Literature DB >> 23904623

Antisense reduction of tau in adult mice protects against seizures.

Sarah L DeVos1, Dustin K Goncharoff, Guo Chen, Carey S Kebodeaux, Kaoru Yamada, Floy R Stewart, Dorothy R Schuler, Susan E Maloney, David F Wozniak, Frank Rigo, C Frank Bennett, John R Cirrito, David M Holtzman, Timothy M Miller.   

Abstract

Tau, a microtubule-associated protein, is implicated in the pathogenesis of Alzheimer's Disease (AD) in regard to both neurofibrillary tangle formation and neuronal network hyperexcitability. The genetic ablation of tau substantially reduces hyperexcitability in AD mouse lines, induced seizure models, and genetic in vivo models of epilepsy. These data demonstrate that tau is an important regulator of network excitability. However, developmental compensation in the genetic tau knock-out line may account for the protective effect against seizures. To test the efficacy of a tau reducing therapy for disorders with a detrimental hyperexcitability profile in adult animals, we identified antisense oligonucleotides that selectively decrease endogenous tau expression throughout the entire mouse CNS--brain and spinal cord tissue, interstitial fluid, and CSF--while having no effect on baseline motor or cognitive behavior. In two chemically induced seizure models, mice with reduced tau protein had less severe seizures than control mice. Total tau protein levels and seizure severity were highly correlated, such that those mice with the most severe seizures also had the highest levels of tau. Our results demonstrate that endogenous tau is integral for regulating neuronal hyperexcitability in adult animals and suggest that an antisense oligonucleotide reduction of tau could benefit those with epilepsy and perhaps other disorders associated with tau-mediated neuronal hyperexcitability.

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Year:  2013        PMID: 23904623      PMCID: PMC3728694          DOI: 10.1523/JNEUROSCI.2107-13.2013

Source DB:  PubMed          Journal:  J Neurosci        ISSN: 0270-6474            Impact factor:   6.167


  82 in total

1.  Tau transgenic mice as models for cerebrospinal fluid tau biomarkers.

Authors:  Donna M Barten; Gregory W Cadelina; Nina Hoque; Lynn B DeCarr; Valerie L Guss; Ling Yang; Sethu Sankaranarayanan; Paul D Wes; Marianne E Flynn; Jere E Meredith; Michael K Ahlijanian; Charles F Albright
Journal:  J Alzheimers Dis       Date:  2011       Impact factor: 4.472

2.  Chemical pathology of neurofibrils. Neurofibrillary tangles of Alzheimer's presenile-senile dementia.

Authors:  K Iqbal; H M Wisniewski; I Grundke-Iqbal; J K Korthals; R D Terry
Journal:  J Histochem Cytochem       Date:  1975-07       Impact factor: 2.479

3.  Decreased cerebrospinal fluid Abeta(42) correlates with brain atrophy in cognitively normal elderly.

Authors:  Anne M Fagan; Denise Head; Aarti R Shah; Daniel Marcus; Mark Mintun; John C Morris; David M Holtzman
Journal:  Ann Neurol       Date:  2009-02       Impact factor: 10.422

4.  Amyloid-β signals through tau to drive ectopic neuronal cell cycle re-entry in Alzheimer's disease.

Authors:  Matthew E Seward; Eric Swanson; Andrés Norambuena; Anja Reimann; J Nicholas Cochran; Rong Li; Erik D Roberson; George S Bloom
Journal:  J Cell Sci       Date:  2013-01-23       Impact factor: 5.285

5.  A single administration of morpholino antisense oligomer rescues spinal muscular atrophy in mouse.

Authors:  Paul N Porensky; Chalermchai Mitrpant; Vicki L McGovern; Adam K Bevan; Kevin D Foust; Brain K Kaspar; Stephen D Wilton; Arthur H M Burghes
Journal:  Hum Mol Genet       Date:  2011-12-20       Impact factor: 6.150

Review 6.  Critical review of current animal models of seizures and epilepsy used in the discovery and development of new antiepileptic drugs.

Authors:  Wolfgang Löscher
Journal:  Seizure       Date:  2011-02-02       Impact factor: 3.184

7.  ApoE epsilon4 genotype and the age at onset of temporal lobe epilepsy: a case-control study and meta-analysis.

Authors:  Marcelo Andrés Kauffman; Damián Consalvo; Dolores Gonzalez Moron; Virginia Pujol Lereis; Silvia Kochen
Journal:  Epilepsy Res       Date:  2010-06-15       Impact factor: 3.045

8.  Apoptotic neurodegeneration induced by ethanol in neonatal mice is associated with profound learning/memory deficits in juveniles followed by progressive functional recovery in adults.

Authors:  David F Wozniak; Richard E Hartman; Maureen P Boyle; Sherri K Vogt; Ashley R Brooks; Tatyana Tenkova; Chainllie Young; John W Olney; Louis J Muglia
Journal:  Neurobiol Dis       Date:  2004-12       Impact factor: 5.996

9.  Age-appropriate cognition and subtle dopamine-independent motor deficits in aged tau knockout mice.

Authors:  Meaghan Morris; Patricia Hamto; Anthony Adame; Nino Devidze; Eliezer Masliah; Lennart Mucke
Journal:  Neurobiol Aging       Date:  2013-01-16       Impact factor: 4.673

10.  Solid phase synthesis of phosphorothioate oligonucleotides utilizing diethyldithiocarbonate disulfide (DDD) as an efficient sulfur transfer reagent.

Authors:  Zacharia S Cheruvallath; R Krishna Kumar; Claus Rentel; Douglas L Cole; Vasulinga T Ravikumar
Journal:  Nucleosides Nucleotides Nucleic Acids       Date:  2003-04       Impact factor: 1.381

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  117 in total

1.  One Mutation Deserves Another in the Quest for Antiepileptogenesis.

Authors:  Bret N Smith
Journal:  Epilepsy Curr       Date:  2015 Jul-Aug       Impact factor: 7.500

2.  Mechanisms of tau and Aβ-induced excitotoxicity.

Authors:  Susanne P Pallo; John DiMaio; Alexis Cook; Bradley Nilsson; Gail V W Johnson
Journal:  Brain Res       Date:  2015-12-28       Impact factor: 3.252

Review 3.  RNA-targeted Therapeutics for ALS.

Authors:  Linga V Reddy; Timothy M Miller
Journal:  Neurotherapeutics       Date:  2015-04       Impact factor: 7.620

4.  Tau-dependent Kv4.2 depletion and dendritic hyperexcitability in a mouse model of Alzheimer's disease.

Authors:  Alicia M Hall; Benjamin T Throesch; Susan C Buckingham; Sean J Markwardt; Yin Peng; Qin Wang; Dax A Hoffman; Erik D Roberson
Journal:  J Neurosci       Date:  2015-04-15       Impact factor: 6.167

5.  Tau reduction in the presence of amyloid-β prevents tau pathology and neuronal death in vivo.

Authors:  Sarah L DeVos; Bianca T Corjuc; Caitlin Commins; Simon Dujardin; Riley N Bannon; Diana Corjuc; Benjamin D Moore; Rachel E Bennett; Mehdi Jorfi; Jose A Gonzales; Patrick M Dooley; Allyson D Roe; Rose Pitstick; Daniel Irimia; Matthew P Frosch; George A Carlson; Bradley T Hyman
Journal:  Brain       Date:  2018-07-01       Impact factor: 13.501

6.  Maturation and phenotype of pathophysiological neuronal excitability of human cells in tau-related dementia.

Authors:  Olga Kopach; Noemí Esteras; Selina Wray; Dmitri A Rusakov; Andrey Y Abramov
Journal:  J Cell Sci       Date:  2020-05-27       Impact factor: 5.285

Review 7.  Therapeutic strategies for the treatment of tauopathies: Hopes and challenges.

Authors:  Mansi R Khanna; Jane Kovalevich; Virginia M-Y Lee; John Q Trojanowski; Kurt R Brunden
Journal:  Alzheimers Dement       Date:  2016-10       Impact factor: 21.566

8.  Tau Accumulation in Clinically Normal Older Adults Is Associated with Hippocampal Hyperactivity.

Authors:  Willem Huijbers; Aaron P Schultz; Kathryn V Papp; Molly R LaPoint; Bernard Hanseeuw; Jasmeer P Chhatwal; Trey Hedden; Keith A Johnson; Reisa A Sperling
Journal:  J Neurosci       Date:  2018-11-27       Impact factor: 6.167

Review 9.  Lafora disease - from pathogenesis to treatment strategies.

Authors:  Felix Nitschke; Saija J Ahonen; Silvia Nitschke; Sharmistha Mitra; Berge A Minassian
Journal:  Nat Rev Neurol       Date:  2018-10       Impact factor: 42.937

10.  Pathogenic Tau Impairs Axon Initial Segment Plasticity and Excitability Homeostasis.

Authors:  Peter Dongmin Sohn; Cindy Tzu-Ling Huang; Rui Yan; Li Fan; Tara E Tracy; Carolina M Camargo; Kelly M Montgomery; Taylor Arhar; Sue-Ann Mok; Rebecca Freilich; Justin Baik; Manni He; Shiaoching Gong; Erik D Roberson; Celeste M Karch; Jason E Gestwicki; Ke Xu; Kenneth S Kosik; Li Gan
Journal:  Neuron       Date:  2019-09-18       Impact factor: 17.173

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