolic C terminus of HCN2 by the corresponding domain of HCN3 renders HCN2 sensitive to regulation by KCTD3. The C-terminal-half of KCTD3 is sufficient for binding to HCN3. However, the complete protein including the N-terminal tetramerization domain is needed for HCN3 current up-regulation. Together, our experiments indicate that KCTD3 is an accessory subunit of native HCN3 complexes.


Subject(s)
Cyclic Nucleotide-Gated Cation Channels/metabolism , Gene Expression Regulation , Potassium Channels/metabolism , Potassium Channels/physiology , Up-Regulation , Animals , Biophysics/methods , Brain/embryology , Brain/metabolism , Cell Membrane/metabolism , Cytosol/metabolism , Electrophysiology/methods , Genetic Vectors , HEK293 Cells , Humans , Hyperpolarization-Activated Cyclic Nucleotide-Gated Channels , Hypothalamus/metabolism , Mice , Microscopy, Fluorescence/methods , Patch-Clamp Techniques , Phylogeny , Potassium Channels/chemistry , Protein Interaction Mapping , Protein Structure, Tertiary , Two-Hybrid System Techniques
9.
PLoS One ; 6(2): e17078, 2011 Feb 14.
Article in English | MEDLINE | ID: mdl-21347269

ABSTRACT

Opening of hyperpolarization-activated cyclic nucleotide-gated (HCN) channels is facilitated by direct binding of cyclic nucleotides to a cyclic nucleotide-binding domain (CNBD) in the C-terminus. Here, we show for the first time that in the HCN2 channel cGMP can also exert an inhibitory effect on gating via cGMP-dependent protein kinase II (cGKII)-mediated phosphorylation. Using coimmunoprecipitation and immunohistochemistry we demonstrate that cGKII and HCN2 interact and colocalize with each other upon heterologous expression as well as in native mouse brain. We identify the proximal C-terminus of HCN2 as binding region of cGKII and show that cGKII phosphorylates HCN2 at a specific serine residue (S641) in the C-terminal end of the CNBD. The cGKII shifts the voltage-dependence of HCN2 activation to 2-5 mV more negative voltages and, hence, counteracts the stimulatory effect of cGMP on gating. The inhibitory cGMP effect can be either abolished by mutation of the phosphorylation site in HCN2 or by impairing the catalytic domain of cGKII. By contrast, the inhibitory effect is preserved in a HCN2 mutant carrying a CNBD deficient for cGMP binding. Our data suggest that bidirectional regulation of HCN2 gating by cGMP contributes to cellular fine-tuning of HCN channel activity.


Subject(s)
Cyclic GMP-Dependent Protein Kinases/metabolism , Ion Channels/metabolism , Animals , Brain/cytology , Brain/metabolism , Cyclic GMP-Dependent Protein Kinase Type II , Gene Expression Regulation , HEK293 Cells , Humans , Hyperpolarization-Activated Cyclic Nucleotide-Gated Channels , Ion Channel Gating , Ion Channels/antagonists & inhibitors , Ion Channels/chemistry , Mice , Neurons/metabolism , Phosphorylation , Potassium Channels , Protein Binding
10.
J Neurosci ; 31(1): 133-41, 2011 Jan 05.
Article in English | MEDLINE | ID: mdl-21209198

ABSTRACT

The cyclic nucleotide-gated (CNG) cation channel of rod photoreceptors is a heterotetramer consisting of homologous CNGA1 and CNGB1a subunits. While CNGA1 is indispensable for channel activation, the specific role of CNGB1a in this process has remained elusive. Here, we show that the N-terminal glutamic acid-rich protein (GARP) domain of CNGB1a and soluble GARP2, which corresponds to the proximal portion of the GARP domain, act as autoinhibitory domains that decrease the opening probability of the CNG channel. In the presence of mutations that structurally impair the cyclic nucleotide-binding domain (CNBD) of CNGB1a, the GARP domain completely abolishes channel activity. In agreement with an inhibitory function of GARP, the activity of mutant CNG channels could be fully restored by deletion of the GARP domain. We identified two sequences within the GARP domain that confer most of the inhibitory effect and demonstrate that the profound inhibition imposed by the GARP domain is caused by direct and autonomous protein-protein interaction with the CNG channel complex. In wild-type rod CNG channels, this inhibitory effect can be relieved by binding of cGMP to the CNBD of CNGB1a. In conclusion, we propose that the N terminus of CNGB1a and soluble GARPs act as molecular gate keepers that control the activation of heteromeric rod CNG channels. Our results suggest that the GARP domain has evolved in rod photoreceptors to reduce current noise resulting from openings of CNG channels in the absence of cGMP.


Subject(s)
Cyclic Nucleotide-Gated Cation Channels/metabolism , Ion Channel Gating/physiology , Membrane Potentials/physiology , Nerve Tissue Proteins/metabolism , Amino Acid Sequence , Animals , Biophysical Phenomena/drug effects , Biophysical Phenomena/genetics , Biotin/analogs & derivatives , Biotin/metabolism , Biotinylation , Cell Line, Transformed , Cyclic AMP/pharmacology , Cyclic GMP/pharmacology , Cyclic Nucleotide-Gated Cation Channels/deficiency , Cyclic Nucleotide-Gated Cation Channels/genetics , Electric Stimulation , Fluorescence Resonance Energy Transfer/methods , Gene Expression Regulation/drug effects , Gene Expression Regulation/genetics , Humans , Immunoprecipitation/methods , Ion Channel Gating/drug effects , Luminescent Proteins/genetics , Membrane Potentials/drug effects , Membrane Potentials/genetics , Mice , Mice, Knockout , Models, Molecular , Molecular Sequence Data , Mutation/genetics , Nerve Tissue Proteins/genetics , Patch-Clamp Techniques/methods , Protein Binding/physiology , Protein Structure, Tertiary/genetics , Protein Structure, Tertiary/physiology , Succinimides/metabolism , Transfection/methods
11.
Cell Mol Life Sci ; 68(1): 125-37, 2011 Jan.
Article in English | MEDLINE | ID: mdl-20623157

ABSTRACT

Neuronal hyperpolarization-activated cyclic nucleotide-gated (HCN) channels are known to modulate spontaneous activity, resting membrane potential, input resistance, afterpotential, rebound activity, and dendritic integration. To evaluate the role of HCN2 for hippocampal synaptic plasticity, we recorded long-term potentiation (LTP) in the direct perforant path (PP) to CA1 pyramidal cells. LTP was enhanced in mice carrying a global deletion of the channel (HCN2(-/-)) but not in a pyramidal neuron-restricted knockout. This precludes an influence of HCN2 located in postsynaptic pyramidal neurons. Additionally, the selective HCN blocker zatebradine reduced the activity of oriens-lacunosum moleculare interneurons in wild-type but not HCN2(-/-) mice and decreased the frequency of spontaneous inhibitory currents in postsynaptic CA1 pyramidal cells. Finally, we found amplified LTP in the PP of mice carrying an interneuron-specific deletion of HCN2. We conclude that HCN2 channels in inhibitory interneurons modulate synaptic plasticity in the PP by facilitating the GABAergic output onto pyramidal neurons.


Subject(s)
CA1 Region, Hippocampal/metabolism , Interneurons/metabolism , Ion Channels/physiology , Long-Term Potentiation/physiology , Perforant Pathway/physiology , Animals , Gene Deletion , Hyperpolarization-Activated Cyclic Nucleotide-Gated Channels , Ion Channels/genetics , Mice , Perforant Pathway/metabolism , Potassium Channels
12.
PLoS One ; 5(1): e8969, 2010 Jan 29.
Article in English | MEDLINE | ID: mdl-20126465

ABSTRACT

Retinitis pigmentosa (RP) is a severe hereditary eye disorder characterized by progressive degeneration of photoreceptors and subsequent loss of vision. Two of the RP associated mutations were found in the CNGB1 gene that encodes the B subunit of the rod cyclic nucleotide-gated channel (CNGB1a). One of them (c.3444+1G>A) is located at the donor site of exon 32 and has been proposed to result in a frameshift and truncation of the last 28 aa of the corresponding protein. However, this ambiguous conclusion was not verified by experimental data. Recently, another study reported that the last 28 aa of CNGB1a harbor a motif required for the proper targeting of this subunit to rod photoreceptor outer segments. This suggests that defective targeting is the major cause for the RP phenotype in affected patients. Here, we investigated the splicing of c.3444+1G>A by exon trapping experiments and could demonstrate that instead of the proposed truncation of the last 28 aa this mutation leads to replacement of the last 170 aa of CNGB1a by 68 unrelated amino acids. The 170 aa deletion covers the complete distal C-terminus including the last 10 aa of an important alpha (alphaC) helix within the ligand-binding domain of CNGB1a. When expressed in a heterologous expression system the corresponding mutant full-length CNGB1a subunit was more susceptible to proteosomal degradation compared to the wild-type counterpart. In conclusion, our experimental data do not support the hypothesis proposed by the original study on the c.3444+1G>A mutation. Based on this, we suggest that apart from the defective targeting other mechanisms may be responsible for the RP phenotype in affected individuals.


Subject(s)
Cyclic Nucleotide-Gated Cation Channels/genetics , Exons , Mutation , Retinitis Pigmentosa/genetics , Amino Acid Sequence , Blotting, Western , Cyclic Nucleotide-Gated Cation Channels/chemistry , Humans , Molecular Sequence Data
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