DNA methyltransferase isoforms expression in the temporal lobe of epilepsy patients with a history of febrile seizures
暂无分享,去创建一个
O. Schijns | B. Rutten | G. Hoogland | L. de Nijs | H. Steinbusch | J. Dings | D. V. D. van den Hove | K. Choe
[1] M. D. Del Bigio,et al. DNA methylation and histone post-translational modification stability in post-mortem brain tissue , 2019, Clinical Epigenetics.
[2] S. Orozco-Suárez,et al. The molecular hallmarks of epigenetic effects mediated by antiepileptic drugs , 2019, Epilepsy Research.
[3] B. Luo,et al. Intergenerational Transmission of Enhanced Seizure Susceptibility after Febrile Seizures , 2017, EBioMedicine.
[4] L. Monteggia,et al. Impact of DNMT1 and DNMT3a forebrain knockout on depressive- and anxiety like behavior in mice , 2016, Neurobiology of Learning and Memory.
[5] Zhong Chen,et al. Generation of Febrile Seizures and Subsequent Epileptogenesis , 2016, Neuroscience Bulletin.
[6] H. Bading,et al. Dnmt3a2: a hub for enhancing cognitive functions , 2016, Molecular Psychiatry.
[7] A. El-Osta,et al. Etiology matters – Genomic DNA Methylation Patterns in Three Rat Models of Acquired Epilepsy , 2016, Scientific Reports.
[8] Peter A. Jones,et al. DNMT3B isoforms without catalytic activity stimulate gene body methylation as accessory proteins in somatic cells , 2016, Nature Communications.
[9] Xue-feng Wang,et al. DNA Methylation Profiling Reveals Correlation of Differential Methylation Patterns with Gene Expression in Human Epilepsy , 2016, Journal of Molecular Neuroscience.
[10] A. Ebner,et al. Hippocampal GABA transporter distribution in patients with temporal lobe epilepsy and hippocampal sclerosis , 2015, Journal of Chemical Neuroanatomy.
[11] Junjiu Huang,et al. The Daxx/Atrx Complex Protects Tandem Repetitive Elements during DNA Hypomethylation by Promoting H3K9 Trimethylation. , 2015, Cell stem cell.
[12] R. Stallings,et al. Differential DNA methylation profiles of coding and non-coding genes define hippocampal sclerosis in human temporal lobe epilepsy. , 2015, Brain : a journal of neurology.
[13] L. Monteggia,et al. Selective role for DNMT3a in learning and memory , 2014, Neurobiology of Learning and Memory.
[14] Lian Zhang,et al. Influences of hyperthermia-induced seizures on learning, memory and phosphorylative state of CaMKIIα in rat hippocampus , 2014, Brain Research.
[15] S. Balasubramanian,et al. A screen for hydroxymethylcytosine and formylcytosine binding proteins suggests functions in transcription and chromatin regulation , 2013, Genome Biology.
[16] S. Clinton,et al. DNA methylation markers in the postnatal developing rat brain , 2013, Brain Research.
[17] J. Hablitz,et al. Status epilepticus triggers early and late alterations in brain-derived neurotrophic factor and NMDA glutamate receptor Grin2b DNA methylation levels in the hippocampus , 2013, Neuroscience.
[18] I. Blümcke,et al. Deep sequencing reveals increased DNA methylation in chronic rat epilepsy , 2013, Acta Neuropathologica.
[19] Matthew D. Schultz,et al. Global Epigenomic Reconfiguration During Mammalian Brain Development , 2013, Science.
[20] Eleanor M. Pritchard,et al. Epigenetic changes induced by adenosine augmentation therapy prevent epileptogenesis. , 2013, The Journal of clinical investigation.
[21] Maria Thom,et al. International consensus classification of hippocampal sclerosis in temporal lobe epilepsy: A Task Force report from the ILAE Commission on Diagnostic Methods , 2013, Epilepsia.
[22] Zhigang Xue,et al. Dnmt3a regulates both proliferation and differentiation of mouse neural stem cells , 2012, Journal of neuroscience research.
[23] R. Scott,et al. Recognition memory is impaired in children after prolonged febrile seizures. , 2012, Brain : a journal of neurology.
[24] B. Blencowe,et al. 5-hmC in the brain is abundant in synaptic genes and shows differences at the exon-intron boundary , 2012, Nature Structural &Molecular Biology.
[25] Hilmar Bading,et al. Rescue of aging-associated decline in Dnmt3a2 expression restores cognitive abilities , 2012, Nature Neuroscience.
[26] A. Guidotti,et al. DNA methyltransferases1 (DNMT1) and 3a (DNMT3a) colocalize with GAD67‐positive neurons in the GAD67‐GFP mouse brain , 2012, The Journal of comparative neurology.
[27] F. Lubin. Epileptogenesis: Can the Science of Epigenetics Give Us Answers? , 2012, Epilepsy currents.
[28] R. Stallings,et al. Differential DNA Methylation Patterns Define Status Epilepticus and Epileptic Tolerance , 2012, The Journal of Neuroscience.
[29] Xue-feng Wang,et al. Increased Expression of DNA methyltransferase 1 and 3a in Human Temporal Lobe Epilepsy , 2012, Journal of Molecular Neuroscience.
[30] J. Berg,et al. Dnmt3a is essential for hematopoietic stem cell differentiation , 2011, Nature Genetics.
[31] Madeleine P. Ball,et al. Neuronal activity modifies DNA methylation landscape in the adult brain , 2011, Nature Neuroscience.
[32] P. Horn,et al. Evaluating reference genes to normalize gene expression in human epileptogenic brain tissues. , 2010, Biochemical and biophysical research communications.
[33] Yi Zhang,et al. Dnmt3a-Dependent Nonpromoter DNA Methylation Facilitates Transcription of Neurogenic Genes , 2010, Science.
[34] J. Morrison,et al. Dnmt3a regulates emotional behavior and spine plasticity in the nucleus accumbens , 2010, Nature Neuroscience.
[35] J. Sweatt,et al. Cortical DNA methylation maintains remote memory , 2010, Nature Neuroscience.
[36] Guoping Fan,et al. Dnmt1 and Dnmt3a maintain DNA methylation and regulate synaptic function in adult forebrain neurons , 2010, Nature Neuroscience.
[37] David R. Liu,et al. Conversion of 5-Methylcytosine to 5- Hydroxymethylcytosine in Mammalian DNA by the MLL Partner TET1 , 2009 .
[38] T. Baram,et al. Febrile seizures: Mechanisms and relationship to epilepsy , 2009, Brain and Development.
[39] M. Hildebrandt,et al. Increased Reelin Promoter Methylation Is Associated With Granule Cell Dispersion in Human Temporal Lobe Epilepsy , 2009, Journal of neuropathology and experimental neurology.
[40] M. Mehler. Epigenetic principles and mechanisms underlying nervous system functions in health and disease , 2008, Progress in Neurobiology.
[41] Edgar Erdfelder,et al. G*Power 3: A flexible statistical power analysis program for the social, behavioral, and biomedical sciences , 2007, Behavior research methods.
[42] J. Sweatt,et al. Covalent Modification of DNA Regulates Memory Formation , 2007, Neuron.
[43] D. Watanabe,et al. Transition of mouse de novo methyltransferases expression from Dnmt3b to Dnmt3a during neural progenitor cell development , 2006, Neuroscience.
[44] B. Litt,et al. Temporal lobe epilepsy after experimental prolonged febrile seizures: prospective analysis. , 2006, Brain : a journal of neurology.
[45] E. Beuls,et al. Gender Differences in Febrile Seizure–induced Proliferation and Survival in the Rat Dentate Gyrus , 2005, Epilepsia.
[46] H. Okano,et al. Increased number of neural progenitors in human temporal lobe epilepsy , 2005, Neurobiology of Disease.
[47] K. Robertson. DNA methylation and human disease , 2005, Nature Reviews Genetics.
[48] E. Li,et al. The Central Nervous System , 2020, Practical Anatomy.
[49] En Li,et al. A Novel Dnmt3a Isoform Produced from an Alternative Promoter Localizes to Euchromatin and Its Expression Correlates with Activede Novo Methylation* , 2002, The Journal of Biological Chemistry.
[50] D. Haber,et al. DNA Methyltransferases Dnmt3a and Dnmt3b Are Essential for De Novo Methylation and Mammalian Development , 1999, Cell.
[51] X. Chen,et al. Two major forms of DNA (cytosine-5) methyltransferase in human somatic tissues. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[52] S. Benbadis. Is the underlying cause of epilepsy a major prognostic factor for recurrence? , 1999, Neurology.
[53] C. Adam,et al. Is the underlying cause of epilepsy a major prognostic factor for recurrence? , 1998, Neurology.
[54] Rudolf Jaenisch,et al. Targeted mutation of the DNA methyltransferase gene results in embryonic lethality , 1992, Cell.
[55] F. Chédin. The DNMT3 family of mammalian de novo DNA methyltransferases. , 2011, Progress in molecular biology and translational science.