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1.
J Pharmacol Exp Ther ; 389(1): 118-127, 2024 Mar 15.
Article in English | MEDLINE | ID: mdl-38290975

ABSTRACT

Heightened excitability of vagal sensory neurons in inflammatory visceral diseases contributes to unproductive and difficult-to-treat neuronally based symptoms such as visceral pain and dysfunction. Identification of targets and modulators capable of regulating the excitability of vagal sensory neurons may lead to novel therapeutic options. KCNQ1-KCNQ5 genes encode KV7.1-7.5 potassium channel α-subunits. Homotetrameric or heterotetrameric KV7.2-7.5 channels can generate the so-called M-current (IM) known to decrease the excitability of neurons including visceral sensory neurons. This study aimed to address the hypothesis that KV7.2/7.3 channels are key regulators of vagal sensory neuron excitability by evaluating the effects of KCNQ2/3-selective activator, ICA-069673, on IM in mouse nodose neurons and determining its effects on excitability and action potential firings using patch clamp technique. The results showed that ICA-069673 enhanced IM density, accelerated the activation, and delayed the deactivation of M-channels in a concentration-dependent manner. ICA-069673 negatively shifted the voltage-dependent activation of IM and increased the maximal conductance. Consistent with its effects on IM, ICA-069673 induced a marked hyperpolarization of resting potential and reduced the input resistance. The hyperpolarizing effect was more pronounced in partially depolarized neurons. Moreover, ICA-069673 caused a 3-fold increase in the minimal amount of depolarizing current needed to evoke an action potential, and significantly limited the action potential firings in response to sustained suprathreshold stimulations. ICA-069673 had no effect on membrane currents when Kcnq2 and Kcnq3 were deleted. These results indicate that opening KCNQ2/3-mediated M-channels is sufficient to suppress the excitability and enhance spike accommodation in vagal visceral sensory neurons. SIGNIFICANCE STATEMENT: This study supports the hypothesis that selectively activating KCNQ2/3-mediated M-channels is sufficient to suppress the excitability and action potential firings in vagal sensory neurons. These results provide evidence in support of further investigations into the treatment of various visceral disorders that involve nociceptor hyperexcitability with selective KCNQ2/3 M-channel openers.


Subject(s)
KCNQ2 Potassium Channel , KCNQ3 Potassium Channel , Mice , Animals , Membrane Potentials , Action Potentials , Sensory Receptor Cells
2.
Nat Commun ; 14(1): 6632, 2023 10 19.
Article in English | MEDLINE | ID: mdl-37857637

ABSTRACT

The human voltage-gated potassium channel KCNQ2/KCNQ3 carries the neuronal M-current, which helps to stabilize the membrane potential. KCNQ2 can be activated by analgesics and antiepileptic drugs but their activation mechanisms remain unclear. Here we report cryo-electron microscopy (cryo-EM) structures of human KCNQ2-CaM in complex with three activators, namely the antiepileptic drug cannabidiol (CBD), the lipid phosphatidylinositol 4,5-bisphosphate (PIP2), and HN37 (pynegabine), an antiepileptic drug in the clinical trial, in an either closed or open conformation. The activator-bound structures, along with electrophysiology analyses, reveal the binding modes of two CBD, one PIP2, and two HN37 molecules in each KCNQ2 subunit, and elucidate their activation mechanisms on the KCNQ2 channel. These structures may guide the development of antiepileptic drugs and analgesics that target KCNQ2.


Subject(s)
Analgesics , Anticonvulsants , Humans , Anticonvulsants/pharmacology , Cryoelectron Microscopy , Ligands , Membrane Potentials , KCNQ2 Potassium Channel/chemistry , KCNQ2 Potassium Channel/metabolism , KCNQ3 Potassium Channel/metabolism
3.
Life Sci Alliance ; 6(12)2023 12.
Article in English | MEDLINE | ID: mdl-37748809

ABSTRACT

Voltage-sensitive potassium channels play an important role in controlling membrane potential and ionic homeostasis in the gut and have been implicated in gastrointestinal (GI) cancers. Through large-scale analysis of 897 patients with gastro-oesophageal adenocarcinomas (GOAs) coupled with in vitro models, we find KCNQ family genes are mutated in ∼30% of patients, and play therapeutically targetable roles in GOA cancer growth. KCNQ1 and KCNQ3 mediate the WNT pathway and MYC to increase proliferation through resultant effects on cadherin junctions. This also highlights novel roles of KCNQ3 in non-excitable tissues. We also discover that activity of KCNQ3 sensitises cancer cells to existing potassium channel inhibitors and that inhibition of KCNQ activity reduces proliferation of GOA cancer cells. These findings reveal a novel and exploitable role of potassium channels in the advancement of human cancer, and highlight that supplemental treatments for GOAs may exist through KCNQ inhibitors.


Subject(s)
Adenocarcinoma , KCNQ Potassium Channels , Humans , KCNQ Potassium Channels/genetics , KCNQ Potassium Channels/metabolism , KCNQ3 Potassium Channel/genetics , KCNQ3 Potassium Channel/metabolism , KCNQ2 Potassium Channel/physiology , Adenocarcinoma/genetics
4.
J Neurosci ; 43(43): 7073-7083, 2023 10 25.
Article in English | MEDLINE | ID: mdl-37648450

ABSTRACT

Neuronal Kv7 voltage-gated potassium channels generate the M-current and regulate neuronal excitability. Here, we report that dehydroepiandrosterone sulfate (DHEAS) is an endogenous Kv7 channel modulator that attenuates Gq-coupled receptor-induced M-current suppression. DHEAS reduced muscarinic agonist-induced Kv7-current suppression of Kv7.1, Kv7.2, Kv7.4, or Kv7.5 homomeric currents and endogenous M-currents in rat sympathetic ganglion neurons. However, DHEAS per se did not alter the voltage dependence of these Kv7 homomeric channels or the m1 receptor-induced activation of phospholipase C or protein kinase C. DHEAS-treated Kv7.2 homomeric currents became resistant to depletion of phosphatidylinositol 4,5-bisphosphate (PIP2) induced by voltage-activated phosphatase, Ci-VSP or eVSP. Our computational models predicted a novel binding site for DHEAS in the cytoplasmic domain of Kv7 subunits. A single-point mutation of the predicted key histidine into cysteine in the rat Kv7.2 subunit, rKv7.2(H558C), resulted in a loss of effects of DHEAS on muscarinic Kv7 current suppression. Furthermore, in vivo administration of DHEAS in mice of both sexes reduced late phase pain responses in the formalin paw test. However, it did not have effects on early phase responses in the formalin paw test or responses in the hot plate test. Coadministration of a selective Kv7 inhibitor, XE991, and DHEAS eliminated analgesic effects of DHEAS in late phase responses in the formalin paw test. Collectively, these results suggest that DHEAS attenuates M-current suppression by stabilizing PIP2-Kv7 subunit interaction and can mitigate inflammatory pain.SIGNIFICANCE STATEMENT M-current suppression induced by stimulation of Gq-coupled receptors is a form of Kv7 current modulation that can reversibly increase neuronal excitability. This study demonstrates that DHEAS, an endogenous steroid hormone, is a novel Kv7 channel modulator that can attenuate M-current suppression without affecting basal Kv7 channel kinetics. Administration of DHEAS in vivo alleviated inflammatory pain in rodents. These results suggest that the degree of M-current suppression can be dynamically regulated by small molecules. Therefore, this novel form of Kv7 channel regulation holds promising potential as a therapeutic target for sensitized nervous activities, such as inflammatory pain.


Subject(s)
KCNQ2 Potassium Channel , Muscarinic Agonists , Male , Female , Mice , Rats , Animals , Dehydroepiandrosterone Sulfate , KCNQ2 Potassium Channel/metabolism , Muscarinic Agonists/pharmacology , Pain/drug therapy , Formaldehyde , KCNQ3 Potassium Channel/genetics , KCNQ3 Potassium Channel/metabolism
5.
J Neurosci ; 43(38): 6479-6494, 2023 09 20.
Article in English | MEDLINE | ID: mdl-37607817

ABSTRACT

Gain-of-function (GOF) pathogenic variants in the potassium channels KCNQ2 and KCNQ3 lead to hyperexcitability disorders such as epilepsy and autism spectrum disorders. However, the underlying cellular mechanisms of how these variants impair forebrain function are unclear. Here, we show that the R201C variant in KCNQ2 has opposite effects on the excitability of two types of mouse pyramidal neurons of either sex, causing hyperexcitability in layer 2/3 (L2/3) pyramidal neurons and hypoexcitability in CA1 pyramidal neurons. Similarly, the homologous R231C variant in KCNQ3 leads to hyperexcitability in L2/3 pyramidal neurons and hypoexcitability in CA1 pyramidal neurons. However, the effects of KCNQ3 gain-of-function on excitability are specific to superficial CA1 pyramidal neurons. These findings reveal a new level of complexity in the function of KCNQ2 and KCNQ3 channels in the forebrain and provide a framework for understanding the effects of gain-of-function variants and potassium channels in the brain.SIGNIFICANCE STATEMENT KCNQ2/3 gain-of-function (GOF) variants lead to severe forms of neurodevelopmental disorders, but the mechanisms by which these channels affect neuronal activity are poorly understood. In this study, using a series of transgenic mice we demonstrate that the same KCNQ2/3 GOF variants can lead to either hyperexcitability or hypoexcitability in different types of pyramidal neurons [CA1 vs layer (L)2/3]. Additionally, we show that expression of the recurrent KCNQ2 GOF variant R201C in forebrain pyramidal neurons could lead to seizures and SUDEP. Our data suggest that the effects of KCNQ2/3 GOF variants depend on specific cell types and brain regions, possibly accounting for the diverse range of phenotypes observed in individuals with KCNQ2/3 GOF variants.


Subject(s)
Gain of Function Mutation , KCNQ2 Potassium Channel , KCNQ3 Potassium Channel , Neurodevelopmental Disorders , Animals , Mice , KCNQ2 Potassium Channel/genetics , Mice, Transgenic , Potassium Channels , Prosencephalon , Pyramidal Cells , KCNQ3 Potassium Channel/genetics
6.
Nat Commun ; 14(1): 3547, 2023 06 15.
Article in English | MEDLINE | ID: mdl-37321992

ABSTRACT

Autism spectrum disorders (ASD) represent neurodevelopmental disorders characterized by social deficits, repetitive behaviors, and various comorbidities, including epilepsy. ANK2, which encodes a neuronal scaffolding protein, is frequently mutated in ASD, but its in vivo functions and disease-related mechanisms are largely unknown. Here, we report that mice with Ank2 knockout restricted to cortical and hippocampal excitatory neurons (Ank2-cKO mice) show ASD-related behavioral abnormalities and juvenile seizure-related death. Ank2-cKO cortical neurons show abnormally increased excitability and firing rate. These changes accompanied decreases in the total level and function of the Kv7.2/KCNQ2 and Kv7.3/KCNQ3 potassium channels and the density of these channels in the enlengthened axon initial segment. Importantly, the Kv7 agonist, retigabine, rescued neuronal excitability, juvenile seizure-related death, and hyperactivity in Ank2-cKO mice. These results suggest that Ank2 regulates neuronal excitability by regulating the length of and Kv7 density in the AIS and that Kv7 channelopathy is involved in Ank2-related brain dysfunctions.


Subject(s)
Epilepsy , KCNQ Potassium Channels , Animals , Mice , Epilepsy/metabolism , KCNQ Potassium Channels/genetics , KCNQ2 Potassium Channel/genetics , KCNQ2 Potassium Channel/metabolism , KCNQ3 Potassium Channel/metabolism , Neurons/metabolism , Seizures/genetics , Seizures/metabolism
7.
Commun Biol ; 6(1): 644, 2023 06 15.
Article in English | MEDLINE | ID: mdl-37322081

ABSTRACT

Voltage-gated potassium (Kv) channels in the KCNQ subfamily serve essential roles in the nervous system, heart, muscle and epithelia. Different heteromeric KCNQ complexes likely serve distinct functions in the brain but heteromer subtype-specific small molecules for research or therapy are lacking. Rosemary (Salvia rosmarinus) is an evergreen plant used medicinally for millennia for neurological and other disorders. Here, we report that rosemary extract is a highly efficacious opener of heteromeric KCNQ3/5 channels, with weak effects on KCNQ2/3. Using functional screening we find that carnosic acid, a phenolic diterpene from rosemary, is a potent, highly efficacious, PIP2 depletion-resistant KCNQ3 opener with lesser effects on KCNQ5 and none on KCNQ1 or KCNQ2. Carnosic acid is also highly selective for KCNQ3/5 over KCNQ2/3 heteromers. Medicinal chemistry, in silico docking, and mutagenesis reveal that carboxylate-guanidinium ionic bonding with an S4-5 linker arginine underlies the KCNQ3 opening proficiency of carnosic acid, the effects of which on KCNQ3/5 suggest unique therapeutic potential and a molecular basis for ancient neurotherapeutic use of rosemary.


Subject(s)
Plants, Medicinal , Rosmarinus , KCNQ3 Potassium Channel/chemistry , KCNQ2 Potassium Channel/chemistry , Protein Isoforms
8.
Acta Pharmacol Sin ; 44(8): 1589-1599, 2023 Aug.
Article in English | MEDLINE | ID: mdl-36932231

ABSTRACT

Mutations in the KCNQ2 gene encoding KV7.2 subunit that mediates neuronal M-current cause a severe form of developmental and epileptic encephalopathy (DEE). Electrophysiological evaluation of KCNQ2 mutations has been proved clinically useful in improving outcome prediction and choosing rational anti-seizure medications (ASMs). In this study we described the clinical characteristics, electrophysiological phenotypes and the in vitro response to KCNQ openers of five KCNQ2 pore mutations (V250A, N258Y, H260P, A265T and G290S) from seven patients diagnosed with KCNQ2-DEE. The KCNQ2 variants were transfected into Chinese hamster ovary (CHO) cells alone, in combination with KCNQ3 (1:1) or with wild-type KCNQ2 (KCNQ2-WT) and KCNQ3 in a ratio of 1:1:2, respectively. Their expression and electrophysiological function were assessed. When transfected alone or in combination with KCNQ3, none of these mutations affected the membrane expression of KCNQ2, but most failed to induce a potassium current except A265T, in which trace currents were observed when co-transfected with KCNQ3. When co-expressed with KCNQ2-WT and KCNQ3 (1:1:2), the currents at 0 mV of these mutations were decreased by 30%-70% compared to the KCNQ2/3 channel, which could be significantly rescued by applying KCNQ openers including the approved antiepileptic drug retigabine (RTG, 10 µM), as well as two candidates subjected to clinical trials, pynegabine (HN37, 1 µM) and XEN1101 (1 µM). These newly identified pathologic variants enrich the KCNQ2-DEE mutation hotspots in the pore-forming domain. This electrophysiological study provides a rational basis for personalized therapy with KCNQ openers in DEE patients carrying loss-of-function (LOF) mutations in KCNQ2.


Subject(s)
Brain Diseases , KCNQ2 Potassium Channel , Cricetinae , Animals , KCNQ2 Potassium Channel/genetics , KCNQ2 Potassium Channel/metabolism , KCNQ3 Potassium Channel/genetics , KCNQ3 Potassium Channel/metabolism , CHO Cells , Cricetulus , Mutation , Brain Diseases/genetics
9.
Pharmacology ; 108(2): 138-146, 2023.
Article in English | MEDLINE | ID: mdl-36516801

ABSTRACT

INTRODUCTION: Voltage-gated Kv7/M potassium channels play an essential role in the control of membrane potential and neuronal excitability. Fangchinoline, a bisbenzylisoquinoline alkaloid, displays extensive biological activities including antitumor, anti-inflammatory, and antihypertension effects. In this study, we investigated the effects of fangchinoline on Kv7/M channels. METHODS: A perforated whole-cell patch technique was used to record Kv7 currents from HEK293 cells and M-type currents from mouse dorsal root ganglion (DRG) neurons. RESULTS: Fangchinoline inhibited Kv7.2/Kv7.3 currents in a concentration-dependent manner, with an IC50 of 9.5 ± 1.2 µM. Fangchinoline significantly inhibited Kv7.1, Kv7.2, Kv7.3, Kv7.4, and Kv7.3/Kv7.5 channels without selective effects. Furthermore, fangchinoline significantly slowed the activation of Kv7.1-Kv7.5 channels and inhibited native M-channel currents of DRG neurons. CONCLUSION: Taken together, our findings indicate that fangchinoline concentration-dependently inhibited Kv7/M channel currents.


Subject(s)
Benzylisoquinolines , Humans , Mice , Animals , HEK293 Cells , Membrane Potentials , Benzylisoquinolines/pharmacology , KCNQ2 Potassium Channel , KCNQ3 Potassium Channel
10.
J Biol Chem ; 299(2): 102819, 2023 02.
Article in English | MEDLINE | ID: mdl-36549648

ABSTRACT

Zinc (Zn) is an essential trace element; it serves as a cofactor for a great number of enzymes, transcription factors, receptors, and other proteins. Zinc is also an important signaling molecule, which can be released from intracellular stores into the cytosol or extracellular space, for example, during synaptic transmission. Amongst cellular effects of zinc is activation of Kv7 (KCNQ, M-type) voltage-gated potassium channels. Here, we investigated relationships between Kv7 channel inhibition by Ca2+/calmodulin (CaM) and zinc-mediated potentiation. We show that Zn2+ ionophore, zinc pyrithione (ZnPy), can prevent or reverse Ca2+/CaM-mediated inhibition of Kv7.2. In the presence of both Ca2+ and Zn2+, the Kv7.2 channels lose most of their voltage dependence and lock in an open state. In addition, we demonstrate that mutations that interfere with CaM binding to Kv7.2 and Kv7.3 reduced channel membrane abundance and activity, but these mutants retained zinc sensitivity. Moreover, the relative efficacy of ZnPy to activate these mutants was generally greater, compared with the WT channels. Finally, we show that zinc sensitivity was retained in Kv7.2 channels assembled with mutant CaM with all four EF hands disabled, suggesting that it is unlikely to be mediated by CaM. Taken together, our findings indicate that zinc is a potent Kv7 stabilizer, which may protect these channels from physiological inhibitory effects of neurotransmitters and neuromodulators, protecting neurons from overactivity.


Subject(s)
Calcium , Calmodulin , Intracellular Space , KCNQ Potassium Channels , Zinc , Calcium Signaling , Calmodulin/metabolism , KCNQ Potassium Channels/antagonists & inhibitors , KCNQ Potassium Channels/chemistry , KCNQ Potassium Channels/genetics , KCNQ Potassium Channels/metabolism , Mutation , Protein Binding/genetics , Zinc/pharmacology , Zinc/metabolism , Intracellular Space/metabolism , Calcium/metabolism , KCNQ2 Potassium Channel/antagonists & inhibitors , KCNQ2 Potassium Channel/chemistry , KCNQ2 Potassium Channel/genetics , KCNQ2 Potassium Channel/metabolism , KCNQ3 Potassium Channel/antagonists & inhibitors , KCNQ3 Potassium Channel/chemistry , KCNQ3 Potassium Channel/genetics , KCNQ3 Potassium Channel/metabolism
11.
Acta Neurol Scand ; 146(6): 699-707, 2022 Dec.
Article in English | MEDLINE | ID: mdl-36225112

ABSTRACT

With the development and application of next-generation sequencing technology, the aetiological diagnosis of genetic epilepsy is rapidly becoming easier and less expensive. Additionally, there is a growing body of research into precision therapy based on genetic diagnosis. The numerous genes in the potassium ion channel family constitute the largest family of ion channels: this family is divided into different subtypes. Potassium ion channels play a crucial role in the electrical activity of neurons and are directly involved in the mechanism of epileptic seizures. In China, scientific research on genetic diagnosis and studies of precision therapy for genetic epilepsy are progressing rapidly. Many cases of epilepsy caused by mutation of potassium channel genes have been identified, and several potassium channel gene targets and drug candidates have been discovered. The purpose of this review is to briefly summarize the progress of research on the precise diagnosis and treatment of potassium ion channel-related genetic epilepsy, especially the research conducted in China. Here in, we review several large cohort studies on the genetic diagnosis of epilepsy in China in recent years, summarized the proportion of potassium channel genes. We focus on the progress of precison therapy on some hot epilepsy related potassium channel genes: KCNA1, KCNA2, KCNB1, KCNC1, KCND2, KCNQ2, KCNQ3, KCNMA1, and KCNT1.


Subject(s)
Epilepsy , Potassium Channels , Humans , Potassium Channels/genetics , KCNQ3 Potassium Channel/genetics , KCNQ2 Potassium Channel/genetics , Epilepsy/diagnosis , Epilepsy/genetics , Mutation/genetics , Shaw Potassium Channels/genetics , Potassium Channels, Sodium-Activated/genetics , Nerve Tissue Proteins/genetics
12.
J Med Chem ; 65(16): 11340-11364, 2022 08 25.
Article in English | MEDLINE | ID: mdl-35972998

ABSTRACT

Neuronal Kv7 channels represent important pharmacological targets for hyperexcitability disorders including epilepsy. Retigabine is the prototype Kv7 activator clinically approved for seizure treatment; however, severe side effects associated with long-term use have led to its market discontinuation. Building upon the recently described cryoEM structure of Kv7.2 complexed with retigabine and on previous structure-activity relationship studies, a small library of retigabine analogues has been designed, synthesized, and characterized for their Kv7 opening ability using both fluorescence- and electrophysiology-based assays. Among all tested compounds, 60 emerged as a potent and photochemically stable neuronal Kv7 channel activator. Compared to retigabine, compound 60 displayed a higher brain/plasma distribution ratio, a longer elimination half-life, and more potent and effective anticonvulsant effects in an acute seizure model in mice. Collectively, these data highlight compound 60 as a promising lead compound for the development of novel Kv7 activators for the treatment of hyperexcitability diseases.


Subject(s)
Anticonvulsants , KCNQ3 Potassium Channel , Animals , Anticonvulsants/chemistry , Anticonvulsants/pharmacology , Anticonvulsants/therapeutic use , Carbamates , KCNQ2 Potassium Channel , Mice , Phenylenediamines/chemistry , Phenylenediamines/pharmacology , Phenylenediamines/therapeutic use , Seizures/chemically induced , Seizures/drug therapy
13.
Neuron ; 110(14): 2201-2203, 2022 07 20.
Article in English | MEDLINE | ID: mdl-35863316

ABSTRACT

In this issue of Neuron, Lopez et al. report that KCNQ2 (potassium voltage-gated channel subfamily Q member 2) is essential for the sustained antidepressant-like effects of ketamine in glutamatergic neurons of the ventral hippocampus. This study implies that KCNQ2 activators can be novel antidepressants without the ketamine side effects.


Subject(s)
KCNQ3 Potassium Channel , Ketamine , Antidepressive Agents/pharmacology , Hippocampus/metabolism , KCNQ2 Potassium Channel/genetics , KCNQ2 Potassium Channel/metabolism , Ketamine/pharmacology
14.
Pflugers Arch ; 474(7): 721-732, 2022 07.
Article in English | MEDLINE | ID: mdl-35459955

ABSTRACT

KCNQ channels participate in the physiology of several cell types. In neurons of the central nervous system, the primary subunits are KCNQ2, 3, and 5. Activation of these channels silence the neurons, limiting action potential duration and preventing high-frequency action potential burst. Loss-of-function mutations of the KCNQ channels are associated with a wide spectrum of phenotypes characterized by hyperexcitability. Hence, pharmacological activation of these channels is an attractive strategy to treat epilepsy and other hyperexcitability conditions as are the evolution of stroke and traumatic brain injury. In this work we show that triclosan, a bactericide widely used in personal care products, activates the KCNQ3 channels but not the KCNQ2. Triclosan induces a voltage shift in the activation, increases the conductance, and slows the closing of the channel. The response is independent of PIP2. Molecular docking simulations together with site-directed mutagenesis suggest that the putative binding site is in the voltage sensor domain. Our results indicate that triclosan is a new activator for KCNQ channels.


Subject(s)
Epilepsy , Triclosan , Epilepsy/metabolism , Humans , KCNQ Potassium Channels/metabolism , KCNQ1 Potassium Channel , KCNQ2 Potassium Channel/chemistry , KCNQ2 Potassium Channel/genetics , KCNQ2 Potassium Channel/metabolism , KCNQ3 Potassium Channel/chemistry , KCNQ3 Potassium Channel/genetics , KCNQ3 Potassium Channel/metabolism , Molecular Docking Simulation , Neurotransmitter Agents , Triclosan/pharmacology
15.
J Child Neurol ; 37(6): 517-523, 2022 05.
Article in English | MEDLINE | ID: mdl-35384780

ABSTRACT

BACKGROUND AND PURPOSE: Mutations in KCNQ3 have classically been associated with benign familial neonatal and infantile seizures and more recently identified in patients with neurodevelopmental disorders and abnormal electroencephalogram (EEG) findings. We present 4 affected patients from a family with a pathogenic mutation in KCNQ3 with a unique constellation of clinical findings. METHODS: A family of 3 affected siblings and mother sharing a KCNQ3 pathogenic variant are described, including clinical history, genetic results, and EEG and magnetic resonance imaging (MRI) findings. RESULTS: This family shows a variety of clinical manifestations, including neonatal seizures, developmental delays, autism spectrum disorder, and anxiety. One child developed absence epilepsy, 2 children have infrequent convulsive seizures that have persisted into childhood, and their parent developed adult-onset epilepsy. An underlying c.1091G>A (R364H) variant in KCNQ3 was found in all affected individuals. CONCLUSIONS: The phenotypic variability of KCNQ3 channelopathies continues to expand as more individuals and families are described, and the variant identified in this family adds to the understanding of the manifestations of KCNQ3-related disorders.


Subject(s)
Epilepsy, Benign Neonatal , Epilepsy , KCNQ3 Potassium Channel , Adult , Autism Spectrum Disorder/genetics , Child , Epilepsy/genetics , Epilepsy, Benign Neonatal/genetics , Humans , Infant, Newborn , KCNQ3 Potassium Channel/genetics , Seizures/genetics
16.
Proc Natl Acad Sci U S A ; 119(13): e2117640119, 2022 03 29.
Article in English | MEDLINE | ID: mdl-35320039

ABSTRACT

KCNQ2 and KCNQ3 channels are associated with multiple neurodevelopmental disorders and are also therapeutic targets for neurological and neuropsychiatric diseases. For more than two decades, it has been thought that most KCNQ channels in the brain are either KCNQ2/3 or KCNQ3/5 heteromers. Here, we investigated the potential heteromeric compositions of KCNQ2-containing channels. We applied split-intein protein trans-splicing to form KCNQ2/5 tandems and coexpressed these with and without KCNQ3. Unexpectedly, we found that KCNQ2/5 tandems form functional channels independent of KCNQ3 in heterologous cells. Using mass spectrometry, we went on to demonstrate that KCNQ2 associates with KCNQ5 in native channels in the brain, even in the absence of KCNQ3. Additionally, our functional heterologous expression data are consistent with the formation of KCNQ2/3/5 heteromers. Thus, the composition of KCNQ channels is more diverse than has been previously recognized, necessitating a re-examination of the genotype/phenotype relationship of KCNQ2 pathogenic variants.


Subject(s)
KCNQ Potassium Channels , KCNQ3 Potassium Channel , Animals , Brain/metabolism , Genotype , KCNQ Potassium Channels/genetics , KCNQ Potassium Channels/metabolism , KCNQ2 Potassium Channel/genetics , KCNQ2 Potassium Channel/metabolism , KCNQ3 Potassium Channel/genetics , KCNQ3 Potassium Channel/metabolism , Mice , Nerve Tissue Proteins/metabolism , Phenotype , Protein Splicing
17.
Science ; 375(6583): eabh3021, 2022 02 25.
Article in English | MEDLINE | ID: mdl-35201886

ABSTRACT

Sleep quality declines with age; however, the underlying mechanisms remain elusive. We found that hyperexcitable hypocretin/orexin (Hcrt/OX) neurons drive sleep fragmentation during aging. In aged mice, Hcrt neurons exhibited more frequent neuronal activity epochs driving wake bouts, and optogenetic activation of Hcrt neurons elicited more prolonged wakefulness. Aged Hcrt neurons showed hyperexcitability with lower KCNQ2 expression and impaired M-current, mediated by KCNQ2/3 channels. Single-nucleus RNA-sequencing revealed adaptive changes to Hcrt neuron loss in the aging brain. Disruption of Kcnq2/3 genes in Hcrt neurons of young mice destabilized sleep, mimicking aging-associated sleep fragmentation, whereas the KCNQ-selective activator flupirtine hyperpolarized Hcrt neurons and rejuvenated sleep architecture in aged mice. Our findings demonstrate a mechanism underlying sleep instability during aging and a strategy to improve sleep continuity.


Subject(s)
Aging , Neurons/physiology , Orexins/physiology , Sleep Deprivation/physiopathology , Sleep , Wakefulness , Aminopyridines/pharmacology , Animals , CRISPR-Cas Systems , Electroencephalography , Electromyography , Female , Hypothalamic Area, Lateral/physiopathology , KCNQ2 Potassium Channel/genetics , KCNQ2 Potassium Channel/metabolism , KCNQ3 Potassium Channel/genetics , KCNQ3 Potassium Channel/metabolism , Male , Mice , Narcolepsy/genetics , Narcolepsy/physiopathology , Nerve Tissue Proteins/genetics , Nerve Tissue Proteins/metabolism , Neural Pathways , Optogenetics , Patch-Clamp Techniques , RNA-Seq , Sleep Quality
18.
Elife ; 112022 02 18.
Article in English | MEDLINE | ID: mdl-35179483

ABSTRACT

Cannabidiol (CBD), a chemical found in the Cannabis sativa plant, is a clinically effective antiepileptic drug whose mechanism of action is unknown. Using a fluorescence-based thallium flux assay, we performed a large-scale screen and found enhancement of flux through heterologously expressed human Kv7.2/7.3 channels by CBD. Patch-clamp recordings showed that CBD acts at submicromolar concentrations to shift the voltage dependence of Kv7.2/7.3 channels in the hyperpolarizing direction, producing a dramatic enhancement of current at voltages near -50 mV. CBD enhanced native M-current in mouse superior cervical ganglion starting at concentrations of 30 nM and also enhanced M-current in rat hippocampal neurons. The potent enhancement of Kv2/7.3 channels by CBD may contribute to its effectiveness as an antiepileptic drug by reducing neuronal hyperexcitability.


Subject(s)
Cannabidiol/pharmacology , KCNQ2 Potassium Channel/metabolism , KCNQ3 Potassium Channel/metabolism , Neurons/metabolism , Animals , CHO Cells , Cricetinae , Cricetulus , Electrophysiological Phenomena/drug effects , Gene Expression Regulation/drug effects , Humans , KCNQ2 Potassium Channel/genetics , KCNQ3 Potassium Channel/genetics , Neurons/drug effects , Rats
20.
Neuron ; 110(2): 237-247.e4, 2022 01 19.
Article in English | MEDLINE | ID: mdl-34767770

ABSTRACT

The KCNQ family (KCNQ1-KCNQ5) of voltage-gated potassium channels plays critical roles in many physiological and pathological processes. It is known that the channel opening of all KCNQs relies on the signaling lipid molecule phosphatidylinositol 4,5-bisphosphate (PIP2). However, the molecular mechanism of PIP2 in modulating the opening of the four neuronal KCNQ channels (KCNQ2-KCNQ5), which are essential for regulating neuronal excitability, remains largely elusive. Here, we report the cryoelectron microscopy (cryo-EM) structures of human KCNQ4 determined in complex with the activator ML213 in the absence or presence of PIP2. Two PIP2 molecules are identified in the open-state structure of KCNQ4, which act as a bridge to couple the voltage-sensing domain (VSD) and pore domain (PD) of KCNQ4 leading to the channel opening. Our findings reveal the binding sites and activation mechanisms of ML213 and PIP2 for neuronal KCNQ channels, providing a framework for therapeutic intervention targeting on these important channels.


Subject(s)
Phosphatidylinositol 4,5-Diphosphate , Potassium Channels, Voltage-Gated , Cryoelectron Microscopy , Humans , KCNQ Potassium Channels/metabolism , KCNQ2 Potassium Channel/genetics , KCNQ2 Potassium Channel/metabolism , KCNQ3 Potassium Channel/metabolism , Ligands , Neurons/metabolism , Phosphatidylinositol 4,5-Diphosphate/metabolism
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