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1.
Epilepsia ; 54(7): 1270-81, 2013 Jul.
Artículo en Inglés | MEDLINE | ID: mdl-23647072

RESUMEN

PURPOSE: The management of epilepsy in children is particularly challenging when seizures are resistant to antiepileptic medications, or undergo many changes in seizure type over time, or have comorbid cognitive, behavioral, or motor deficits. Despite efforts to classify such epilepsies based on clinical and electroencephalographic criteria, many children never receive a definitive etiologic diagnosis. Whole exome sequencing (WES) is proving to be a highly effective method for identifying de novo variants that cause neurologic disorders, especially those associated with abnormal brain development. Herein we explore the utility of WES for identifying candidate causal de novo variants in a cohort of children with heterogeneous sporadic epilepsies without etiologic diagnoses. METHODS: We performed WES (mean coverage approximately 40×) on 10 trios comprised of unaffected parents and a child with sporadic epilepsy characterized by difficult-to-control seizures and some combination of developmental delay, epileptic encephalopathy, autistic features, cognitive impairment, or motor deficits. Sequence processing and variant calling were performed using standard bioinformatics tools. A custom filtering system was used to prioritize de novo variants of possible functional significance for validation by Sanger sequencing. KEY FINDINGS: In 9 of 10 probands, we identified one or more de novo variants predicted to alter protein function, for a total of 15. Four probands had de novo mutations in genes previously shown to harbor heterozygous mutations in patients with severe, early onset epilepsies (two in SCN1A, and one each in CDKL5 and EEF1A2). In three children, the de novo variants were in genes with functional roles that are plausibly relevant to epilepsy (KCNH5, CLCN4, and ARHGEF15). The variant in KCNH5 alters one of the highly conserved arginine residues of the voltage sensor of the encoded voltage-gated potassium channel. In vitro analyses using cell-based assays revealed that the CLCN4 mutation greatly impaired ion transport by the ClC-4 2Cl(-) /H(+) -exchanger and that the mutation in ARHGEF15 reduced GEF exchange activity of the gene product, Ephexin5, by about 50%. Of interest, these seven probands all presented with seizures within the first 6 months of life, and six of these have intractable seizures. SIGNIFICANCE: The finding that 7 of 10 children carried de novo mutations in genes of known or plausible clinical significance to neuronal excitability suggests that WES will be of use for the molecular genetic diagnosis of sporadic epilepsies in children, especially when seizures are of early onset and difficult to control.


Asunto(s)
Epilepsia/genética , Exoma/fisiología , Predisposición Genética a la Enfermedad , Mutación/genética , Adolescente , Animales , Arginina/genética , Línea Celular , Niño , Preescolar , Canales de Potasio Éter-A-Go-Go/genética , Femenino , Factores de Intercambio de Guanina Nucleótido/genética , Humanos , Lactante , Masculino , Potenciales de la Membrana/efectos de los fármacos , Potenciales de la Membrana/genética , Oocitos , Técnicas de Placa-Clamp , Proteínas Serina-Treonina Quinasas/genética , Análisis de Secuencia de ADN , Transducción Genética , Transfección , Xenopus laevis , Proteína de Unión al GTP rhoA/metabolismo
2.
Curr Biol ; 33(23): 5109-5120.e7, 2023 12 04.
Artículo en Inglés | MEDLINE | ID: mdl-37967554

RESUMEN

Gain control is a process that adjusts a system's sensitivity when input levels change. Neural systems contain multiple mechanisms of gain control, but we do not understand why so many mechanisms are needed or how they interact. Here, we investigate these questions in the Drosophila antennal lobe, where we identify several types of inhibitory interneurons with specialized gain control functions. We find that some interneurons are nonspiking, with compartmentalized calcium signals, and they specialize in intra-glomerular gain control. Conversely, we find that other interneurons are recruited by strong and widespread network input; they specialize in global presynaptic gain control. Using computational modeling and optogenetic perturbations, we show how these mechanisms can work together to improve stimulus discrimination while also minimizing temporal distortions in network activity. Our results demonstrate how the robustness of neural network function can be increased by interactions among diverse and specialized mechanisms of gain control.


Asunto(s)
Interneuronas , Olfato , Animales , Olfato/fisiología , Interneuronas/fisiología , Drosophila/fisiología , Redes Neurales de la Computación , Simulación por Computador , Vías Olfatorias/fisiología
3.
Elife ; 102021 05 25.
Artículo en Inglés | MEDLINE | ID: mdl-34032214

RESUMEN

The hemibrain connectome provides large-scale connectivity and morphology information for the majority of the central brain of Drosophila melanogaster. Using this data set, we provide a complete description of the Drosophila olfactory system, covering all first, second and lateral horn-associated third-order neurons. We develop a generally applicable strategy to extract information flow and layered organisation from connectome graphs, mapping olfactory input to descending interneurons. This identifies a range of motifs including highly lateralised circuits in the antennal lobe and patterns of convergence downstream of the mushroom body and lateral horn. Leveraging a second data set we provide a first quantitative assessment of inter- versus intra-individual stereotypy. Comparing neurons across two brains (three hemispheres) reveals striking similarity in neuronal morphology across brains. Connectivity correlates with morphology and neurons of the same morphological type show similar connection variability within the same brain as across two brains.


Asunto(s)
Conectoma , Vías Olfatorias/fisiología , Animales , Conjuntos de Datos como Asunto , Drosophila melanogaster/fisiología , Femenino , Interneuronas/fisiología
4.
Neuron ; 95(1): 180-194.e5, 2017 Jul 05.
Artículo en Inglés | MEDLINE | ID: mdl-28625486

RESUMEN

Sensory processing must be sensitive enough to encode faint signals near the noise floor but selective enough to differentiate between similar stimuli. Here we describe a layer 6 corticothalamic (L6 CT) circuit in the mouse auditory forebrain that alternately biases sound processing toward hypersensitivity and improved behavioral sound detection or dampened excitability and enhanced sound discrimination. Optogenetic activation of L6 CT neurons could increase or decrease the gain and tuning precision in the thalamus and all layers of the cortical column, depending on the timing between L6 CT activation and sensory stimulation. The direction of neural and perceptual modulation - enhanced detection at the expense of discrimination or vice versa - arose from the interaction of L6 CT neurons and subnetworks of fast-spiking inhibitory neurons that reset the phase of low-frequency cortical rhythms. These findings suggest that L6 CT neurons contribute to the resolution of the competing demands of detection and discrimination.


Asunto(s)
Corteza Auditiva/fisiología , Percepción Auditiva/fisiología , Cuerpos Geniculados/fisiología , Inhibición Neural/fisiología , Neuronas/fisiología , Ritmo Teta/fisiología , Animales , Corteza Auditiva/citología , Vías Auditivas/fisiología , Fenómenos Electrofisiológicos , Cuerpos Geniculados/citología , Ratones , Optogenética , Prosencéfalo , Tálamo/citología , Tálamo/fisiología
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