A Neural-Astrocytic Network Architecture: Astrocytic calcium waves modulate synchronous neuronal activity
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Vladimir Ivanov | Ioannis Polykretis | Konstantinos P. Michmizos | Ioannis E. Polykretis | Vladimir A. Ivanov | K. Michmizos
[1] F ROSENBLATT,et al. The perceptron: a probabilistic model for information storage and organization in the brain. , 1958, Psychological review.
[2] J J Hopfield,et al. Neurons with graded response have collective computational properties like those of two-state neurons. , 1984, Proceedings of the National Academy of Sciences of the United States of America.
[3] H. Kettenmann,et al. Cultured astrocytes form a syncytium after maturation. , 1985, Experimental cell research.
[4] S. Grillner,et al. Newly identified 'glutamate interneurons' and their role in locomotion in the lamprey spinal cord. , 1987, Science.
[5] Carver Mead,et al. Analog VLSI and neural systems , 1989 .
[6] Francis Crick,et al. The recent excitement about neural networks , 1989, Nature.
[7] S. Finkbeiner,et al. Glutamate induces calcium waves in cultured astrocytes: long-range glial signaling. , 1990, Science.
[8] W. Pitts,et al. A Logical Calculus of the Ideas Immanent in Nervous Activity (1943) , 2021, Ideas That Created the Future.
[9] James Watras,et al. Bell-shaped calcium-response curves of lns(l,4,5)P3- and calcium-gated channels from endoplasmic reticulum of cerebellum , 1991, Nature.
[10] K. McCarthy,et al. Pharmacologically-distinct subsets of astroglia can be identified by their calcium response to neuroligands , 1991, Neuroscience.
[11] Stephen J. Smith,et al. Neuronal activity triggers calcium waves in hippocampal astrocyte networks , 1992, Neuron.
[12] J. Rinzel,et al. Equations for InsP3 receptor-mediated [Ca2+]i oscillations derived from a detailed kinetic model: a Hodgkin-Huxley like formalism. , 1994, Journal of theoretical biology.
[13] A. Turing. Intelligent Machinery, A Heretical Theory* , 1996 .
[14] William Bialek,et al. Entropy and Information in Neural Spike Trains , 1996, cond-mat/9603127.
[15] H. Markram,et al. The neural code between neocortical pyramidal neurons depends on neurotransmitter release probability. , 1997, Proceedings of the National Academy of Sciences of the United States of America.
[16] M. Blaustein,et al. Spatially and Functionally Distinct Ca2+ Stores in Sarcoplasmic and Endoplasmic Reticulum , 1997, Science.
[17] A. Reichenbach,et al. Microdomains for neuron–glia interaction: parallel fiber signaling to Bergmann glial cells , 1999, Nature Neuroscience.
[18] A. Araque,et al. Tripartite synapses: glia, the unacknowledged partner , 1999, Trends in Neurosciences.
[19] M. Blaustein,et al. Unloading and refilling of two classes of spatially resolved endoplasmic reticulum Ca2+ stores in astrocytes , 2000, Glia.
[20] P. Haydon,et al. Physiological astrocytic calcium levels stimulate glutamate release to modulate adjacent neurons. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[21] J. Rash,et al. Connexins and gap junctions of astrocytes and oligodendrocytes in the CNS , 2000, Brain Research Reviews.
[22] H. Parri,et al. Spontaneous astrocytic Ca2+ oscillations in situ drive NMDAR-mediated neuronal excitation , 2001, Nature Neuroscience.
[23] M. Zonta,et al. Cytosolic Calcium Oscillations in Astrocytes May Regulate Exocytotic Release of Glutamate , 2001, The Journal of Neuroscience.
[24] Martin D. Bootman,et al. Calcium-induced calcium release , 2003, Current Biology.
[25] Suhita Nadkarni,et al. Dressed neurons: modeling neural–glial interactions , 2004, Physical biology.
[26] Vladimir Parpura,et al. C(a2+)-dependent glutamate release involves two classes of endoplasmic reticulum Ca(2+) stores in astrocytes. , 2004, Journal of neuroscience research.
[27] Neuronal Synchrony Mediated by Astrocytic Glutamate through Activation of Extrasynaptic NMDA Receptors , 2004, Neuron.
[28] H. Markram,et al. Interneurons of the neocortical inhibitory system , 2004, Nature Reviews Neuroscience.
[29] Vladimir Parpura,et al. Ca2+‐dependent glutamate release involves two classes of endoplasmic reticulum Ca2+ stores in astrocytes , 2004 .
[30] M. C. Angulo,et al. Glutamate Released from Glial Cells Synchronizes Neuronal Activity in the Hippocampus , 2004, The Journal of Neuroscience.
[31] G. Buzsáki,et al. Calcium Dynamics of Cortical Astrocytic Networks In Vivo , 2004, PLoS biology.
[32] P. Fries. A mechanism for cognitive dynamics: neuronal communication through neuronal coherence , 2005, Trends in Cognitive Sciences.
[33] William J. Rapaport. The Turing Test: Verbal Behavior as the Hallmark of Intelligence edited by Stuart Shieber , 2005, Comput. Linguistics.
[34] W. Betz,et al. Synaptic vesicle pools , 2005, Nature Reviews Neuroscience.
[35] T. Sejnowski,et al. Network Oscillations: Emerging Computational Principles , 2006, The Journal of Neuroscience.
[36] M. Steriade. Grouping of brain rhythms in corticothalamic systems , 2006, Neuroscience.
[37] T. Takano,et al. Astrocytic Ca2+ signaling evoked by sensory stimulation in vivo , 2006, Nature Neuroscience.
[38] Mark T. Nelson,et al. Dynamic Inositol Trisphosphate-mediated Calcium Signals within Astrocytic Endfeet Underlie Vasodilation of Cerebral Arterioles , 2006, The Journal of general physiology.
[39] C. Giaume,et al. Astrocyte calcium waves: What they are and what they do , 2006, Glia.
[40] Eshel Ben-Jacob,et al. The Astrocyte as a Gatekeeper of Synaptic Information Transfer , 2006, Neural Computation.
[41] M. Freire,et al. Cajal's contributions to glia research , 2007, Trends in Neurosciences.
[42] G. Perea,et al. Astrocytes Potentiate Transmitter Release at Single Hippocampal Synapses , 2007, Science.
[43] E. Scemes,et al. Components of astrocytic intercellular calcium signaling , 2000, Molecular Neurobiology.
[44] B. Barres. The Mystery and Magic of Glia: A Perspective on Their Roles in Health and Disease , 2008, Neuron.
[45] S. Oliet,et al. Activity-dependent structural and functional plasticity of astrocyte-neuron interactions. , 2008, Physiological reviews.
[46] E. Shigetomi,et al. Two Forms of Astrocyte Calcium Excitability Have Distinct Effects on NMDA Receptor-Mediated Slow Inward Currents in Pyramidal Neurons , 2008, The Journal of Neuroscience.
[47] L. Tian,et al. Reporting neural activity with genetically encoded calcium indicators , 2008, Brain cell biology.
[48] Z. Kurth-Nelson,et al. Spontaneous Glial Calcium Waves in the Retina Develop over Early Adulthood , 2009, The Journal of Neuroscience.
[49] G. Perea,et al. Tripartite synapses: astrocytes process and control synaptic information , 2009, Trends in Neurosciences.
[50] Sreekanth H. Chalasani,et al. Imaging neural activity in worms, flies and mice with improved GCaMP calcium indicators , 2009, Nature Methods.
[51] E. Ben-Jacob,et al. Glutamate regulation of calcium and IP3 oscillating and pulsating dynamics in astrocytes , 2009, Journal of biological physics.
[52] Michael M. Halassa,et al. Integrated brain circuits: astrocytic networks modulate neuronal activity and behavior. , 2010, Annual review of physiology.
[53] G. Perea,et al. GLIA modulates synaptic transmission , 2010, Brain Research Reviews.
[54] Baljit S Khakh,et al. A genetically targeted optical sensor to monitor calcium signals in astrocyte processes , 2010, Nature Neuroscience.
[55] Eshel Ben-Jacob,et al. Nonlinear Gap Junctions Enable Long-Distance Propagation of Pulsating Calcium Waves in Astrocyte Networks , 2010, PLoS Comput. Biol..
[56] Khaleel Bhaukaurally,et al. Local Ca2+ detection and modulation of synaptic release by astrocytes , 2011, Nature Neuroscience.
[57] Pablo Mesejo,et al. Artificial Astrocytes Improve Neural Network Performance , 2011, PloS one.
[58] A. Engel,et al. Spectral fingerprints of large-scale neuronal interactions , 2012, Nature Reviews Neuroscience.
[59] Kaushik Majumdar,et al. A mathematical model for astrocytes mediated LTP at single hippocampal synapses , 2011, Journal of Computational Neuroscience.
[60] Trevor Bekolay,et al. A Large-Scale Model of the Functioning Brain , 2012, Science.
[61] Baljit S. Khakh,et al. TRPA1 channels regulate astrocyte resting calcium levels and inhibitory synapse efficacy via GAT-3 , 2011, Nature Neuroscience.
[62] H. Monyer,et al. Bergmann Glial AMPA Receptors Are Required for Fine Motor Coordination , 2012, Science.
[63] Alejandro Pazos,et al. Computational Models of Neuron-Astrocyte Interactions Lead to Improved Efficacy in the Performance of Neural Networks , 2012, Comput. Math. Methods Medicine.
[64] M. Lauritzen,et al. Rapid stimulus-evoked astrocyte Ca2+ elevations and hemodynamic responses in mouse somatosensory cortex in vivo , 2013, Proceedings of the National Academy of Sciences.
[65] Martin D. Haustein,et al. Imaging calcium microdomains within entire astrocyte territories and endfeet with GCaMPs expressed using adeno-associated viruses , 2013, The Journal of General Physiology.
[66] Vladimir Parpura,et al. A possible role of astrocytes in contextual memory retrieval: An analysis obtained using a quantitative framework , 2013, Front. Comput. Neurosci..
[67] Stefan R. Pulver,et al. Ultra-sensitive fluorescent proteins for imaging neuronal activity , 2013, Nature.
[68] Vadim Turlapov,et al. Subcellular location of astrocytic calcium stores favors extrasynaptic neuron-astrocyte communication. , 2013, Cell calcium.
[69] P. Haydon,et al. Astrocyte‐derived adenosine modulates increased sleep pressure during inflammatory response , 2013, Glia.
[70] Ben A. Barres,et al. Emerging roles of astrocytes in neural circuit development , 2013, Nature Reviews Neuroscience.
[71] Maiken Nedergaard,et al. α1-Adrenergic receptors mediate coordinated Ca2+ signaling of cortical astrocytes in awake, behaving mice. , 2013, Cell calcium.
[72] Michael Chen,et al. Forebrain engraftment by human glial progenitor cells enhances synaptic plasticity and learning in adult mice. , 2013, Cell stem cell.
[73] Steve B. Furber,et al. The SpiNNaker Project , 2014, Proceedings of the IEEE.
[74] Rodrigo Alvarez-Icaza,et al. Neurogrid: A Mixed-Analog-Digital Multichip System for Large-Scale Neural Simulations , 2014, Proceedings of the IEEE.
[75] Martin D. Haustein,et al. Conditions and Constraints for Astrocyte Calcium Signaling in the Hippocampal Mossy Fiber Pathway , 2014, Neuron.
[76] Ming Xu,et al. In vivo visualization of subtle, transient, and local activity of astrocytes using an ultrasensitive Ca(2+) indicator. , 2014, Cell reports.
[77] Yong Jeong,et al. GABA from reactive astrocytes impairs memory in mouse models of Alzheimer's disease , 2014, Nature Medicine.
[78] Alfonso Araque,et al. The Cajal school and the physiological role of astrocytes: a way of thinking , 2014, Front. Neuroanat..
[79] Nicolas Liaudet,et al. Astrocyte Ca2+ signalling: an unexpected complexity , 2014, Nature Reviews Neuroscience.
[80] Andrew S. Cassidy,et al. A million spiking-neuron integrated circuit with a scalable communication network and interface , 2014, Science.
[81] Dominique Muller,et al. Astrocyte-Synapse Structural Plasticity , 2014, Neural plasticity.
[82] Yilda Irizarry-Valle,et al. An Astrocyte Neuromorphic Circuit That Influences Neuronal Phase Synchrony , 2015, IEEE Transactions on Biomedical Circuits and Systems.
[83] D. Rusakov. Disentangling calcium-driven astrocyte physiology , 2015, Nature Reviews Neuroscience.
[84] Pascal Fries,et al. Communication through coherence with inter-areal delays , 2015, Current Opinion in Neurobiology.
[85] A. Dunaevsky,et al. Motor-Skill Learning Is Dependent on Astrocytic Activity , 2015, Neural plasticity.
[86] Sharmila Venugopal,et al. Ca2+ signaling in astrocytes from IP3R2−/− mice in brain slices and during startle responses in vivo , 2015, Nature Neuroscience.
[87] Enrique Fernández-Blanco,et al. Artificial Neuron-Glia Networks Learning Approach Based on Cooperative Coevolution , 2015, Int. J. Neural Syst..
[88] D. Attwell,et al. Astrocyte calcium signaling: the third wave , 2016, Nature Neuroscience.
[89] Kira E. Poskanzer,et al. Astrocytes regulate cortical state switching in vivo , 2016, Proceedings of the National Academy of Sciences.
[90] E. Chang,et al. Purification and Characterization of Progenitor and Mature Human Astrocytes Reveals Transcriptional and Functional Differences with Mouse , 2016, Neuron.
[91] E. Shigetomi,et al. Probing the Complexities of Astrocyte Calcium Signaling. , 2016, Trends in cell biology.
[92] Ana B. Porto-Pazos,et al. Deep Artificial Neural Networks and Neuromorphic Chips for Big Data Analysis: Pharmaceutical and Bioinformatics Applications , 2016, International journal of molecular sciences.
[93] Christian K. Machens,et al. Efficient codes and balanced networks , 2016, Nature Neuroscience.
[94] B. Pál,et al. Astrocyte-Dependent Slow Inward Currents (SICs) Participate in Neuromodulatory Mechanisms in the Pedunculopontine Nucleus (PPN) , 2017, Front. Cell. Neurosci..
[95] K. Whalley. Circadian rhythms: Astrocytes keep time , 2017, Nature Reviews Neuroscience.
[96] Kostis P. Michmizos,et al. The Causal Role of Astrocytes in Slow-Wave Rhythmogenesis: A Computational Modelling Study , 2017, ArXiv.
[97] Michael M. Halassa,et al. Astrocytic IP3/Ca2+ Signaling Modulates Theta Rhythm and REM Sleep , 2017, Front. Neural Circuits.
[98] L. Kozachkov,et al. A Computational Role for Astrocytes in Memory , 2017 .
[99] Nicolas Liaudet,et al. Three-dimensional Ca2+ imaging advances understanding of astrocyte biology , 2017, Science.
[100] K. Michmizos,et al. Gridbot , 2018, Proceedings of the International Conference on Neuromorphic Systems.
[101] Klaus Obermayer,et al. From in silico astrocyte cell models to neuron-astrocyte network models: A review , 2018, Brain Research Bulletin.
[102] Hong Wang,et al. Loihi: A Neuromorphic Manycore Processor with On-Chip Learning , 2018, IEEE Micro.
[103] Kostis P. Michmizos,et al. Gridbot: An autonomous robot controlled by a Spiking Neural Network mimicking the brain's navigational system , 2018, ArXiv.