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1.
Ann Neurol ; 95(2): 365-376, 2024 Feb.
Artículo en Inglés | MEDLINE | ID: mdl-37964487

RESUMEN

OBJECTIVE: Variants in several potassium channel genes, including KCNA1 and KCNA2, cause Developmental and Epileptic Encephalopathies (DEEs). We investigated whether variants in KCNA3, another mammalian homologue of the Drosophila shaker family and encoding for Kv1.3 subunits, can cause DEE. METHODS: Genetic analysis of study individuals was performed by routine exome or genome sequencing, usually of parent-offspring trios. Phenotyping was performed via a standard clinical questionnaire. Currents from wild-type and/or mutant Kv1.3 subunits were investigated by whole-cell patch-clamp upon their heterologous expression. RESULTS: Fourteen individuals, each carrying a de novo heterozygous missense variant in KCNA3, were identified. Most (12/14; 86%) had DEE with marked speech delay with or without motor delay, intellectual disability, epilepsy, and autism spectrum disorder. Functional analysis of Kv1.3 channels carrying each variant revealed heterogeneous functional changes, ranging from "pure" loss-of-function (LoF) effects due to faster inactivation kinetics, depolarized voltage-dependence of activation, slower activation kinetics, increased current inactivation, reduced or absent currents with or without dominant-negative effects, to "mixed" loss- and gain-of-function (GoF) effects. Compared to controls, Kv1.3 currents in lymphoblasts from 1 of the proband displayed functional changes similar to those observed upon heterologous expression of channels carrying the same variant. The antidepressant drug fluoxetine inhibited with similar potency the currents from wild-type and 1 of the Kv1.3 GoF variant. INTERPRETATION: We describe a novel association of de novo missense variants in KCNA3 with a human DEE, and provide evidence that fluoxetine might represent a potential targeted treatment for individuals carrying variants with significant GoF effects. ANN NEUROL 2024;95:365-376.


Asunto(s)
Trastorno del Espectro Autista , Epilepsia Generalizada , Epilepsia , Animales , Humanos , Fluoxetina , Epilepsia/tratamiento farmacológico , Epilepsia/genética , Epilepsia/complicaciones , Mutación Missense/genética , Mamíferos , Canal de Potasio Kv1.3/genética
2.
Proc Natl Acad Sci U S A ; 119(15): e2116887119, 2022 04 12.
Artículo en Inglés | MEDLINE | ID: mdl-35377796

RESUMEN

Developmental and epileptic encephalopathies (DEEs) are neurodevelopmental diseases characterized by refractory epilepsy, distinct electroencephalographic and neuroradiological features, and various degrees of developmental delay. Mutations in KCNQ2, KCNQ3, and, more rarely, KCNQ5 genes encoding voltage-gated potassium channel subunits variably contributing to excitability control of specific neuronal populations at distinct developmental stages have been associated to DEEs. In the present work, the clinical features of two DEE patients carrying de novo KCNQ5 variants affecting the same residue in the pore region of the Kv7.5 subunit (G347S/A) are described. The in vitro functional properties of channels incorporating these variants were investigated with electrophysiological and biochemical techniques to highlight pathophysiological disease mechanisms. Currents carried by Kv7.5 G347 S/A channels displayed: 1) large (>10 times) increases in maximal current density, 2) the occurrence of a voltage-independent component, 3) slower deactivation kinetics, and 4) hyperpolarization shift in activation. All these functional features are consistent with a gain-of-function (GoF) pathogenetic mechanism. Similar functional changes were also observed when the same variants were introduced at the corresponding position in Kv7.2 subunits. Nonstationary noise analysis revealed that GoF effects observed for both Kv7.2 and Kv7.5 variants were mainly attributable to an increase in single-channel open probability, without changes in membrane abundance or single-channel conductance. The mutation-induced increase in channel opening probability was insensitive to manipulation of membrane levels of the critical Kv7 channel regulator PIP2. These results reveal a pathophysiological mechanism for KCNQ5-related DEEs, which might be exploited to implement personalized treatments.


Asunto(s)
Epilepsia Refractaria , Mutación con Ganancia de Función , Canales de Potasio KCNQ , Adolescente , Niño , Epilepsia Refractaria/genética , Femenino , Humanos , Canales de Potasio KCNQ/genética , Masculino , Mutación , Fenotipo , Probabilidad
3.
Ann Neurol ; 94(2): 332-349, 2023 08.
Artículo en Inglés | MEDLINE | ID: mdl-37062836

RESUMEN

OBJECTIVE: Pathogenic variants in KCNT2 are rare causes of developmental epileptic encephalopathy (DEE). We herein describe the phenotypic and genetic features of patients with KCNT2-related DEE, and the in vitro functional and pharmacological properties of KCNT2 channels carrying 14 novel or previously untested variants. METHODS: Twenty-five patients harboring KCNT2 variants were investigated: 12 were identified through an international collaborative network, 13 were retrieved from the literature. Clinical data were collected and included in a standardized phenotyping sheet. Novel variants were detected using exome sequencing and classified using ACMG criteria. Functional and pharmacological studies were performed by whole-cell electrophysiology in HEK-293 and SH-SY5Y cells. RESULTS: The phenotypic spectrum encompassed: (a) intellectual disability/developmental delay (21/22 individuals with available information), ranging from mild to severe/profound; (b) epilepsy (15/25); (c) neurological impairment, with altered muscle tone (14/22); (d) dysmorphisms (13/20). Nineteen pathogenic KCNT2 variants were found (9 new, 10 reported previously): 16 missense, 1 in-frame deletion of a single amino acid, 1 nonsense, and 1 frameshift. Among tested variants, 8 showed gain-of-function (GoF), and 6 loss-of-function (LoF) features when expressed heterologously in vitro. Quinidine and fluoxetine blocked all GoF variants, whereas loxapine and riluzole activated some LoF variants while blocking others. INTERPRETATION: We expanded the phenotypic and genotypic spectrum of KCNT2-related disorders, highlighting novel genotype-phenotype associations. Pathogenic KCNT2 variants cause GoF or LoF in vitro phenotypes, and each shows a unique pharmacological profile, suggesting the need for in vitro functional and pharmacological investigation to enable targeted therapies based on the molecular phenotype. ANN NEUROL 2023;94:332-349.


Asunto(s)
Discapacidad Intelectual , Neuroblastoma , Humanos , Células HEK293 , Fenotipo , Genotipo , Discapacidad Intelectual/tratamiento farmacológico , Discapacidad Intelectual/genética , Canales de potasio activados por Sodio/genética
4.
Epilepsia ; 64(7): e148-e155, 2023 07.
Artículo en Inglés | MEDLINE | ID: mdl-37203213

RESUMEN

Variable phenotypes, including developmental encephalopathy with (DEE) or without seizures and myoclonic epilepsy and ataxia due to potassium channel mutation, are caused by pathogenetic variants in KCNC1, encoding for Kv3.1 channel subunits. In vitro, channels carrying most KCNC1 pathogenic variants display loss-of-function features. Here, we describe a child affected by DEE with fever-triggered seizures, caused by a novel de novo heterozygous missense KCNC1 variant (c.1273G>A; V425M). Patch-clamp recordings in transiently transfected CHO cells revealed that, compared to wild-type, Kv3.1 V425M currents (1) were larger, with membrane potentials between -40 and +40 mV; (2) displayed a hyperpolarizing shift in activation gating; (3) failed to inactivate; and (4) had slower activation and deactivation kinetics, consistent with a mixed functional pattern with prevalent gain-of-function effects. Exposure to the antidepressant drug fluoxetine inhibited currents expressed by both wild-type and mutant Kv3.1 channels. Treatment of the proband with fluoxetine led to a rapid and prolonged clinical amelioration, with the disappearance of seizures and an improvement in balance, gross motor skills, and oculomotor coordination. These results suggest that drug repurposing based on the specific genetic defect may provide an effective personalized treatment for KCNC1-related DEEs.


Asunto(s)
Epilepsias Mioclónicas , Convulsiones Febriles , Cricetinae , Animales , Fluoxetina/uso terapéutico , Cricetulus , Medicina de Precisión , Mutación con Ganancia de Función , Convulsiones/genética , Epilepsias Mioclónicas/tratamiento farmacológico , Epilepsias Mioclónicas/genética
5.
Epilepsia ; 63(1): e7-e14, 2022 01.
Artículo en Inglés | MEDLINE | ID: mdl-34778950

RESUMEN

A wide phenotypic spectrum of neurological diseases is associated with KCNA1 (Kv1.1) variants. To investigate the molecular basis of such a heterogeneous clinical presentation and identify the possible correlation with in vitro phenotypes, we compared the functional consequences of three heterozygous de novo variants (p.P403S, p.P405L, and p.P405S) in Kv1.1 pore region found in four patients with severe developmental and epileptic encephalopathy (DEE), with those of a de novo variant in the voltage sensor (p.A261T) identified in two patients with mild, carbamazepine-responsive, focal epilepsy. Patch-clamp electrophysiology was used to investigate the functional properties of mutant Kv1.1 subunits, both expressed as homomers and heteromers with wild-type Kv1.1 subunits. KCNA1 pore mutations markedly decreased (p. P405S) or fully suppressed (p. P403S, p. P405L) Kv1.1-mediated currents, exerting loss-of-function (LoF) effects. By contrast, channels carrying the p.A261T variant exhibited a hyperpolarizing shift of the activation process, consistent with a gain-of-function (GoF) effect. The present results unveil a novel correlation between in vitro phenotype (GoF vs LoF) and clinical course (mild vs severe) in KCNA1-related phenotypes. The excellent clinical response to carbamazepine observed in the patients carrying the A261T variant suggests an exquisite sensitivity of KCNA1 GoF to sodium channel inhibition that should be further explored.


Asunto(s)
Epilepsia , Carbamazepina/uso terapéutico , Epilepsia/tratamiento farmacológico , Epilepsia/genética , Humanos , Canal de Potasio Kv.1.1/genética , Mutación/genética , Fenotipo
6.
Pflugers Arch ; 472(7): 881-898, 2020 07.
Artículo en Inglés | MEDLINE | ID: mdl-32506321

RESUMEN

Seizures are the most common neurological manifestation in the newborn period, with an estimated incidence of 1.8-3.5 per 1000 live births. Prolonged or intractable seizures have a detrimental effect on cognition and brain function in experimental animals and are associated with adverse long-term neurodevelopmental sequelae and an increased risk of post-neonatal epilepsy in humans. The developing brain is particularly susceptible to the potentially severe effects of epilepsy, and epilepsy, especially when refractory to medications, often results in a developmental and epileptic encephalopathy (DEE) with developmental arrest or regression. DEEs can be primarily attributed to genetic causes. Given the critical role of potassium (K+) currents with distinct subcellular localization, biophysical properties, modulation, and pharmacological profile in regulating intrinsic electrical properties of neurons and their responsiveness to synaptic inputs, it is not too surprising that genetic research in the past two decades has identified several K+ channel genes as responsible for a large fraction of DEE. In the present article, we review the genetically determined epileptic channelopathies affecting three members of the Kv7 family, namely Kv7.2 (KCNQ2), Kv7.3 (KCNQ3), and Kv7.5 (KCNQ5); we review the phenotypic spectrum of Kv7-related epileptic channelopathies, the different genetic and pathogenetic mechanisms, and the emerging genotype-phenotype correlations which may prove crucial for prognostic predictions, disease management, parental counseling, and individually tailored therapeutic attempts.


Asunto(s)
Canalopatías/genética , Canalopatías/patología , Canal de Potasio KCNQ1/genética , Neuronas/patología , Convulsiones/genética , Convulsiones/patología , Animales , Humanos
7.
Ann Neurol ; 86(2): 181-192, 2019 08.
Artículo en Inglés | MEDLINE | ID: mdl-31177578

RESUMEN

OBJECTIVE: Recent reports have described single individuals with neurodevelopmental disability (NDD) harboring heterozygous KCNQ3 de novo variants (DNVs). We sought to assess whether pathogenic variants in KCNQ3 cause NDD and to elucidate the associated phenotype and molecular mechanisms. METHODS: Patients with NDD and KCNQ3 DNVs were identified through an international collaboration. Phenotypes were characterized by clinical assessment, review of charts, electroencephalographic (EEG) recordings, and parental interview. Functional consequences of variants were analyzed in vitro by patch-clamp recording. RESULTS: Eleven patients were assessed. They had recurrent heterozygous DNVs in KCNQ3 affecting residues R230 (R230C, R230H, R230S) and R227 (R227Q). All patients exhibited global developmental delay within the first 2 years of life. Most (8/11, 73%) were nonverbal or had a few words only. All patients had autistic features, and autism spectrum disorder (ASD) was diagnosed in 5 of 11 (45%). EEGs performed before 10 years of age revealed frequent sleep-activated multifocal epileptiform discharges in 8 of 11 (73%). For 6 of 9 (67%) recorded between 1.5 and 6 years of age, spikes became near-continuous during sleep. Interestingly, most patients (9/11, 82%) did not have seizures, and no patient had seizures in the neonatal period. Voltage-clamp recordings of the mutant KCNQ3 channels revealed gain-of-function (GoF) effects. INTERPRETATION: Specific GoF variants in KCNQ3 cause NDD, ASD, and abundant sleep-activated spikes. This new phenotype contrasts both with self-limited neonatal epilepsy due to KCNQ3 partial loss of function, and with the neonatal or infantile onset epileptic encephalopathies due to KCNQ2 GoF. ANN NEUROL 2019;86:181-192.


Asunto(s)
Trastorno Autístico/diagnóstico , Trastorno Autístico/genética , Discapacidades del Desarrollo/diagnóstico , Discapacidades del Desarrollo/genética , Mutación con Ganancia de Función/genética , Canal de Potasio KCNQ3/genética , Secuencia de Aminoácidos , Niño , Preescolar , Variación Genética/genética , Humanos , Canal de Potasio KCNQ3/química , Masculino , Estructura Secundaria de Proteína , Adulto Joven
8.
Pharmacol Res ; 160: 105200, 2020 10.
Artículo en Inglés | MEDLINE | ID: mdl-32942014

RESUMEN

De novo variants in KCNQ2 encoding for Kv7.2 voltage-dependent neuronal potassium (K+) channel subunits are associated with developmental epileptic encephalopathy (DEE). We herein describe the clinical and electroencephalographic (EEG) features of a child with early-onset DEE caused by the novel KCNQ2 p.G310S variant. In vitro experiments demonstrated that the mutation induces loss-of-function effects on the currents produced by channels incorporating mutant subunits; these effects were counteracted by the selective Kv7 opener retigabine and by gabapentin, a recently described Kv7 activator. Given these data, the patient started treatment with gabapentin, showing a rapid and sustained clinical and EEG improvement over the following months. Overall, these results suggest that gabapentin can be regarded as a precision therapy for DEEs due to KCNQ2 loss-of-function mutations.


Asunto(s)
Anticonvulsivantes/uso terapéutico , Epilepsia/tratamiento farmacológico , Epilepsia/genética , Gabapentina/uso terapéutico , Canal de Potasio KCNQ2/genética , Edad de Inicio , Animales , Células CHO , Carbamatos/uso terapéutico , Células Cultivadas , Niño , Cricetinae , Cricetulus , Electroencefalografía , Femenino , Humanos , Mutación , Fenilendiaminas/uso terapéutico , Medicina de Precisión , Ratas , Resultado del Tratamiento
9.
Ann Neurol ; 83(6): 1198-1204, 2018 06.
Artículo en Inglés | MEDLINE | ID: mdl-29740868

RESUMEN

Variants in several potassium channel genes have been found in developmental and epileptic encephalopathies (DEE). We report on 2 females with de novo variants in KCNT2 with West syndrome followed by Lennox-Gastaut syndrome or with DEE with migrating focal seizures. After in vitro analysis suggested quinidine-responsive gain-of-function effects, we treated 1 of the girls with quinidine add-on therapy and achieved marked clinical improvements. This suggests that the new spectrum of KCNT2-related disorders do not only share similar phenotypic and in vitro functional and pharmacological features with previously known KCNT1-related disorders, but also represents a further example for possible precision medicine approaches. Ann Neurol 2018;83:1198-1204.


Asunto(s)
Mutación/genética , Trastornos del Neurodesarrollo/genética , Canales de Potasio/genética , Espasmos Infantiles/genética , Adolescente , Niño , Femenino , Proteínas Fluorescentes Verdes/genética , Proteínas Fluorescentes Verdes/metabolismo , Células HEK293 , Humanos , Recién Nacido , Potenciales de la Membrana/genética , Modelos Moleculares , Trastornos del Neurodesarrollo/complicaciones , Técnicas de Placa-Clamp , Canales de Potasio/metabolismo , Canales de potasio activados por Sodio , Espasmos Infantiles/complicaciones , Transfección
10.
Int J Mol Sci ; 20(14)2019 Jul 10.
Artículo en Inglés | MEDLINE | ID: mdl-31295832

RESUMEN

Kv7.2 subunits encoded by the KCNQ2 gene provide a major contribution to the M-current (IKM), a voltage-gated K+ current crucially involved in the regulation of neuronal excitability. Heterozygous missense variants in Kv7.2 are responsible for epileptic diseases characterized by highly heterogeneous genetic transmission and clinical severity, ranging from autosomal-dominant Benign Familial Neonatal Seizures (BFNS) to sporadic cases of severe epileptic and developmental encephalopathy (DEE). Here, we describe a patient with neonatal onset DEE, carrying a previously undescribed heterozygous KCNQ2 c.418G > C, p.Glu140Gln (E140Q) variant. Patch-clamp recordings in CHO cells expressing the E140Q mutation reveal dramatic loss of function (LoF) effects. Multistate structural modelling suggested that the E140Q substitution impeded an intrasubunit electrostatic interaction occurring between the E140 side chain in S2 and the arginine at position 210 in S4 (R210); this interaction is critically involved in stabilizing the activated configuration of the voltage-sensing domain (VSD) of Kv7.2. Functional results from coupled charge reversal or disulfide trapping experiments supported such a hypothesis. Finally, retigabine restored mutation-induced functional changes, reinforcing the rationale for the clinical use of Kv7 activators as personalized therapy for DEE-affected patients carrying Kv7.2 LoF mutations.


Asunto(s)
Encefalopatías/genética , Discapacidades del Desarrollo/genética , Predisposición Genética a la Enfermedad , Variación Genética , Canal de Potasio KCNQ2/genética , Dominios y Motivos de Interacción de Proteínas/genética , Espasmos Infantiles/genética , Sustitución de Aminoácidos , Biomarcadores , Encefalopatías/diagnóstico , Encefalopatías/terapia , Preescolar , Discapacidades del Desarrollo/diagnóstico , Discapacidades del Desarrollo/terapia , Electroencefalografía , Estudios de Asociación Genética , Humanos , Lactante , Recién Nacido , Canal de Potasio KCNQ2/química , Mutación con Pérdida de Función , Imagen por Resonancia Magnética , Masculino , Modelos Moleculares , Neuroimagen , Conformación Proteica , Espasmos Infantiles/diagnóstico , Espasmos Infantiles/terapia , Relación Estructura-Actividad , Evaluación de Síntomas
11.
Int J Mol Sci ; 20(18)2019 Sep 04.
Artículo en Inglés | MEDLINE | ID: mdl-31487785

RESUMEN

Kv7.2-Kv7.5 channels mediate the M-current (IKM), a K+-selective current regulating neuronal excitability and representing an attractive target for pharmacological therapy against hyperexcitability diseases such as pain. Kv7 channels interact functionally with transient receptor potential vanilloid 1 (TRPV1) channels activated by endogenous and/or exogenous pain-inducing substances, such as bradykinin (BK) or capsaicin (CAP), respectively; however, whether Kv7 channels of specific molecular composition provide a dominant contribution in BK- or CAP-evoked responses is yet unknown. To this aim, Kv7 transcripts expression and function were assessed in F11 immortalized sensorial neurons, a cellular model widely used to assess nociceptive molecular mechanisms. In these cells, the effects of the pan-Kv7 activator retigabine were investigated, as well as the effects of ICA-27243 and (S)-1, two Kv7 activators acting preferentially on Kv7.2/Kv7.3 and Kv7.4/Kv7.5 channels, respectively, on BK- and CAP-induced changes in intracellular Ca2+ concentrations ([Ca2+]i). The results obtained revealed the expression of transcripts of all Kv7 genes, leading to an IKM-like current. Moreover, all tested Kv7 openers inhibited BK- and CAP-induced responses by a similar extent (~60%); at least for BK-induced Ca2+ responses, the potency of retigabine (IC50~1 µM) was higher than that of ICA-27243 (IC50~5 µM) and (S)-1 (IC50~7 µM). Altogether, these results suggest that IKM activation effectively counteracts the cellular processes triggered by TRPV1-mediated pain-inducing stimuli, and highlight a possible critical contribution of Kv7.4 subunits.


Asunto(s)
Señalización del Calcio , Capsaicina/farmacología , Canales de Potasio KCNQ/metabolismo , Células Receptoras Sensoriales/metabolismo , Fármacos del Sistema Sensorial/farmacología , Canales Catiónicos TRPV/metabolismo , Animales , Bradiquinina/farmacología , Calcio/metabolismo , Carbamatos/farmacología , Línea Celular , Canales de Potasio de Gran Conductancia Activados por el Calcio/metabolismo , Moduladores del Transporte de Membrana/farmacología , Fenilendiaminas/farmacología , Ratas , Células Receptoras Sensoriales/efectos de los fármacos
12.
Epilepsia ; 58(1): e10-e15, 2017 01.
Artículo en Inglés | MEDLINE | ID: mdl-27861786

RESUMEN

Variants in KCNQ2 encoding for Kv 7.2 neuronal K+ channel subunits lead to a spectrum of neonatal-onset epilepsies, ranging from self-limiting forms to severe epileptic encephalopathy. Most KCNQ2 pathogenic variants cause loss-of-function, whereas few increase channel activity (gain-of-function). We herein provide evidence for a new phenotypic and functional profile in KCNQ2-related epilepsy: infantile spasms without prior neonatal seizures associated with a gain-of-function gene variant. With use of an international registry, we identified four unrelated patients with the same de novo heterozygous KCNQ2 c.593G>A, p.Arg198Gln (R198Q) variant. All were born at term and discharged home without seizures or concern of encephalopathy, but developed infantile spasms with hypsarrhythmia (or modified hypsarrhythmia) between the ages of 4 and 6 months. At last follow-up (ages 3-11 years), all patients were seizure-free and had severe developmental delay. In vitro experiments showed that Kv7.2 R198Q subunits shifted current activation gating to hyperpolarized potentials, indicative of gain-of-function; in neurons, Kv 7.2 and Kv 7.2 R198Q subunits similarly populated the axon initial segment, suggesting that gating changes rather than altered subcellular distribution contribute to disease molecular pathogenesis. We conclude that KCNQ2 R198Q is a model for a new subclass of KCNQ2 variants causing infantile spasms and encephalopathy, without preceding neonatal seizures. A PowerPoint slide summarizing this article is available for download in the Supporting Information section here.


Asunto(s)
Encefalopatías/genética , Canal de Potasio KCNQ2/genética , Mutación/genética , Espasmos Infantiles/genética , Animales , Arginina/genética , Células CHO , Células Cultivadas , Niño , Preescolar , Cricetulus , Glutamina/genética , Hipocampo/citología , Humanos , Lactante , Estudios Longitudinales , Potenciales de la Membrana/genética , Modelos Moleculares , Neuronas/fisiología , Ratas , Transfección
13.
Mol Cell Neurosci ; 72: 54-63, 2016 Apr.
Artículo en Inglés | MEDLINE | ID: mdl-26784557

RESUMEN

The KCNT1 gene encodes for subunits contributing to the Na(+)-activated K(+) current (KNa), expressed in many cell types. Mutations in KCNT1 have been found in patients affected with a wide spectrum of early-onset epilepsies, including Malignant Migrating Partial Seizures in Infancy (MMPSI), a severe early-onset epileptic encephalopathy characterized by pharmacoresistant focal seizures migrating from one brain region or hemisphere to another and neurodevelopment arrest or regression, resulting in profound disability. In the present study we report identification by whole exome sequencing (WES) of two de novo, heterozygous KCNT1 mutations (G288S and, not previously reported, M516V) in two unrelated MMPSI probands. Functional studies in a heterologous expression system revealed that channels formed by mutant KCNT1 subunits carried larger currents when compared to wild-type KCNT1 channels, both as homo- and heteromers with these last. Both mutations induced a marked leftward shift in homomeric channel activation gating. Interestingly, the KCNT1 blockers quinidine (3-1000µM) and bepridil (0.03-10µM) inhibited both wild-type and mutant KCNT1 currents in a concentration-dependent manner, with mutant channels showing higher sensitivity to blockade. This latter result suggests two genotype-tailored pharmacological strategies to specifically counteract the dysfunction of KCNT1 activating mutations in MMPSI patients.


Asunto(s)
Mutación Missense , Proteínas del Tejido Nervioso/genética , Canales de Potasio/genética , Espasmos Infantiles/genética , Animales , Células CHO , Cricetinae , Cricetulus , Exoma , Humanos , Lactante , Activación del Canal Iónico , Masculino , Proteínas del Tejido Nervioso/antagonistas & inhibidores , Proteínas del Tejido Nervioso/metabolismo , Bloqueadores de los Canales de Potasio/farmacología , Canales de Potasio/metabolismo , Canales de potasio activados por Sodio , Espasmos Infantiles/diagnóstico
14.
J Neurosci ; 35(9): 3782-93, 2015 Mar 04.
Artículo en Inglés | MEDLINE | ID: mdl-25740509

RESUMEN

Mutations in Kv7.2 (KCNQ2) and Kv7.3 (KCNQ3) genes, encoding for voltage-gated K(+) channel subunits underlying the neuronal M-current, have been associated with a wide spectrum of early-onset epileptic disorders ranging from benign familial neonatal seizures to severe epileptic encephalopathies. The aim of the present work has been to investigate the molecular mechanisms of channel dysfunction caused by voltage-sensing domain mutations in Kv7.2 (R144Q, R201C, and R201H) or Kv7.3 (R230C) recently found in patients with epileptic encephalopathies and/or intellectual disability. Electrophysiological studies in mammalian cells transfected with human Kv7.2 and/or Kv7.3 cDNAs revealed that each of these four mutations stabilized the activated state of the channel, thereby producing gain-of-function effects, which are opposite to the loss-of-function effects produced by previously found mutations. Multistate structural modeling revealed that the R201 residue in Kv7.2, corresponding to R230 in Kv7.3, stabilized the resting and nearby voltage-sensing domain states by forming an intricate network of electrostatic interactions with neighboring negatively charged residues, a result also confirmed by disulfide trapping experiments. Using a realistic model of a feedforward inhibitory microcircuit in the hippocampal CA1 region, an increased excitability of pyramidal neurons was found upon incorporation of the experimentally defined parameters for mutant M-current, suggesting that changes in network interactions rather than in intrinsic cell properties may be responsible for the neuronal hyperexcitability by these gain-of-function mutations. Together, the present results suggest that gain-of-function mutations in Kv7.2/3 currents may cause human epilepsy with a severe clinical course, thus revealing a previously unexplored level of complexity in disease pathogenetic mechanisms.


Asunto(s)
Epilepsia Benigna Neonatal/genética , Epilepsia Benigna Neonatal/fisiopatología , Canal de Potasio KCNQ2/genética , Canal de Potasio KCNQ3/genética , Mutación/genética , Secuencia de Aminoácidos , Animales , Biotinilación/genética , Células CHO , Cricetinae , Cricetulus , ADN Complementario/biosíntesis , ADN Complementario/genética , Humanos , Modelos Moleculares , Datos de Secuencia Molecular , Estructura Terciaria de Proteína
15.
J Mol Cell Cardiol ; 98: 146-58, 2016 09.
Artículo en Inglés | MEDLINE | ID: mdl-27418252

RESUMEN

Proper ß-adrenergic signaling is indispensable for modulating heart frequency. Studies on extremely-low-frequency pulsed electromagnetic field (ELF-PEMF) effects in the heart beat function are contradictory and no definitive conclusions were obtained so far. To investigate the interplay between ELF-PEMF exposure and ß-adrenergic signaling, cultures of primary murine neonatal cardiomyocytes and of sinoatrial node were exposed to ELF-PEMF and short and long-term effects were evaluated. The ELF-PEMF generated a variable magnetic induction field of 0-6mT at a frequency of 75Hz. Exposure to 3mT ELF-PEMF induced a decrease of contraction rate, Ca(2+) transients, contraction force, and energy consumption both under basal conditions and after ß-adrenergic stimulation in neonatal cardiomyocytes. ELF-PEMF exposure inhibited ß-adrenergic response in sinoatrial node (SAN) region. ELF-PEMF specifically modulated ß2 adrenergic receptor response and the exposure did not modify the increase of contraction rate after adenylate cyclase stimulation by forskolin. In HEK293T cells transfected with ß1 or ß2 adrenergic receptors, ELF-PEMF exposure induced a rapid and selective internalization of ß2 adrenergic receptor. The ß-adrenergic signaling, was reduced trough Gi protein by ELF-PEMF exposure since the phosphorylation level of phospholamban and the PI3K pathway were impaired after isoproterenol stimulation in neonatal cardiomyocytes. Long term effects of ELF-PEMF exposure were assessed in cultures of isolated cardiomyocytes. ELF-PEMF counteracts cell size increase, the generation of binucleated of cardiomyocytes and prevents the up-regulation of hypertrophic markers after ß-adrenergic stimulation, indicating an inhibition of cell growth and maturation. These data show that short and long term exposure to ELF-PEMF induces a reduction of cardiac ß-adrenergic response at molecular, functional and adaptative levels.


Asunto(s)
Campos Electromagnéticos , Miocitos Cardíacos/metabolismo , Miocitos Cardíacos/efectos de la radiación , Receptores Adrenérgicos beta/metabolismo , Agonistas Adrenérgicos beta/farmacología , Algoritmos , Animales , Calcio/metabolismo , Señalización del Calcio , Metabolismo Energético/efectos de los fármacos , Metabolismo Energético/efectos de la radiación , Ratones , Modelos Biológicos , Contracción Miocárdica/efectos de los fármacos , Contracción Miocárdica/efectos de la radiación , Miocitos Cardíacos/efectos de los fármacos , Receptores Adrenérgicos beta/genética , Transducción de Señal/efectos de los fármacos , Transducción de Señal/efectos de la radiación , Nodo Sinoatrial/efectos de los fármacos , Nodo Sinoatrial/fisiología , Nodo Sinoatrial/efectos de la radiación
16.
Biochim Biophys Acta ; 1852(9): 1856-66, 2015 Sep.
Artículo en Inglés | MEDLINE | ID: mdl-26073431

RESUMEN

Mutations in the KCNQ2 gene, encoding for voltage-gated Kv7.2K(+) channel subunits, are responsible for early-onset epileptic diseases with widely-diverging phenotypic presentation, ranging from Benign Familial Neonatal Seizures (BFNS) to epileptic encephalopathy. In the present study, Kv7.2 BFNS-causing mutations (W344R, L351F, L351V, Y362C, and R553Q) have been investigated for their ability to interfere with calmodulin (CaM) binding and CaM-induced channel regulation. To this aim, semi-quantitative (Far-Western blotting) and quantitative (Surface Plasmon Resonance and dansylated CaM fluorescence) biochemical assays have been performed to investigate the interaction of CaM with wild-type or mutant Kv7.2 C-terminal fragments encompassing the CaM-binding domain; in parallel, mutation-induced changes in CaM-dependent Kv7.2 or Kv7.2/Kv7.3 current regulation were investigated by patch-clamp recordings in Chinese Hamster Ovary (CHO) cells co-expressing Kv7.2 or Kv7.2/Kv7.3 channels and CaM or CaM1234 (a CaM isoform unable to bind Ca(2+)). The results obtained suggest that each BFNS-causing mutation prompts specific biochemical and/or functional consequences; these range from slight alterations in CaM affinity which did not translate into functional changes (L351V), to a significant reduction in the affinity and functional modulation by CaM (L351F, Y362C or R553Q), to a complete functional loss without significant alteration in CaM affinity (W344R). CaM overexpression increased Kv7.2 and Kv7.2/Kv7.3 current levels, and partially (R553Q) or fully (L351F) restored normal channel function, providing a rationale pathogenetic mechanism for mutation-induced channel dysfunction in BFNS, and highlighting the potentiation of CaM-dependent Kv7.2 modulation as a potential therapeutic approach for Kv7.2-related epilepsies.

17.
Proc Natl Acad Sci U S A ; 110(11): 4386-91, 2013 Mar 12.
Artículo en Inglés | MEDLINE | ID: mdl-23440208

RESUMEN

Mutations in the K(V)7.2 gene encoding for voltage-dependent K(+) channel subunits cause neonatal epilepsies with wide phenotypic heterogeneity. Two mutations affecting the same positively charged residue in the S4 domain of K(V)7.2 have been found in children affected with benign familial neonatal seizures (R213W mutation) or with neonatal epileptic encephalopathy with severe pharmacoresistant seizures and neurocognitive delay, suppression-burst pattern at EEG, and distinct neuroradiological features (R213Q mutation). To examine the molecular basis for this strikingly different phenotype, we studied the functional characteristics of mutant channels by using electrophysiological techniques, computational modeling, and homology modeling. Functional studies revealed that, in homomeric or heteromeric configuration with K(V)7.2 and/or K(V)7.3 subunits, both mutations markedly destabilized the open state, causing a dramatic decrease in channel voltage sensitivity. These functional changes were (i) more pronounced for channels incorporating R213Q- than R213W-carrying K(V)7.2 subunits; (ii) proportional to the number of mutant subunits incorporated; and (iii) fully restored by the neuronal K(v)7 activator retigabine. Homology modeling confirmed a critical role for the R213 residue in stabilizing the activated voltage sensor configuration. Modeling experiments in CA1 hippocampal pyramidal cells revealed that both mutations increased cell firing frequency, with the R213Q mutation prompting more dramatic functional changes compared with the R213W mutation. These results suggest that the clinical disease severity may be related to the extent of the mutation-induced functional K(+) channel impairment, and set the preclinical basis for the potential use of K(v)7 openers as a targeted anticonvulsant therapy to improve developmental outcome in neonates with K(V)7.2 encephalopathy.


Asunto(s)
Epilepsia Benigna Neonatal/metabolismo , Canal de Potasio KCNQ2/metabolismo , Mutación Missense , Sustitución de Aminoácidos , Animales , Anticonvulsivantes/farmacología , Células CHO , Carbamatos/farmacología , Cricetinae , Cricetulus , Epilepsia Benigna Neonatal/genética , Epilepsia Benigna Neonatal/patología , Genotipo , Humanos , Canal de Potasio KCNQ2/química , Canal de Potasio KCNQ2/genética , Canal de Potasio KCNQ3/genética , Canal de Potasio KCNQ3/metabolismo , Modelos Moleculares , Fenotipo , Fenilendiaminas/farmacología , Células Piramidales/metabolismo , Células Piramidales/patología , Homología Estructural de Proteína
18.
Epilepsia ; 56(2): e15-20, 2015 Feb.
Artículo en Inglés | MEDLINE | ID: mdl-25524373

RESUMEN

Mutations in the KCNQ2 gene encoding for voltage-gated potassium channel subunits have been found in patients affected with early onset epilepsies with wide phenotypic heterogeneity, ranging from benign familial neonatal seizures (BFNS) to epileptic encephalopathy with cognitive impairment, drug resistance, and characteristic electroencephalography (EEG) and neuroradiologic features. By contrast, only few KCNQ3 mutations have been rarely described, mostly in patients with typical BFNS. We report clinical, genetic, and functional data from a family in which early onset epilepsy and neurocognitive deficits segregated with a novel mutation in KCNQ3 (c.989G>T; p.R330L). Electrophysiological studies in mammalian cells revealed that incorporation of KCNQ3 R330L mutant subunits impaired channel function, suggesting a pathogenetic role for such mutation. The degree of functional impairment of channels incorporating KCNQ3 R330L subunits was larger than that of channels carrying another KCNQ3 mutation affecting the same codon but leading to a different amino acid substitution (p.R330C), previously identified in two families with typical BFNS. These data suggest that mutations in KCNQ3, similarly to KCNQ2, can be found in patients with more severe phenotypes including intellectual disability, and that the degree of the functional impairment caused by mutations at position 330 in KCNQ3 may contribute to clinical disease severity.


Asunto(s)
Predisposición Genética a la Enfermedad , Discapacidad Intelectual/genética , Canal de Potasio KCNQ3/genética , Mutación/genética , Convulsiones/genética , Niño , Femenino , Pruebas Genéticas/métodos , Humanos , Discapacidad Intelectual/etiología , Canal de Potasio KCNQ2/genética , Masculino , Linaje
19.
Hum Mutat ; 35(3): 356-67, 2014 Mar.
Artículo en Inglés | MEDLINE | ID: mdl-24375629

RESUMEN

Mutations in the KCNQ2 and KCNQ3 genes encoding for Kv 7.2 (KCNQ2; Q2) and Kv 7.3 (KCNQ3; Q3) voltage-dependent K(+) channel subunits, respectively, cause neonatal epilepsies with wide phenotypic heterogeneity. In addition to benign familial neonatal epilepsy (BFNE), KCNQ2 mutations have been recently found in families with one or more family members with a severe outcome, including drug-resistant seizures with psychomotor retardation, electroencephalogram (EEG) suppression-burst pattern (Ohtahara syndrome), and distinct neuroradiological features, a condition that was named "KCNQ2 encephalopathy." In the present article, we describe clinical, genetic, and functional data from 17 patients/families whose electroclinical presentation was consistent with the diagnosis of BFNE. Sixteen different heterozygous mutations were found in KCNQ2, including 10 substitutions, three insertions/deletions and three large deletions. One substitution was found in KCNQ3. Most of these mutations were novel, except for four KCNQ2 substitutions that were shown to be recurrent. Electrophysiological studies in mammalian cells revealed that homomeric or heteromeric KCNQ2 and/or KCNQ3 channels carrying mutant subunits with newly found substitutions displayed reduced current densities. In addition, we describe, for the first time, that some mutations impair channel regulation by syntaxin-1A, highlighting a novel pathogenetic mechanism for KCNQ2-related epilepsies.


Asunto(s)
Epilepsia Benigna Neonatal/genética , Canal de Potasio KCNQ2/genética , Canal de Potasio KCNQ3/genética , Sintaxina 1/genética , Animales , Biotinilación , Células CHO , Estudios de Cohortes , Cricetulus , Femenino , Eliminación de Gen , Mutación de Línea Germinal , Humanos , Masculino , Mutagénesis Insercional , Linaje , Alineación de Secuencia
20.
Pharmacol Res ; 87: 113-22, 2014 Sep.
Artículo en Inglés | MEDLINE | ID: mdl-25014183

RESUMEN

Transient receptor potential vanilloid type-1 (TRPV1) channels expressed in primary afferent neurons play a critical role in nociception triggered by endogenous and exogenous compounds. In the present study, the functional and biochemical interaction between TRPV1 channels and type-α peroxisome proliferator-activated receptors (PPARα) has been investigated. In TRPV1-expressing CHO cells, patch-clamp studies revealed that acute application of the PPARα agonists clofibrate (CLO; 0.1-100 µM), WY14643 (1-300 µM), or GW7647 (0.1-100 nM) activated TRPV1 currents in a concentration-dependent manner, with EC50s of 5.3 ± 0.8 µM, 13.0 ± 1.2 µM, and 12.7 ± 0.3 nM, respectively. The role of PPARα in these pharmacological responses was confirmed by the ability of the PPARα antagonist GW6471 (10 µM) to block CLO-, WY14643- and GW7647-induced TRPV1 activation, and by the observation that modulation of PPARα levels via siRNA-mediated suppression or PPARα over-expression affected TRPV1 channel activation by PPARα agonists accordingly. In cells cotransfected with PPARα and TRPV1, PPARα receptors were detected in TRPV1-immunoprecipitated fractions. When compared to capsaicin (CAP), TRPV1 currents activated by PPARα agonists showed a higher degree of acute desensitization and tachyphylaxis; moreover, GW7647, when pre-incubated at a concentration (1nM) unable to activate TRPV1 currents per se, desensitized CAP-induced TRPV1 currents. Finally, a sub-effective concentration of each PPARα agonist inhibited TRPV1-dependent bradykinin-induced [Ca(2+)]i transients in sensory neurons. Collectively, these results provide evidence for a PPARα-mediated pathway triggering TRPV1 channel activation and desensitization, and highlight a novel mechanism which might contribute to the analgesic effects shown by PPARα agonists in vivo.


Asunto(s)
Analgesia , PPAR alfa/fisiología , Canales Catiónicos TRPV/fisiología , Animales , Células CHO , Cricetulus , PPAR alfa/agonistas , PPAR alfa/antagonistas & inhibidores
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