Cavarretta F et al. (2018). Parallel odor processing by mitral and middle tufted cells in the olfactory bulb. Scientific reports. 8 [PubMed]

See more from authors: Cavarretta F · Burton SD · Igarashi KM · Shepherd GM · Hines ML · Migliore M

References and models cited by this paper

ALLISON AC. (1953). The structure of the olfactory bulb and its relationship to the olfactory pathways in the rabbit and the rat. The Journal of comparative neurology. 98 [PubMed]

Arevian AC, Kapoor V, Urban NN. (2008). Activity-dependent gating of lateral inhibition in the mouse olfactory bulb. Nature neuroscience. 11 [PubMed]

Balu R, Larimer P, Strowbridge BW. (2004). Phasic stimuli evoke precisely timed spikes in intermittently discharging mitral cells. Journal of neurophysiology. 92 [PubMed]

Balu R, Pressler RT, Strowbridge BW. (2007). Multiple modes of synaptic excitation of olfactory bulb granule cells. The Journal of neuroscience : the official journal of the Society for Neuroscience. 27 [PubMed]

Bezaire MJ, Raikov I, Burk K, Vyas D, Soltesz I. (2016). Interneuronal mechanisms of hippocampal theta oscillations in a full-scale model of the rodent CA1 circuit. eLife. 5 [PubMed]

Boyd AM, Sturgill JF, Poo C, Isaacson JS. (2012). Cortical feedback control of olfactory bulb circuits. Neuron. 76 [PubMed]

Burton SD, LaRocca G, Liu A, Cheetham CE, Urban NN. (2017). Olfactory Bulb Deep Short-Axon Cells Mediate Widespread Inhibition of Tufted Cell Apical Dendrites. The Journal of neuroscience : the official journal of the Society for Neuroscience. 37 [PubMed]

Burton SD, Urban NN. (2014). Greater excitability and firing irregularity of tufted cells underlies distinct afferent-evoked activity of olfactory bulb mitral and tufted cells. The Journal of physiology. 592 [PubMed]

Burton SD, Urban NN. (2015). Rapid Feedforward Inhibition and Asynchronous Excitation Regulate Granule Cell Activity in the Mammalian Main Olfactory Bulb. The Journal of neuroscience : the official journal of the Society for Neuroscience. 35 [PubMed]

Carey RM, Verhagen JV, Wesson DW, Pírez N, Wachowiak M. (2009). Temporal structure of receptor neuron input to the olfactory bulb imaged in behaving rats. Journal of neurophysiology. 101 [PubMed]

Cavarretta F, Marasco A, Hines ML, Shepherd GM, Migliore M. (2016). Glomerular and Mitral-Granule Cell Microcircuits Coordinate Temporal and Spatial Information Processing in the Olfactory Bulb. Frontiers in computational neuroscience. 10 [PubMed]

Chen WR, Shen GY, Shepherd GM, Hines ML, Midtgaard J. (2002). Multiple modes of action potential initiation and propagation in mitral cell primary dendrite. Journal of neurophysiology. 88 [PubMed]

Chen WR, Shepherd GM, Greer CA. (2004). Olfactory bulb The Synaptic Organization of the Brain.

Christie JM, Schoppa NE, Westbrook GL. (2001). Tufted cell dendrodendritic inhibition in the olfactory bulb is dependent on NMDA receptor activity. Journal of neurophysiology. 85 [PubMed]

Cleland TA, Johnson BA, Leon M, Linster C. (2007). Relational representation in the olfactory system. Proceedings of the National Academy of Sciences of the United States of America. 104 [PubMed]

Cleland TA, Linster C. (2005). Computation in the olfactory system. Chemical senses. 30 [PubMed]

Cleland TA, Sethupathy P. (2006). Non-topographical contrast enhancement in the olfactory bulb. BMC neuroscience. 7 [PubMed]

Desmaisons D, Vincent JD, Lledo PM. (1999). Control of action potential timing by intrinsic subthreshold oscillations in olfactory bulb output neurons. The Journal of neuroscience : the official journal of the Society for Neuroscience. 19 [PubMed]

Egger V, Urban NN. (2006). Dynamic connectivity in the mitral cell-granule cell microcircuit. Seminars in cell & developmental biology. 17 [PubMed]

Eyre MD, Antal M, Nusser Z. (2008). Distinct deep short-axon cell subtypes of the main olfactory bulb provide novel intrabulbar and extrabulbar GABAergic connections. The Journal of neuroscience : the official journal of the Society for Neuroscience. 28 [PubMed]

Fantana AL, Soucy ER, Meister M. (2008). Rat olfactory bulb mitral cells receive sparse glomerular inputs. Neuron. 59 [PubMed]

Foveau B, Albrecht S, Bennett DA, Correa JA, LeBlanc AC. (2016). Increased Caspase-6 activity in the human anterior olfactory nuclei of the olfactory bulb is associated with cognitive impairment. Acta neuropathologica communications. 4 [PubMed]

François C, Cunillera T, Garcia E, Laine M, Rodriguez-Fornells A. (2017). Neurophysiological evidence for the interplay of speech segmentation and word-referent mapping during novel word learning. Neuropsychologia. 98 [PubMed]

Fukunaga I, Berning M, Kollo M, Schmaltz A, Schaefer AT. (2012). Two distinct channels of olfactory bulb output. Neuron. 75 [PubMed]

Gadziola MA, Tylicki KA, Christian DL, Wesson DW. (2015). The olfactory tubercle encodes odor valence in behaving mice. The Journal of neuroscience : the official journal of the Society for Neuroscience. 35 [PubMed]

Gadziola MA, Wesson DW. (2016). The Neural Representation of Goal-Directed Actions and Outcomes in the Ventral Striatum's Olfactory Tubercle. The Journal of neuroscience : the official journal of the Society for Neuroscience. 36 [PubMed]

Geramita M, Urban NN. (2017). Differences in Glomerular-Layer-Mediated Feedforward Inhibition onto Mitral and Tufted Cells Lead to Distinct Modes of Intensity Coding. The Journal of neuroscience : the official journal of the Society for Neuroscience. 37 [PubMed]

Geramita MA, Burton SD, Urban NN. (2016). Distinct lateral inhibitory circuits drive parallel processing of sensory information in the mammalian olfactory bulb. eLife. 5 [PubMed]

Gire DH et al. (2012). Mitral cells in the olfactory bulb are mainly excited through a multistep signaling path. The Journal of neuroscience : the official journal of the Society for Neuroscience. 32 [PubMed]

Giridhar S, Doiron B, Urban NN. (2011). Timescale-dependent shaping of correlation by olfactory bulb lateral inhibition. Proceedings of the National Academy of Sciences of the United States of America. 108 [PubMed]

Haberly LB. (1985). Neuronal circuitry in olfactory cortex: anatomy and functional implications Chem Senses. 10

Halabisky B, Strowbridge BW. (2003). Gamma-frequency excitatory input to granule cells facilitates dendrodendritic inhibition in the rat olfactory Bulb. Journal of neurophysiology. 90 [PubMed]

Hendin O, Horn D, Tsodyks MV. (1998). Associative memory and segmentation in an oscillatory neural model of the olfactory bulb. Journal of computational neuroscience. 5 [PubMed]

Hesse JK, Tsao DY. (2016). Consistency of Border-Ownership Cells across Artificial Stimuli, Natural Stimuli, and Stimuli with Ambiguous Contours. The Journal of neuroscience : the official journal of the Society for Neuroscience. 36 [PubMed]

Igarashi KM et al. (2012). Parallel mitral and tufted cell pathways route distinct odor information to different targets in the olfactory cortex. The Journal of neuroscience : the official journal of the Society for Neuroscience. 32 [PubMed]

Jorge PE, Marques PAM, Pinto BV, Phillips JB. (2016). Asymmetrical Processing of Olfactory Input in the Piriform Cortex Mediates "Activation" of the Avian Navigation Circuitry. Chemical senses. 41 [PubMed]

Kim DH et al. (2011). Lateral Connectivity in the Olfactory Bulb is Sparse and Segregated. Frontiers in neural circuits. 5 [PubMed]

Labarrera C, London M, Angelo K. (2013). Tonic inhibition sets the state of excitability in olfactory bulb granule cells. The Journal of physiology. 591 [PubMed]

Markopoulos F, Rokni D, Gire DH, Murthy VN. (2012). Functional properties of cortical feedback projections to the olfactory bulb. Neuron. 76 [PubMed]

Markram H et al. (2015). Reconstruction and Simulation of Neocortical Microcircuitry. Cell. 163 [PubMed]

McTavish TS, Migliore M, Shepherd GM, Hines ML. (2012). Mitral cell spike synchrony modulated by dendrodendritic synapse location. Frontiers in computational neuroscience. 6 [PubMed]

Mediavilla C, Martin-Signes M, Risco S. (2016). Role of anterior piriform cortex in the acquisition of conditioned flavour preference. Scientific reports. 6 [PubMed]

Migliore M, Cavarretta F, Hines ML, Shepherd GM. (2013). Functional neurology of a brain system: a 3D olfactory bulb model to process natural odorants. Functional neurology. 28 [PubMed]

Migliore M, Cavarretta F, Hines ML, Shepherd GM. (2014). Distributed organization of a brain microcircuit analyzed by three-dimensional modeling: the olfactory bulb. Frontiers in computational neuroscience. 8 [PubMed]

Migliore M et al. (2015). Synaptic clusters function as odor operators in the olfactory bulb. Proceedings of the National Academy of Sciences of the United States of America. 112 [PubMed]

Migliore M, Inzirillo C, Shepherd GM. (2007). Learning mechanism for column formation in the olfactory bulb. Frontiers in integrative neuroscience. 1 [PubMed]

Mori K, Kishi K, Ojima H. (1983). Distribution of dendrites of mitral, displaced mitral, tufted, and granule cells in the rabbit olfactory bulb. The Journal of comparative neurology. 219 [PubMed]

Nagayama S, Takahashi YK, Yoshihara Y, Mori K. (2004). Mitral and tufted cells differ in the decoding manner of odor maps in the rat olfactory bulb. Journal of neurophysiology. 91 [PubMed]

Najac M, De Saint Jan D, Reguero L, Grandes P, Charpak S. (2011). Monosynaptic and polysynaptic feed-forward inputs to mitral cells from olfactory sensory neurons. The Journal of neuroscience : the official journal of the Society for Neuroscience. 31 [PubMed]

Neville KR, Haberly LB. (2004). Olfactory cortex The Synaptic Organization of the Brain, 5th Edn.

Nissant A, Bardy C, Katagiri H, Murray K, Lledo PM. (2009). Adult neurogenesis promotes synaptic plasticity in the olfactory bulb. Nature neuroscience. 12 [PubMed]

Olivo D, Caba M, Gonzalez-Lima F, Vázquez A, Corona-Morales A. (2014). Circadian feeding entrains anticipatory metabolic activity in piriform cortex and olfactory tubercle, but not in suprachiasmatic nucleus. Brain research. 1592 [PubMed]

Orona E, Scott JW, Rainer EC. (1983). Different granule cell populations innervate superficial and deep regions of the external plexiform layer in rat olfactory bulb. The Journal of comparative neurology. 217 [PubMed]

Pressler RT, Strowbridge BW. (2006). Blanes cells mediate persistent feedforward inhibition onto granule cells in the olfactory bulb. Neuron. 49 [PubMed]

Sato T, Kajiwara R, Takashima I, Iijima T. (2016). A novel method for quantifying similarities between oscillatory neural responses in wavelet time-frequency power profiles. Brain research. 1636 [PubMed]

Sato T, Kawasaki T, Mine S, Matsumura H. (2016). Functional Role of the C-Terminal Amphipathic Helix 8 of Olfactory Receptors and Other G Protein-Coupled Receptors. International journal of molecular sciences. 17 [PubMed]

Schneider SP, Scott JW. (1983). Orthodromic response properties of rat olfactory bulb mitral and tufted cells correlate with their projection patterns. Journal of neurophysiology. 50 [PubMed]

Schoppa NE, Kinzie JM, Sahara Y, Segerson TP, Westbrook GL. (1998). Dendrodendritic inhibition in the olfactory bulb is driven by NMDA receptors. The Journal of neuroscience : the official journal of the Society for Neuroscience. 18 [PubMed]

Schreiber S, Fellous JM, Whitmer D, Tiesinga P, Sejnowski TJ. (2003). A new correlation-based measure of spike timing reliability. Neurocomputing. 52-54 [PubMed]

Shen GY, Chen WR, Midtgaard J, Shepherd GM, Hines ML. (1999). Computational analysis of action potential initiation in mitral cell soma and dendrites based on dual patch recordings. Journal of neurophysiology. 82 [PubMed]

Shepherd GM, Woolf TB, Carnevale NT. (1989). Comparisons between Active Properties of Distal Dendritic Branches and Spines: Implications for Neuronal Computations. Journal of cognitive neuroscience. 1 [PubMed]

Sokal RR. (1958). A statistical method for evaluating systematic relationships Univ Kans Sci Bull. 38

Stettler DD, Axel R. (2009). Representations of odor in the piriform cortex. Neuron. 63 [PubMed]

Vincis R, Gschwend O, Bhaukaurally K, Beroud J, Carleton A. (2012). Dense representation of natural odorants in the mouse olfactory bulb. Nature neuroscience. 15 [PubMed]

Wang XJ. (2002). Pacemaker neurons for the theta rhythm and their synchronization in the septohippocampal reciprocal loop. Journal of neurophysiology. 87 [PubMed]

Wei CJ, Linster C, Cleland TA. (2006). Dopamine D(2) receptor activation modulates perceived odor intensity. Behavioral neuroscience. 120 [PubMed]

Wesson DW, Wilson DA. (2011). Sniffing out the contributions of the olfactory tubercle to the sense of smell: hedonics, sensory integration, and more? Neuroscience and biobehavioral reviews. 35 [PubMed]

Willhite DC et al. (2006). Viral tracing identifies distributed columnar organization in the olfactory bulb. Proceedings of the National Academy of Sciences of the United States of America. 103 [PubMed]

Wilson DA, Stevenson RJ. (2003). Olfactory perceptual learning: the critical role of memory in odor discrimination. Neuroscience and biobehavioral reviews. 27 [PubMed]

Xu F et al. (2003). Odor maps of aldehydes and esters revealed by functional MRI in the glomerular layer of the mouse olfactory bulb. Proceedings of the National Academy of Sciences of the United States of America. 100 [PubMed]

Yokoi M, Mori K, Nakanishi S. (1995). Refinement of odor molecule tuning by dendrodendritic synaptic inhibition in the olfactory bulb. Proceedings of the National Academy of Sciences of the United States of America. 92 [PubMed]

Yu Y et al. (2013). Sparse distributed representation of odors in a large-scale olfactory bulb circuit. PLoS computational biology. 9 [PubMed]

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