Ketone bodies promote stroke recovery via GAT-1-dependent cortical network remodeling.
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Lei Chang | Jie Chen | D. Zhu | Jin Wu | Haiyin Wu | C. Luo | Huanyu Ni | Di Yang | Yanyu Sun | Long Lin | Yuhui Lin | Xiu-Mei Xu | Feng Wu | Zhenquan Huang | Shi-Yi Li | Pei-Lin Jiang | Bo Hu | Chunxia Luo
[1] Xiaomei Zhou,et al. Inhibition of HDAC3 and ATXN3 by miR-25 prevents neuronal loss and ameliorates neurological recovery in cerebral stroke experimental rats , 2022, Journal of physiology and biochemistry.
[2] R. Kelley,et al. Overview of Acute Ischemic Stroke Evaluation and Management , 2021, Biomedicines.
[3] A. Giménez-Cassina,et al. Ketone Bodies in the Brain Beyond Fuel Metabolism: From Excitability to Gene Expression and Cell Signaling , 2021, Frontiers in Molecular Neuroscience.
[4] J. Twiss,et al. Neurobiology: Resetting the axon’s batteries , 2021, Current Biology.
[5] D. Lal,et al. Common molecular mechanisms of SLC6A1 variant-mediated neurodevelopmental disorders in astrocytes and neurons. , 2021, Brain : a journal of neurology.
[6] Lei Chang,et al. Environmental enrichment implies GAT-1 as a potential therapeutic target for stroke recovery , 2021, Theranostics.
[7] M. Chopp,et al. Axonal remodeling of the corticospinal tract during neurological recovery after stroke , 2020, Neural regeneration research.
[8] S. Carmichael,et al. Encouraging an excitable brain state: mechanisms of brain repair in stroke , 2020, Nature Reviews Neuroscience.
[9] M. Mattson,et al. Brain energy rescue: an emerging therapeutic concept for neurodegenerative disorders of ageing , 2020, Nature Reviews Drug Discovery.
[10] Lei Chang,et al. HDAC2 (Histone deacetylase 2): A critical factor in environmental enrichment‐mediated stroke recovery , 2020, Journal of neurochemistry.
[11] Yung-Yang Lin,et al. β-Oscillations Reflect Recovery of the Paretic Upper Limb in Subacute Stroke , 2020, Neurorehabilitation and neural repair.
[12] W. Byblow,et al. Neurochemical balance and inhibition at the sub-acute stage after stroke. , 2020, Journal of neurophysiology.
[13] L. Pirola,et al. Modulation of Cellular Biochemistry, Epigenetics and Metabolomics by Ketone Bodies. Implications of the Ketogenic Diet in the Physiology of the Organism and Pathological States , 2020, Nutrients.
[14] Adam L. Haber,et al. Ketone Body Signaling Mediates Intestinal Stem Cell Homeostasis and Adaptation to Diet , 2019, Cell.
[15] Lei Chang,et al. Dissociating nNOS (Neuronal NO Synthase)-CAPON (Carboxy-Terminal Postsynaptic Density-95/Discs Large/Zona Occludens-1 Ligand of nNOS) Interaction Promotes Functional Recovery After Stroke via Enhanced Structural Neuroplasticity , 2019, Stroke.
[16] S. Carmichael,et al. CCR5 Is a Therapeutic Target for Recovery after Stroke and Traumatic Brain Injury , 2019, Cell.
[17] James R. Mester,et al. Imaging the Effects of &bgr;-Hydroxybutyrate on Peri-Infarct Neurovascular Function and Metabolism , 2018, Stroke.
[18] Young T. Hong,et al. Relationships between selective neuronal loss and microglial activation after ischaemic stroke in man , 2018, Brain : a journal of neurology.
[19] J. Rho,et al. Do ketone bodies mediate the anti-seizure effects of the ketogenic diet? , 2018, Neuropharmacology.
[20] Lei Chang,et al. Dissociation of nNOS from PSD‐95 promotes functional recovery after cerebral ischaemia in mice through reducing excessive tonic GABA release from reactive astrocytes , 2018, The Journal of pathology.
[21] M. Elkind,et al. Disability Trajectories Before and After Stroke and Myocardial Infarction: The Cardiovascular Health Study , 2017, JAMA neurology.
[22] Lei Chang,et al. Opening a New Time Window for Treatment of Stroke by Targeting HDAC2 , 2017, The Journal of Neuroscience.
[23] Jan Konietzka,et al. Hepatic Ketogenesis Induced by Middle Cerebral Artery Occlusion in Mice , 2017, Journal of the American Heart Association.
[24] P. Puchalska,et al. Multi-dimensional Roles of Ketone Bodies in Fuel Metabolism, Signaling, and Therapeutics. , 2017, Cell metabolism.
[25] Sama F. Sleiman,et al. Exercise promotes the expression of brain derived neurotrophic factor (BDNF) through the action of the ketone body β-hydroxybutyrate , 2016, eLife.
[26] C. GÜrses,et al. Effects of beta-hydroxybutyrate on brain vascular permeability in rats with traumatic brain injury , 2016, Brain Research.
[27] Kristina D. Micheva,et al. Enhanced phasic GABA inhibition during the repair phase of stroke: a novel therapeutic target , 2015, Brain : a journal of neurology.
[28] Paul M. George,et al. Novel Stroke Therapeutics: Unraveling Stroke Pathophysiology and Its Impact on Clinical Treatments , 2015, Neuron.
[29] L. Savtchenko,et al. Synaptic GABA release prevents GABA transporter type-1 reversal during excessive network activity , 2015, Nature Communications.
[30] Yen-Chu Lin,et al. Sensory Detection of Food Rapidly Modulates Arcuate Feeding Circuits , 2015, Cell.
[31] E. Verdin,et al. β-hydroxybutyrate: much more than a metabolite. , 2014, Diabetes research and clinical practice.
[32] Domenico Formica,et al. Modulation of brain plasticity in stroke: a novel model for neurorehabilitation , 2014, Nature Reviews Neurology.
[33] Karl Deisseroth,et al. Optogenetic neuronal stimulation promotes functional recovery after stroke , 2014, Proceedings of the National Academy of Sciences.
[34] José C. Rubio,et al. Asynchronous therapy restores motor control by rewiring of the rat corticospinal tract after stroke , 2014, Science.
[35] H. Chen,et al. The β-hydroxybutyrate receptor HCA2 activates a neuroprotective subset of macrophages , 2014, Nature Communications.
[36] J. Krakauer,et al. The interaction between training and plasticity in the poststroke brain. , 2013, Current opinion in neurology.
[37] J. D. Macklis,et al. Molecular logic of neocortical projection neuron specification, development and diversity , 2013, Nature Reviews Neuroscience.
[38] Stefan R. Pulver,et al. Ultra-sensitive fluorescent proteins for imaging neuronal activity , 2013, Nature.
[39] Eric Verdin,et al. Suppression of Oxidative Stress by β-Hydroxybutyrate, an Endogenous Histone Deacetylase Inhibitor , 2013, Science.
[40] S. Haggarty,et al. An epigenetic blockade of cognitive functions in the neurodegenerating brain , 2012, Nature.
[41] M. Gassmann,et al. Post-acute delivery of erythropoietin induces stroke recovery by promoting perilesional tissue remodelling and contralesional pyramidal tract plasticity. , 2011, Brain : a journal of neurology.
[42] I. Módy,et al. Reducing excessive GABAergic tonic inhibition promotes post-stroke functional recovery , 2010, Nature.
[43] T. Murphy,et al. Plasticity during stroke recovery: from synapse to behaviour , 2009, Nature Reviews Neuroscience.
[44] E. Cherubini,et al. GAT‐1 regulates both tonic and phasic GABAA receptor‐mediated inhibition in the cerebral cortex , 2008, Journal of neurochemistry.
[45] P. Arlotta,et al. Neuronal subtype specification in the cerebral cortex , 2007, Nature Reviews Neuroscience.
[46] Li-Huei Tsai,et al. Recovery of learning and memory is associated with chromatin remodelling , 2007, Nature.
[47] S. Carmichael,et al. Growth-associated gene expression after stroke: evidence for a growth-promoting region in peri-infarct cortex , 2005, Experimental Neurology.
[48] Mikko Pohja,et al. On the human sensorimotor-cortex beta rhythm: Sources and modeling , 2005, NeuroImage.
[49] M. Farrant,et al. Variations on an inhibitory theme: phasic and tonic activation of GABAA receptors , 2005, Nature Reviews Neuroscience.
[50] H. Markram,et al. Interneurons of the neocortical inhibitory system , 2004, Nature Reviews Neuroscience.
[51] H. Lester,et al. GABA transporter-1 (GAT1)-deficient mice: differential tonic activation of GABAA versus GABAB receptors in the hippocampus. , 2003, Journal of neurophysiology.