Localization of PDE4D, HCN1 channels, and mGluR3 in rhesus macaque entorhinal cortex may confer vulnerability in Alzheimer’s disease
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P. Rakic | A. Arnsten | C. V. van Dyck | D. Datta | Jon I. Arellano | Alvaro Duque | Isabella Perone | Yury M Morozov
[1] D. P. Jenkins,et al. Interaction Between HCN and Slack Channels Regulates mPFC Pyramidal Cell Excitability and Working Memory , 2023, bioRxiv.
[2] Khaled S. Abd-Elrahman,et al. Targeting mGluR2/3 for treatment of neurodegenerative and neuropsychiatric diseases. , 2022, Pharmacology & therapeutics.
[3] A. Arnsten,et al. Inhibition of glutamate-carboxypeptidase-II in dorsolateral prefrontal cortex: potential therapeutic target for neuroinflammatory cognitive disorders , 2022, Molecular Psychiatry.
[4] T. Boczek,et al. Astrocytic Calcium and cAMP in Neurodegenerative Diseases , 2022, Frontiers in Cellular Neuroscience.
[5] A. Arnsten,et al. Glutamate Metabotropic Receptor Type 3 (mGlu3) Localization in the Rat Prelimbic Medial Prefrontal Cortex , 2022, Frontiers in Neuroanatomy.
[6] A. Arnsten,et al. Unusual Molecular Regulation of Dorsolateral Prefrontal Cortex Layer III Synapses Increases Vulnerability to Genetic and Environmental Insults in Schizophrenia , 2022, Biological Psychiatry.
[7] A. Nairn,et al. Glutamate Carboxypeptidase II in Aging Rat Prefrontal Cortex Impairs Working Memory Performance , 2021, Frontiers in Aging Neuroscience.
[8] A. Arnsten,et al. Studies of aging nonhuman primates illuminate the etiology of early‐stage Alzheimer's‐like neuropathology: An evolutionary perspective , 2021, American journal of primatology.
[9] A. Nairn,et al. Age‐related calcium dysregulation linked with tau pathology and impaired cognition in non‐human primates , 2021, Alzheimer's & dementia : the journal of the Alzheimer's Association.
[10] A. Arnsten,et al. The genie in the bottle-magnified calcium signaling in dorsolateral prefrontal cortex , 2020, Molecular Psychiatry.
[11] Henry M. Quillian,et al. Association of Missense Mutation in FOLH1 With Decreased NAAG Levels and Impaired Working Memory Circuitry and Cognition. , 2020, The American journal of psychiatry.
[12] A. Arnsten,et al. The Evolutionary Expansion of mGluR3-NAAG-GCPII Signaling: Relevance to Human Intelligence and Cognitive Disorders. , 2020, American Journal of Psychiatry.
[13] A. Arnsten,et al. Mapping Phosphodiesterase 4D (PDE4D) in Macaque Dorsolateral Prefrontal Cortex: Postsynaptic Compartmentalization in Layer III Pyramidal Cell Circuits , 2020, Frontiers in Neuroanatomy.
[14] H. Braak,et al. Hypothesis: Tau pathology is an initiating factor in sporadic Alzheimer's disease , 2020, Alzheimer's & dementia : the journal of the Alzheimer's Association.
[15] Yohan J. John,et al. Serial Prefrontal Pathways Are Positioned to Balance Cognition and Emotion in Primates , 2020, The Journal of Neuroscience.
[16] A. Nairn,et al. Alzheimer’s-like pathology in aging rhesus macaques: Unique opportunity to study the etiology and treatment of Alzheimer’s disease , 2019, Proceedings of the National Academy of Sciences.
[17] L. Buée,et al. From the prion-like propagation hypothesis to therapeutic strategies of anti-tau immunotherapy , 2019, Acta Neuropathologica.
[18] Jie Liu,et al. Targeting Autophagy for the Treatment of Alzheimer’s Disease: Challenges and Opportunities , 2019, Front. Mol. Neurosci..
[19] C. Chapman,et al. Dopamine induces release of calcium from internal stores in layer II lateral entorhinal cortex fan cells. , 2019, Cell calcium.
[20] A. Arnsten,et al. A novel dopamine D1 receptor agonist excites delay-dependent working memory-related neuronal firing in primate dorsolateral prefrontal cortex , 2019, Neuropharmacology.
[21] B. Hyman,et al. Different tau species lead to heterogeneous tau pathology propagation and misfolding , 2018, Acta Neuropathologica Communications.
[22] B. Rothermel,et al. Caveolin-1 impairs PKA-DRP1-mediated remodelling of ER–mitochondria communication during the early phase of ER stress , 2018, Cell Death & Differentiation.
[23] John Hardy,et al. Selective vulnerability in neurodegenerative diseases , 2018, Nature Neuroscience.
[24] H. Braak,et al. Tau seeding activity begins in the transentorhinal/entorhinal regions and anticipates phospho-tau pathology in Alzheimer’s disease and PART , 2018, Acta Neuropathologica.
[25] S. Burke,et al. Age-Related Declines in Prefrontal Cortical Expression of Metabotropic Glutamate Receptors that Support Working Memory , 2018, eNeuro.
[26] A. Arnsten,et al. mGluR2 versus mGluR3 Metabotropic Glutamate Receptors in Primate Dorsolateral Prefrontal Cortex: Postsynaptic mGluR3 Strengthen Working Memory Networks , 2018, Cerebral cortex.
[27] J. Mazer,et al. Core Differences in Synaptic Signaling Between Primary Visual and Dorsolateral Prefrontal Cortex , 2018, Cerebral cortex.
[28] Ágoston Török,et al. Context-dependent spatially periodic activity in the human entorhinal cortex , 2017, Proceedings of the National Academy of Sciences.
[29] J. Metzger,et al. Molecular inotropy mediated by cardiac miR-based PDE4D/PRKAR1α/phosphoprotein signaling , 2016, Scientific Reports.
[30] A. Arnsten,et al. mGluR2/3 mechanisms in primate dorsolateral prefrontal cortex: evidence for both presynaptic and postsynaptic actions , 2016, Molecular Psychiatry.
[31] D. Porteous,et al. NDE1 and GSK3β Associate with TRAK1 and Regulate Axonal Mitochondrial Motility: Identification of Cyclic AMP as a Novel Modulator of Axonal Mitochondrial Trafficking. , 2016, ACS chemical neuroscience.
[32] Marco Idiart,et al. Grid Cells and Place Cells: An Integrated View of their Navigational and Memory Function , 2015, Trends in Neurosciences.
[33] Mark P. Brandon,et al. During Running in Place, Grid Cells Integrate Elapsed Time and Distance Run , 2015, Neuron.
[34] H. Braak,et al. The preclinical phase of the pathological process underlying sporadic Alzheimer's disease. , 2015, Brain : a journal of neurology.
[35] A. Arnsten,et al. Stress weakens prefrontal networks: molecular insults to higher cognition , 2015, Nature Neuroscience.
[36] A. Arnsten,et al. Dopamine’s Actions in Primate Prefrontal Cortex: Challenges for Treating Cognitive Disorders , 2015, Pharmacological Reviews.
[37] P. Verstreken,et al. Synaptic Contacts Enhance Cell-to-Cell Tau Pathology Propagation. , 2015, Cell reports.
[38] David C Rowland,et al. Place cells, grid cells, and memory. , 2015, Cold Spring Harbor perspectives in biology.
[39] L. Trussell,et al. Presynaptic HCN Channels Regulate Vesicular Glutamate Transport , 2014, Neuron.
[40] T. Bonhoeffer,et al. Grid cells and cortical representation , 2014, Nature Reviews Neuroscience.
[41] Kelly A. Bordner,et al. cAMP-PKA phosphorylation of tau confers risk for degeneration in aging association cortex , 2014, Proceedings of the National Academy of Sciences.
[42] Zeshan Ahmed,et al. A novel in vivo model of tau propagation with rapid and progressive neurofibrillary tangle pathology: the pattern of spread is determined by connectivity, not proximity , 2014, Acta Neuropathologica.
[43] Christine M Constantinople,et al. Prefrontal Cortex HCN1 Channels Enable Intrinsic Persistent Neural Firing and Executive Memory Function , 2013, The Journal of Neuroscience.
[44] D. Burke,et al. HCN Channels: Function and clinical implications , 2013, Neurology.
[45] I. Fried,et al. Direct recordings of grid-like neuronal activity in human spatial navigation , 2013, Nature Neuroscience.
[46] A. Arnsten,et al. Constellation of HCN channels and cAMP regulating proteins in dendritic spines of the primate prefrontal cortex: potential substrate for working memory deficits in schizophrenia. , 2013, Cerebral cortex.
[47] J. Morrison,et al. NMDA Receptors Subserve Persistent Neuronal Firing during Working Memory in Dorsolateral Prefrontal Cortex , 2013, Neuron.
[48] Nathaniel J. Killian,et al. A map of visual space in the primate entorhinal cortex , 2012, Nature.
[49] A. Arnsten,et al. Neuromodulation of Thought: Flexibilities and Vulnerabilities in Prefrontal Cortical Network Synapses , 2012, Neuron.
[50] Michael E Hasselmo,et al. Neuromodulation of Ih in Layer II Medial Entorhinal Cortex Stellate Cells: A Voltage-Clamp Study , 2012, The Journal of Neuroscience.
[51] K. Jellinger,et al. Correlation of Alzheimer Disease Neuropathologic Changes With Cognitive Status: A Review of the Literature , 2012, Journal of neuropathology and experimental neurology.
[52] Naruhiko Sahara,et al. Propagation of Tau Pathology in a Model of Early Alzheimer's Disease , 2012, Neuron.
[53] Yongfu Wang,et al. Neuronal Gap Junction Coupling Is Regulated by Glutamate and Plays Critical Role in Cell Death during Neuronal Injury , 2012, The Journal of Neuroscience.
[54] Lisa M. Giocomo,et al. Grid Cells Use HCN1 Channels for Spatial Scaling , 2011, Cell.
[55] Yongfu Wang,et al. Interplay of Chemical Neurotransmitters Regulates Developmental Increase in Electrical Synapses , 2011, The Journal of Neuroscience.
[56] Zheng-Ping Yu,et al. Adenosine modulates the excitability of layer II stellate neurons in entorhinal cortex through A1 receptors , 2011, Hippocampus.
[57] Cara Allen. Opening the conversation , 2010, Nature Neuroscience.
[58] T. Ozawa. Modulation of ryanodine receptor Ca2+ channels (Review). , 2010, Molecular medicine reports.
[59] L. Selemon,et al. Mapping the regulator of G protein signaling 4 (RGS4): presynaptic and postsynaptic substrates for neuroregulation in prefrontal cortex. , 2009, Cerebral cortex.
[60] Michael E Hasselmo,et al. Knock-Out of HCN1 Subunit Flattens Dorsal–Ventral Frequency Gradient of Medial Entorhinal Neurons in Adult Mice , 2009, The Journal of Neuroscience.
[61] D. Amaral,et al. Entorhinal cortex of the monkey: IV. Topographical and laminar organization of cortical afferents , 2008, The Journal of comparative neurology.
[62] M. Nolan,et al. HCN1 Channels Control Resting and Active Integrative Properties of Stellate Cells from Layer II of the Entorhinal Cortex , 2007, The Journal of Neuroscience.
[63] M. Frotscher,et al. Localization of HCN1 Channels to Presynaptic Compartments: Novel Plasticity That May Contribute to Hippocampal Maturation , 2007, The Journal of Neuroscience.
[64] D. McCormick,et al. α2A-Adrenoceptors Strengthen Working Memory Networks by Inhibiting cAMP-HCN Channel Signaling in Prefrontal Cortex , 2007, Cell.
[65] Lisa M. Giocomo,et al. Temporal Frequency of Subthreshold Oscillations Scales with Entorhinal Grid Cell Field Spacing , 2007, Science.
[66] Graham V. Williams,et al. Inverted-U dopamine D1 receptor actions on prefrontal neurons engaged in working memory , 2007, Nature Neuroscience.
[67] R. Wojcikiewicz,et al. The type III inositol 1,4,5-trisphosphate receptor is phosphorylated by cAMP-dependent protein kinase at three sites. , 2005, The Biochemical journal.
[68] D. Surmeier,et al. Dendritic Excitability of Mouse Frontal Cortex Pyramidal Neurons Is Shaped by the Interaction among HCN, Kir2, and Kleak Channels , 2005, The Journal of Neuroscience.
[69] Matthew F. Nolan,et al. A Behavioral Role for Dendritic Integration HCN1 Channels Constrain Spatial Memory and Plasticity at Inputs to Distal Dendrites of CA1 Pyramidal Neurons , 2004, Cell.
[70] I. Kohane,et al. Gene regulation and DNA damage in the ageing human brain , 2004, Nature.
[71] P. Goldman-Rakic,et al. Microdomains for Dopamine Volume Neurotransmission in Primate Prefrontal Cortex , 2004, The Journal of Neuroscience.
[72] Robert Nitsch,et al. An impaired neocortical Ih is associated with enhanced excitability and absence epilepsy , 2004, The European journal of neuroscience.
[73] R. Shigemoto,et al. Immunohistochemical localization of Ih channel subunits, HCN1–4, in the rat brain , 2004, The Journal of comparative neurology.
[74] E. Aronica,et al. Expression and functional role of mGluR3 and mGluR5 in human astrocytes and glioma cells: opposite regulation of glutamate transporter proteins , 2003, The European journal of neuroscience.
[75] M. Houslay,et al. PDE4 cAMP phosphodiesterases: modular enzymes that orchestrate signalling cross-talk, desensitization and compartmentalization. , 2003, The Biochemical journal.
[76] Gábor Tamás,et al. Polarized and compartment-dependent distribution of HCN1 in pyramidal cell dendrites , 2002, Nature Neuroscience.
[77] D. Johnston,et al. Pharmacological upregulation of h-channels reduces the excitability of pyramidal neuron dendrites , 2002, Nature Neuroscience.
[78] J. Magee. Dendritic integration of excitatory synaptic input , 2000, Nature Reviews Neuroscience.
[79] P. Goldman-Rakic. Cellular basis of working memory , 1995, Neuron.
[80] H. Braak,et al. The human entorhinal cortex: normal morphology and lamina-specific pathology in various diseases , 1992, Neuroscience Research.
[81] D. Lewis,et al. Heterogeneity of layer II neurons in human entorhinal cortex , 1992, The Journal of comparative neurology.
[82] A. Delgado-Escueta. The Fine Structure of the Nervous System: Neurons and Their Supporting Cells.Alan Peters , Sanford L. Palay , Henry de F. Webster , 1992 .
[83] S. Nakanishi,et al. A family of metabotropic glutamate receptors , 1992, Neuron.
[84] J. Morrison,et al. Neocortical neuronal subpopulations labeled by a monoclonal antibody to calbindin exhibit differential vulnerability in Alzheimer's disease , 1991, Experimental Neurology.
[85] M J Campbell,et al. Laminar and regional distributions of neurofibrillary tangles and neuritic plaques in Alzheimer's disease: a quantitative study of visual and auditory cortices , 1987, The Journal of neuroscience : the official journal of the Society for Neuroscience.
[86] G. V. Van Hoesen,et al. Perforant pathway changes and the memory impairment of Alzheimer's disease , 1986, Annals of neurology.
[87] H. Braak,et al. Neuroanatomy and pathology of sporadic Alzheimer's disease. , 2015, Advances in anatomy, embryology, and cell biology.
[88] D. Cooper,et al. Regulation by Ca2+-signaling pathways of adenylyl cyclases. , 2011, Cold Spring Harbor perspectives in biology.
[89] H. Braak,et al. Neuropathological stageing of Alzheimer-related changes , 2004, Acta Neuropathologica.