Socrates: A Novel N-Ethyl-N-nitrosourea-Induced Mouse Mutant with Audiogenic Epilepsy
暂无分享,去创建一个
E. G. Varlamova | E. Turovsky | E. Kondakova | M. Gavrish | Victor S. Tarabykin | Ekaterina V. Borisova | Yuliya A. Evstratova | Andrew G. Newman | Vera P. Kuldaeva | Alexey A. Babaev
[1] Victoria D Turubanova,et al. Unexplained Causes of Glioma-Associated Epilepsies: A Review of Theories and an Area for Research , 2023, Cancers.
[2] E. G. Varlamova,et al. Deletion of the Neuronal Transcription Factor Satb1 Induced Disturbance of the Kinome and Mechanisms of Hypoxic Preconditioning , 2023, Biology.
[3] S. Kirmani,et al. Potassium Channel Subfamily T Member 1(KCNT1) Pathological Variant Causing Epilepsy Of Infancy With Migrating Focal Seizures: A Case Report. , 2023, JPMA. The Journal of the Pakistan Medical Association.
[4] Ling Wei,et al. Extrasynaptic NMDA receptors in acute and chronic excitotoxicity: implications for preventive treatments of ischemic stroke and late-onset Alzheimer’s disease , 2023, Molecular Neurodegeneration.
[5] W. Löscher,et al. Animal Models of Drug-Resistant Epilepsy as Tools for Deciphering the Cellular and Molecular Mechanisms of Pharmacoresistance and Discovering More Effective Treatments , 2023, Cells.
[6] Chin-Wei Huang,et al. The Role of Glutamate Receptors in Epilepsy , 2023, Biomedicines.
[7] Chin-Wei Huang,et al. The Roles of Glutamate Receptors and Their Antagonists in Status Epilepticus, Refractory Status Epilepticus, and Super-Refractory Status Epilepticus , 2023, Biomedicines.
[8] C. Melo,et al. Successful Treatment of a Child With Epileptic Encephalopathy With Spike-Wave Activation in Sleep and GRIN2A Variant Using Sulthiame , 2023, Cureus.
[9] E. G. Varlamova,et al. Neuronal Calcium Sensor-1 Protects Cortical Neurons from Hyperexcitation and Ca2+ Overload during Ischemia by Protecting the Population of GABAergic Neurons , 2022, International journal of molecular sciences.
[10] D. Garbuz,et al. Rodent Models of Audiogenic Epilepsy: Genetic Aspects, Advantages, Current Problems and Perspectives , 2022, Biomedicines.
[11] R. Zarychanski,et al. Efficacy and safety of perampanel in epilepsy: A systematic review and meta-analysis of randomised controlled trials , 2022, Seizure.
[12] S. Prasad,et al. Gene Therapy: Novel Approaches to Targeting Monogenic Epilepsies , 2022, Frontiers in Neurology.
[13] S. Russek,et al. Regulation of Inhibitory Signaling at the Receptor and Cellular Level; Advances in Our Understanding of GABAergic Neurotransmission and the Mechanisms by Which It Is Disrupted in Epilepsy , 2022, Frontiers in Synaptic Neuroscience.
[14] Feng Yan,et al. Animal Models of Epilepsy: A Phenotype-oriented Review , 2022, Aging and disease.
[15] Liu Fan,et al. Roles of N-Methyl-D-Aspartate Receptors (NMDARs) in Epilepsy , 2022, Frontiers in Molecular Neuroscience.
[16] D. Sosnin,et al. Role of the GRIN1 gene polymorphism in the formation of post-traumatic epilepsy , 2021, I.P. Pavlov Russian Medical Biological Herald.
[17] Yi-wu Shi,et al. GRIN2A Variants Associated With Idiopathic Generalized Epilepsies , 2021, Frontiers in Molecular Neuroscience.
[18] K. Holton,et al. Brain concentrations of glutamate and GABA in human epilepsy: A review , 2021, Seizure.
[19] E. G. Varlamova,et al. Role of Satb1 and Satb2 Transcription Factors in the Glutamate Receptors Expression and Ca2+ Signaling in the Cortical Neurons In Vitro , 2021, International journal of molecular sciences.
[20] J. Ramirez,et al. Suppression of PIK3CA-driven epileptiform activity by acute pathway control , 2021, bioRxiv.
[21] R. Mithen,et al. Epigenetics, microRNA and Metabolic Syndrome: A Comprehensive Review , 2021, International journal of molecular sciences.
[22] N. Srinivasan,et al. Influence of Disease-Causing Mutations on Protein Structural Networks , 2021, Frontiers in Molecular Biosciences.
[23] A. Gonzalez-Sulser,et al. Modelling epilepsy in the mouse: challenges and solutions , 2021, Disease Models & Mechanisms.
[24] V. Tarabykin,et al. Interleukin-10 restores glutamate receptor-mediated Ca2+-signaling in brain circuits under loss of Sip1 transcription factor , 2020, The International journal of neuroscience.
[25] T. Hanada,et al. Ionotropic Glutamate Receptors in Epilepsy: A Review Focusing on AMPA and NMDA Receptors , 2020, Biomolecules.
[26] J. Lugo,et al. Therapeutic role of targeting mTOR signaling and neuroinflammation in epilepsy , 2020, Epilepsy Research.
[27] K. Roche,et al. Regulation of NMDA glutamate receptor functions by the GluN2 subunits , 2020, Journal of neurochemistry.
[28] E. Beghi. The Epidemiology of Epilepsy , 2019, Neuroepidemiology.
[29] D. Pilz,et al. Incidence and phenotypes of childhood-onset genetic epilepsies: a prospective population-based national cohort , 2019, Brain : a journal of neurology.
[30] Jeong Ho Lee,et al. Mechanistic Target of Rapamycin Pathway in Epileptic Disorders , 2019, Journal of Korean Neurosurgical Society.
[31] Z. Li,et al. Threshold for maximal electroshock seizures (MEST) at three developmental stages in young mice , 2019, Zoological research.
[32] D. Fabbro,et al. The novel, catalytic mTORC1/2 inhibitor PQR620 and the PI3K/mTORC1/2 inhibitor PQR530 effectively cross the blood-brain barrier and increase seizure threshold in a mouse model of chronic epilepsy , 2018, Neuropharmacology.
[33] V. Tarabykin,et al. Identification of Novel Mutations Controlling Cerebral Cortex Malformations Caused by ENU-Induced Mutagenesis in the Mouse , 2018, Sovremennye tehnologii v medicine.
[34] R. Nuydens,et al. Image-Based Profiling of Synaptic Connectivity in Primary Neuronal Cell Culture , 2018, Front. Neurosci..
[35] A. Rodríguez-Moreno,et al. Kainate Receptors: Role in Epilepsy , 2018, Front. Mol. Neurosci..
[36] K. Yamagata,et al. Pentylenetetrazole-Induced Kindling Mouse Model. , 2018, Journal of visualized experiments : JoVE.
[37] J. Riera,et al. Histological Characterization of the Irritative Zones in Focal Cortical Dysplasia Using a Preclinical Rat Model , 2018, Front. Cell. Neurosci..
[38] P. Wagley,et al. The Role of Kainate Receptors in the Pathophysiology of Hypoxia-Induced Seizures in the Neonatal Mouse , 2018, Scientific Reports.
[39] R. Hevner,et al. Hemimegalencephaly and Dysplastic Megalencephaly , 2018 .
[40] E. Turovsky,et al. Calcium-Binding Proteins Protect GABAergic Neurons of the Hippocampus from Hypoxia and Ischemia in vitro , 2018, Biochemistry (Moscow), Supplement Series A: Membrane and Cell Biology.
[41] S. Chuang,et al. Genetic and Molecular Regulation of Extrasynaptic GABA-A Receptors in the Brain: Therapeutic Insights for Epilepsy , 2018, The Journal of Pharmacology and Experimental Therapeutics.
[42] Yuxian Liu,et al. Geniposide attenuates epilepsy symptoms in a mouse model through the PI3K/Akt/GSK-3β signaling pathway. , 2017, Experimental and therapeutic medicine.
[43] A. Grottesi,et al. Lethal digenic mutations in the K+ channels Kir4.1 (KCNJ10) and SLACK (KCNT1) associated with severe-disabling seizures and neurodevelopmental delay. , 2017, Journal of neurophysiology.
[44] Zhen Xia,et al. Genetic and epigenetic mechanisms of epilepsy: a review , 2017, Neuropsychiatric disease and treatment.
[45] Yi-wu Shi,et al. Epilepsy-associated genes , 2017, Seizure.
[46] Jing Gao,et al. AMPA Receptor Antagonist NBQX Decreased Seizures by Normalization of Perineuronal Nets , 2016, PloS one.
[47] J. Fish,et al. SATB2‐associated syndrome: Mechanisms, phenotype, and practical recommendations , 2016, American journal of medical genetics. Part A.
[48] Asla Pitkänen,et al. Advances in the development of biomarkers for epilepsy , 2016, The Lancet Neurology.
[49] E. Turovsky,et al. The role of parvalbumin-containing interneurons in the regulation of spontaneous synchronous activity of brain neurons in culture , 2016 .
[50] Marco Fuenzalida,et al. Plasticity of Hippocampal Excitatory-Inhibitory Balance: Missing the Synaptic Control in the Epileptic Brain , 2016, Neural plasticity.
[51] T. McHugh,et al. CA3 Synaptic Silencing Attenuates Kainic Acid-Induced Seizures and Hippocampal Network Oscillations123 , 2016, eNeuro.
[52] G. Mills,et al. Mouse models of human PIK3CA-related brain overgrowth have acutely treatable epilepsy , 2015, eLife.
[53] M. Hammell,et al. TEtranscripts: a package for including transposable elements in differential expression analysis of RNA-seq datasets , 2015, Bioinform..
[54] D. Lindhout,et al. Remarkable Phenytoin Sensitivity in 4 Children with SCN8A-related Epilepsy: A Molecular Neuropharmacological Approach , 2015, Neurotherapeutics.
[55] W. Löscher,et al. The AMPA receptor antagonist NBQX exerts anti-seizure but not antiepileptogenic effects in the intrahippocampal kainate mouse model of mesial temporal lobe epilepsy , 2015, Neuropharmacology.
[56] A. Gourine,et al. Impaired CO2 sensitivity of astrocytes in a mouse model of Rett syndrome , 2015, The Journal of physiology.
[57] C. Mulle,et al. Physiopathology of kainate receptors in epilepsy. , 2015, Current opinion in pharmacology.
[58] M. Wong,et al. mTOR Inhibition in Epilepsy: Rationale and Clinical Perspectives , 2015, CNS Drugs.
[59] C. Mulle,et al. Contribution of aberrant GluK2-containing kainate receptors to chronic seizures in temporal lobe epilepsy. , 2014, Cell reports.
[60] W. Dobyns,et al. Malformations of cortical development: clinical features and genetic causes , 2014, The Lancet Neurology.
[61] F. Jensen,et al. Subunit composition of glutamate and gamma-aminobutyric acid receptors in status epilepticus , 2014, Epilepsy Research.
[62] B. Fritsch,et al. Role of GluK1 Kainate Receptors in Seizures, Epileptic Discharges, and Epileptogenesis , 2014, The Journal of Neuroscience.
[63] Xiaoxu Liu,et al. Aged black garlic extract inhibits HT29 colon cancer cell growth via the PI3K/Akt signaling pathway. , 2014, Biomedical reports.
[64] D. Adams,et al. Functional Analysis of a De Novo GRIN2A Missense Mutation Associated with Early-onset Epileptic Encephalopathy , 2014, Nature Communications.
[65] M. Walker,et al. Seizure-induced reduction in PIP3 levels contributes to seizure-activity and is rescued by valproic acid , 2014, Neurobiology of Disease.
[66] Peter M. Klein,et al. AMPA Receptor antagonist NBQX attenuates later‐life epileptic seizures and autistic‐like social deficits following neonatal seizures , 2013, Epilepsia.
[67] J. Lerma,et al. Kainate Receptors in Health and Disease , 2013, Neuron.
[68] U. Stephani,et al. Mutations in GRIN2A cause idiopathic focal epilepsy with rolandic spikes , 2013, Nature Genetics.
[69] Anne de Saint Martin,et al. GRIN2A mutations in acquired epileptic aphasia and related childhood focal epilepsies and encephalopathies with speech and language dysfunction , 2013, Nature Genetics.
[70] J. Shendure,et al. GRIN2A mutations cause epilepsy-aphasia spectrum disorders , 2013, Nature Genetics.
[71] Yevgeny Berdichevsky,et al. PI3K-Akt Signaling Activates mTOR-Mediated Epileptogenesis in Organotypic Hippocampal Culture Model of Post-Traumatic Epilepsy , 2013, The Journal of Neuroscience.
[72] E. Luijtelaar,et al. Neurochemical and Behavioral Features in Genetic Absence Epilepsy and in Acutely Induced Absence Seizures , 2013, ISRN neurology.
[73] J. Hardy,et al. Use of next-generation sequencing and other whole-genome strategies to dissect neurological disease , 2012, Nature Reviews Neuroscience.
[74] H. Masuya,et al. Behavioral and neuromorphological characterization of a novel Tuba1 mutant mouse , 2012, Behavioural Brain Research.
[75] Yafei Zhang,et al. ENU Mutagenesis Screen to Establish Motor Phenotypes in Wild-Type Mice and Modifiers of a Pre-Existing Motor Phenotype in Tau Mutant Mice , 2011, Journal of biomedicine & biotechnology.
[76] T. Fuchs,et al. GABAA Receptor Trafficking-Mediated Plasticity of Inhibitory Synapses , 2011, Neuron.
[77] Carol A. Bocchini,et al. A new face and new challenges for Online Mendelian Inheritance in Man (OMIM®) , 2011, Human mutation.
[78] M. Pangalos,et al. Prolonged activation of NMDA receptors promotes dephosphorylation and alters postendocytic sorting of GABAB receptors , 2010, Proceedings of the National Academy of Sciences.
[79] A. P. Einholm,et al. The Rapid-onset Dystonia Parkinsonism Mutation D923N of the Na+,K+-ATPase α3 Isoform Disrupts Na+ Interaction at the Third Na+ Site* , 2010, The Journal of Biological Chemistry.
[80] C. Ackerley,et al. Mutation I810N in the α3 isoform of Na+,K+-ATPase causes impairments in the sodium pump and hyperexcitability in the CNS , 2009, Proceedings of the National Academy of Sciences.
[81] M. Z. Cader,et al. An ENU-induced mutation in mouse glycyl-tRNA synthetase (GARS) causes peripheral sensory and motor phenotypes creating a model of Charcot-Marie-Tooth type 2D peripheral neuropathy , 2009, Disease Models & Mechanisms.
[82] R. Ebstein,et al. Association Between Sodium- and Potassium-Activated Adenosine Triphosphatase α Isoforms and Bipolar Disorders , 2009, Biological Psychiatry.
[83] S. Wroe,et al. The cognitive and psychomotor effects of remacemide and carbamazepine in newly diagnosed epilepsy , 2009, Epilepsy & Behavior.
[84] Jürgen Götz,et al. Parkinsonism and impaired axonal transport in a mouse model of frontotemporal dementia , 2008, Proceedings of the National Academy of Sciences.
[85] F. Jensen,et al. Early Alterations of AMPA Receptors Mediate Synaptic Potentiation Induced by Neonatal Seizures , 2008, The Journal of Neuroscience.
[86] Steve D. M. Brown,et al. Impaired Synaptic Plasticity and Motor Learning in Mice with a Point Mutation Implicated in Human Speech Deficits , 2008, Current Biology.
[87] Aristea S Galanopoulou,et al. GABAA Receptors in Normal Development and Seizures: Friends or Foes? , 2008, Current neuropharmacology.
[88] J. Winkler,et al. Human in vitro reporter model of neuronal development and early differentiation processes , 2008, BMC Neuroscience.
[89] John G. Sled,et al. Behavioral Phenotypes of Disc1 Missense Mutations in Mice , 2007, Neuron.
[90] Y. Sekino,et al. GABAergic Interneurons Facilitate Mossy Fiber Excitability in the Developing Hippocampus , 2007, The Journal of Neuroscience.
[91] C. Walsh,et al. Molecular insights into human brain evolution , 2005, Nature.
[92] J. Lerma,et al. A Mosaic of Functional Kainate Receptors in Hippocampal Interneurons , 2004, The Journal of Neuroscience.
[93] K. Yamakawa,et al. A Nonsense Mutation of the Sodium Channel Gene SCN2A in a Patient with Intractable Epilepsy and Mental Decline , 2004, The Journal of Neuroscience.
[94] M. Bucan,et al. The mouse: genetics meets behaviour , 2002, Nature Reviews Genetics.
[95] Thomas D. Schmittgen,et al. Analysis of relative gene expression data using real-time quantitative PCR and the 2(-Delta Delta C(T)) Method. , 2001, Methods.
[96] B. Diamond,et al. A subset of lupus anti-DNA antibodies cross-reacts with the NR2 glutamate receptor in systemic lupus erythematosus , 2001, Nature Medicine.
[97] Y. Ben-Ari,et al. Kainate, a double agent that generates seizures: two decades of progress , 2000, Trends in Neurosciences.
[98] Steve D. M. Brown,et al. A systematic, genome-wide, phenotype-driven mutagenesis programme for gene function studies in the mouse , 2000, Nature Genetics.
[99] Klaus Schughart,et al. Genome-wide, large-scale production of mutant mice by ENU mutagenesis , 2000, Nature Genetics.
[100] R. Nicoll,et al. Synaptic kainate receptors , 2000, Current Opinion in Neurobiology.
[101] H. Zoghbi,et al. Rett syndrome is caused by mutations in X-linked MECP2, encoding methyl-CpG-binding protein 2 , 1999, Nature Genetics.
[102] S. Berkovic,et al. A potassium channel mutation in neonatal human epilepsy. , 1998, Science.
[103] C. Collins,et al. Mapping of the human NMDA receptor subunit (NMDAR1) and the proposed NMDA receptor glutamate-binding subunit (NMDARA1) to chromosomes 9q34.3 and chromosome 8, respectively. , 1993, Genomics.
[104] U. Ungerstedt,et al. Seizure related elevations of extracellular amino acids in human focal epilepsy , 1992, Neuroscience Letters.
[105] A. Jalil,et al. Treatment of pilocarpine-induced epileptic seizures in adult male mice. , 2022, Brazilian journal of biology = Revista brasleira de biologia.
[106] A. Gourine,et al. Impaired CO 2 sensitivity of astrocytes in a mouse model of Rett syndrome , 2015 .
[107] Thomas R. Gingeras,et al. STAR: ultrafast universal RNA-seq aligner , 2013, Bioinform..
[108] S. Baraban. Animal Models of Epilepsy , 2009, Neuromethods.
[109] Y. Ben-Ari. Seizures beget seizures: the quest for GABA as a key player. , 2006, Critical reviews in neurobiology.
[110] S. Elsea,et al. The mousetrap: what we can learn when the mouse model does not mimic the human disease. , 2002, ILAR journal.
[111] M. J. Justice,et al. Mouse ENU mutagenesis. , 1999, Human molecular genetics.
[112] Mark Leppert,et al. A novel potassium channel gene, KCNQ2, is mutated in an inherited epilepsy of newborns , 1998, Nature Genetics.
[113] Thomas D. Schmittgen,et al. Analysis of Relative Gene Expression Data Using Real-Time Quantitative PCR and the 2 2 DD C T Method , 2022 .