메뉴 건너뛰기




Volumn 27, Issue 12, 2017, Pages 5755-5771

Pyramidal cell subtypes and their synaptic connections in layer 5 of rat frontal cortex

Author keywords

Corticocortical; Corticostriatal; Layer 5a; Layer 5b; M2

Indexed keywords

ARTICLE; BASAL GANGLION; CORPUS STRIATUM; CORTEX LAYER II; CORTEX LAYER III; CORTEX LAYER V; CORTICOCORTICAL CONNECTION; CORTICOPONTINE CELL; CORTICOSTRIATAL CELL; CORTICOSTRIATAL CONNECTION; CROSSED CORTICOSTRIATAL CELL; EXCITATION; FIRING RATE; FRONTAL CORTEX; IN VIVO STUDY; INNERVATION; NERVOUS SYSTEM PARAMETERS; NONHUMAN; PARIETAL CORTEX; PONTINE NUCLEUS; PREFRONTAL CORTEX; PRIMARY MOTOR CORTEX; PRIORITY JOURNAL; PYRAMIDAL NERVE CELL; RAT; SECONDARY MOTOR CORTEX; SYNAPSE; THALAMUS; ACTION POTENTIAL; ANIMAL; CYTOLOGY; ELECTROENCEPHALOGRAM; ELECTROSTIMULATION; EXCITATORY POSTSYNAPTIC POTENTIAL; FRONTAL LOBE; IMMUNOHISTOCHEMISTRY; MOTOR ACTIVITY; NERVE TRACT; PHYSIOLOGY; SPINAL CORD; WISTAR RAT;

EID: 85041665775     PISSN: 10473211     EISSN: 14602199     Source Type: Journal    
DOI: 10.1093/cercor/bhx252     Document Type: Article
Times cited : (56)

References (137)
  • 1
    • 0022930826 scopus 로고
    • Parallel organization of functionally segregated circuits linking basal ganglia and cortex
    • Alexander GE, DeLong MR, Strick PL. 1986. Parallel organization of functionally segregated circuits linking basal ganglia and cortex. Annu Rev Neurosci. 9:357-381.
    • (1986) Annu Rev Neurosci , vol.9 , pp. 357-381
    • Alexander, G.E.1    DeLong, M.R.2    Strick, P.L.3
  • 3
    • 77952887219 scopus 로고    scopus 로고
    • Sublayer-specific microcircuits of corticospinal and corticostriatal neurons in motor cortex
    • Anderson CT, Sheets PL, Kiritani T, Shepherd GM. 2010. Sublayer-specific microcircuits of corticospinal and corticostriatal neurons in motor cortex. Nat Neurosci. 13:739-744.
    • (2010) Nat Neurosci , vol.13 , pp. 739-744
    • Anderson, C.T.1    Sheets, P.L.2    Kiritani, T.3    Shepherd, G.M.4
  • 4
    • 12344252023 scopus 로고    scopus 로고
    • Neuronal subtype-specific genes that control corticospinal motor neuron development in vivo
    • Arlotta P, Molyneaux BJ, Chen J, Inoue J, Kominami R, Macklis JD. 2005. Neuronal subtype-specific genes that control corticospinal motor neuron development in vivo. Neuron. 45:207-221.
    • (2005) Neuron , vol.45 , pp. 207-221
    • Arlotta, P.1    Molyneaux, B.J.2    Chen, J.3    Inoue, J.4    Kominami, R.5    Macklis, J.D.6
  • 5
    • 84867125875 scopus 로고    scopus 로고
    • Neuromodulation of thought: Flexibilities and vulnerabilities in prefrontal cortical network synapses
    • Arnsten AF, Wang MJ, Paspalas CD. 2012. Neuromodulation of thought: flexibilities and vulnerabilities in prefrontal cortical network synapses. Neuron. 76:223-239.
    • (2012) Neuron , vol.76 , pp. 223-239
    • Arnsten, A.F.1    Wang, M.J.2    Paspalas, C.D.3
  • 6
    • 84932197718 scopus 로고    scopus 로고
    • General cortical and special prefrontal connections: Principles from structure to function
    • Barbas H. 2015. General cortical and special prefrontal connections: principles from structure to function. Annu Rev Neurosci. 38:269-289.
    • (2015) Annu Rev Neurosci , vol.38 , pp. 269-289
    • Barbas, H.1
  • 7
    • 0030671576 scopus 로고    scopus 로고
    • Cortical structure predicts the pattern of corticocortical connections
    • Barbas H, Rempel-Clower N. 1997. Cortical structure predicts the pattern of corticocortical connections. Cereb Cortex. 7: 635-646.
    • (1997) Cereb Cortex , vol.7 , pp. 635-646
    • Barbas, H.1    Rempel-Clower, N.2
  • 8
    • 85010686575 scopus 로고    scopus 로고
    • Secondary motor cortex: Where 'sensory' meets 'motor' in the rodent frontal cortex
    • Barthas F, Kwan AC. 2017. Secondary motor cortex: where 'sensory' meets 'motor' in the rodent frontal cortex. Trends Neurosci. 40:181-193.
    • (2017) Trends Neurosci , vol.40 , pp. 181-193
    • Barthas, F.1    Kwan, A.C.2
  • 12
    • 79952223377 scopus 로고    scopus 로고
    • Synaptic integration gradients in single cortical pyramidal cell dendrites
    • Branco T, Hausser M. 2011. Synaptic integration gradients in single cortical pyramidal cell dendrites. Neuron. 69:885-892.
    • (2011) Neuron , vol.69 , pp. 885-892
    • Branco, T.1    Hausser, M.2
  • 13
    • 7544228266 scopus 로고    scopus 로고
    • Organization of rat vibrissa motor cortex and adjacent areas according to cytoarchitectonics, microstimulation, and intracellular stimulation of identified cells
    • Brecht M, Krauss A, Muhammad S, Sinai-Esfahani L, Bellanca S, Margrie TW. 2004. Organization of rat vibrissa motor cortex and adjacent areas according to cytoarchitectonics, microstimulation, and intracellular stimulation of identified cells. J Comp Neurol. 479:360-373.
    • (2004) J Comp Neurol , vol.479 , pp. 360-373
    • Brecht, M.1    Krauss, A.2    Muhammad, S.3    Sinai-Esfahani, L.4    Bellanca, S.5    Margrie, T.W.6
  • 14
    • 61349185681 scopus 로고    scopus 로고
    • Intracortical circuits of pyramidal neurons reflect their long-range axonal targets
    • Brown SP, Hestrin S. 2009. Intracortical circuits of pyramidal neurons reflect their long-range axonal targets. Nature. 457: 1133-1136.
    • (2009) Nature , vol.457 , pp. 1133-1136
    • Brown, S.P.1    Hestrin, S.2
  • 15
    • 0029556423 scopus 로고
    • Perirhinal and postrhinal cortices of the rat: A review of the neuroanatomical literature and comparison with findings from the monkey brain
    • Burwell RD, Witter MP, Amaral DG. 1995. Perirhinal and postrhinal cortices of the rat: a review of the neuroanatomical literature and comparison with findings from the monkey brain. Hippocampus. 5:390-408.
    • (1995) Hippocampus , vol.5 , pp. 390-408
    • Burwell, R.D.1    Witter, M.P.2    Amaral, D.G.3
  • 16
  • 17
    • 3042523540 scopus 로고    scopus 로고
    • Neuronal oscillations in cortical networks
    • Buzsaki G, Draguhn A. 2004. Neuronal oscillations in cortical networks. Science. 304:1926-1929.
    • (2004) Science , vol.304 , pp. 1926-1929
    • Buzsaki, G.1    Draguhn, A.2
  • 18
    • 84944884751 scopus 로고    scopus 로고
    • A large-scale circuit mechanism for hierarchical dynamical processing in the primate cortex
    • Chaudhuri R, Knoblauch K, Gariel MA, Kennedy H, Wang XJ. 2015. A large-scale circuit mechanism for hierarchical dynamical processing in the primate cortex. Neuron. 88:419-431.
    • (2015) Neuron , vol.88 , pp. 419-431
    • Chaudhuri, R.1    Knoblauch, K.2    Gariel, M.A.3    Kennedy, H.4    Wang, X.J.5
  • 19
    • 77956370663 scopus 로고    scopus 로고
    • Origin of active states in local neocortical networks during slow sleep oscillation
    • Chauvette S, Volgushev M, Timofeev I. 2010. Origin of active states in local neocortical networks during slow sleep oscillation. Cereb Cortex. 20:2660-2674.
    • (2010) Cereb Cortex , vol.20 , pp. 2660-2674
    • Chauvette, S.1    Volgushev, M.2    Timofeev, I.3
  • 20
    • 0030045430 scopus 로고    scopus 로고
    • Spindle oscillation in cats: The role of corticothalamic feedback in a thalamically generated rhythm
    • Contreras D, Steriade M. 1996. Spindle oscillation in cats: the role of corticothalamic feedback in a thalamically generated rhythm. J Physiol. 490:159-179.
    • (1996) J Physiol , vol.490 , pp. 159-179
    • Contreras, D.1    Steriade, M.2
  • 21
    • 0027320103 scopus 로고
    • Hierarchical organization of areas in rat visual cortex
    • Coogan TA, Burkhalter A. 1993. Hierarchical organization of areas in rat visual cortex. J Neurosci. 13:3749-3772.
    • (1993) J Neurosci , vol.13 , pp. 3749-3772
    • Coogan, T.A.1    Burkhalter, A.2
  • 22
    • 0028098192 scopus 로고
    • Spontaneous firing patterns and axonal projections of single corticostriatal neurons in the rat medial agranular cortex
    • Cowan RL, Wilson CJ. 1994. Spontaneous firing patterns and axonal projections of single corticostriatal neurons in the rat medial agranular cortex. J Neurophysiol. 71:17-32.
    • (1994) J Neurophysiol , vol.71 , pp. 17-32
    • Cowan, R.L.1    Wilson, C.J.2
  • 24
    • 0020422484 scopus 로고
    • The motor cortex of the rat: Cytoarchitecture and microstimulation mapping
    • Donoghue JP, Wise SP. 1982. The motor cortex of the rat: cytoarchitecture and microstimulation mapping. J Comp Neurol. 212:76-88.
    • (1982) J Comp Neurol , vol.212 , pp. 76-88
    • Donoghue, J.P.1    Wise, S.P.2
  • 25
    • 78650745174 scopus 로고    scopus 로고
    • Development, specification, and diversity of callosal projection neurons
    • Fame RM, MacDonald JL, Macklis JD. 2011. Development, specification, and diversity of callosal projection neurons. Trends Neurosci. 34:41-50.
    • (2011) Trends Neurosci , vol.34 , pp. 41-50
    • Fame, R.M.1    MacDonald, J.L.2    Macklis, J.D.3
  • 26
    • 84862998477 scopus 로고    scopus 로고
    • Excitatory neuronal connectivity in the barrel cortex
    • Feldmeyer D. 2012. Excitatory neuronal connectivity in the barrel cortex. Front Neuroanat. 6:24.
    • (2012) Front Neuroanat , vol.6 , pp. 24
    • Feldmeyer, D.1
  • 27
    • 0025718412 scopus 로고
    • Distributed hierarchical processing in the primate cerebral cortex
    • Felleman DJ, Essen DCV. 1991. Distributed hierarchical processing in the primate cerebral cortex. Cereb Cortex. 1:1-47.
    • (1991) Cereb Cortex , vol.1 , pp. 1-47
    • Felleman, D.J.1    Essen, D.C.V.2
  • 28
    • 38749105842 scopus 로고    scopus 로고
    • Pyramidal neurons grow up and change their mind
    • Fishell G, Hanashima C. 2008. Pyramidal neurons grow up and change their mind. Neuron. 57:333-338.
    • (2008) Neuron , vol.57 , pp. 333-338
    • Fishell, G.1    Hanashima, C.2
  • 29
    • 84901604929 scopus 로고    scopus 로고
    • Working together: Basal ganglia pathways in action selection
    • Friend DM, Kravitz AV. 2014. Working together: basal ganglia pathways in action selection. Trends Neurosci. 37:301-303.
    • (2014) Trends Neurosci , vol.37 , pp. 301-303
    • Friend, D.M.1    Kravitz, A.V.2
  • 31
    • 26644446905 scopus 로고    scopus 로고
    • Prefrontal cortex in the rat: Projections to subcortical autonomic, motor, and limbic centers
    • Gabbott PL, Warner TA, Jays PR, Salway P, Busby SJ. 2005. Prefrontal cortex in the rat: projections to subcortical autonomic, motor, and limbic centers. J Comp Neurol. 492:145-177.
    • (2005) J Comp Neurol , vol.492 , pp. 145-177
    • Gabbott, P.L.1    Warner, T.A.2    Jays, P.R.3    Salway, P.4    Busby, S.J.5
  • 32
    • 84887008084 scopus 로고    scopus 로고
    • GENSAT BAC crerecombinase driver lines to study the functional organization of cerebral cortical and basal ganglia circuits
    • Gerfen CR, Paletzki R, Heintz N. 2013. GENSAT BAC crerecombinase driver lines to study the functional organization of cerebral cortical and basal ganglia circuits. Neuron. 80:1368-1383.
    • (2013) Neuron , vol.80 , pp. 1368-1383
    • Gerfen, C.R.1    Paletzki, R.2    Heintz, N.3
  • 33
    • 79959869606 scopus 로고    scopus 로고
    • Modulation of striatal projection systems by dopamine
    • Gerfen CR, Surmeier DJ. 2011. Modulation of striatal projection systems by dopamine. Annu Rev Neurosci. 34:441-466.
    • (2011) Annu Rev Neurosci , vol.34 , pp. 441-466
    • Gerfen, C.R.1    Surmeier, D.J.2
  • 34
    • 0033151713 scopus 로고    scopus 로고
    • Efficacy of thalamocortical and intracortical synaptic connections: Quanta, innervation, and reliability
    • Gil Z, Connors BW, Amitai Y. 1999. Efficacy of thalamocortical and intracortical synaptic connections: quanta, innervation, and reliability. Neuron. 23:385-397.
    • (1999) Neuron , vol.23 , pp. 385-397
    • Gil, Z.1    Connors, B.W.2    Amitai, Y.3
  • 35
    • 0028938076 scopus 로고
    • Cellular basis of working memory
    • Goldman-Rakic PS. 1995. Cellular basis of working memory. Neuron. 14:477-485.
    • (1995) Neuron , vol.14 , pp. 477-485
    • Goldman-Rakic, P.S.1
  • 36
    • 48249091260 scopus 로고    scopus 로고
    • Habits, rituals, and the evaluative brain
    • Graybiel AM. 2008. Habits, rituals, and the evaluative brain. Annu Rev Neurosci. 31:359-387.
    • (2008) Annu Rev Neurosci , vol.31 , pp. 359-387
    • Graybiel, A.M.1
  • 38
    • 84882406435 scopus 로고    scopus 로고
    • Orbitofrontal and striatal circuits dynamically encode the shift between goal-directed and habitual actions
    • Gremel CM, Costa RM. 2013. Orbitofrontal and striatal circuits dynamically encode the shift between goal-directed and habitual actions. Nat Commun. 4:2264.
    • (2013) Nat Commun , vol.4 , pp. 2264
    • Gremel, C.M.1    Costa, R.M.2
  • 39
    • 84884683777 scopus 로고    scopus 로고
    • Premotor cortex is critical for goal-directed actions
    • Gremel CM, Costa RM. 2013. Premotor cortex is critical for goal-directed actions. Front Comput Neurosci. 7:110.
    • (2013) Front Comput Neurosci , vol.7 , pp. 110
    • Gremel, C.M.1    Costa, R.M.2
  • 41
    • 0023821477 scopus 로고
    • Dendritic morphology and axon collaterals of corticotectal, corticopontine, and callosal neurons in layer v of primary visual cortex of the hooded rat
    • Hallman LE, Schofield BR, Lin CS. 1988. Dendritic morphology and axon collaterals of corticotectal, corticopontine, and callosal neurons in layer V of primary visual cortex of the hooded rat. J Comp Neurol. 272:149-160.
    • (1988) J Comp Neurol , vol.272 , pp. 149-160
    • Hallman, L.E.1    Schofield, B.R.2    Lin, C.S.3
  • 42
    • 23044509070 scopus 로고    scopus 로고
    • Inhibitory postsynaptic potentials carry synchronized frequency information in active cortical networks
    • Hasenstaub A, Shu Y, Haider B, Kraushaar U, Duque A, McCormick DA. 2005. Inhibitory postsynaptic potentials carry synchronized frequency information in active cortical networks. Neuron. 47:423-435.
    • (2005) Neuron , vol.47 , pp. 423-435
    • Hasenstaub, A.1    Shu, Y.2    Haider, B.3    Kraushaar, U.4    Duque, A.5    McCormick, D.A.6
  • 43
    • 84965134581 scopus 로고    scopus 로고
    • Cortical divergent projections in mice originate from two sequentially generated, distinct populations of excitatory cortical neurons with different Initial axonal outgrowth characteristics
    • Hatanaka Y, Namikawa T, Yamauchi K, Kawaguchi Y. 2016. Cortical divergent projections in mice originate from two sequentially generated, distinct populations of excitatory cortical neurons with different Initial axonal outgrowth characteristics. Cereb Cortex. 26:2257-2270.
    • (2016) Cereb Cortex , vol.26 , pp. 2257-2270
    • Hatanaka, Y.1    Namikawa, T.2    Yamauchi, K.3    Kawaguchi, Y.4
  • 44
    • 37549037404 scopus 로고    scopus 로고
    • Layer v neurons in mouse cortex projecting to different targets have distinct physiological properties
    • Hattox AM, Nelson SB. 2007. Layer V neurons in mouse cortex projecting to different targets have distinct physiological properties. J Neurophysiol. 98:3330-3340.
    • (2007) J Neurophysiol , vol.98 , pp. 3330-3340
    • Hattox, A.M.1    Nelson, S.B.2
  • 46
    • 84856649196 scopus 로고    scopus 로고
    • Specialized cortical subnetworks differentially connect frontal cortex to parahippocampal areas
    • Hirai Y, Morishima M, Karube F, Kawaguchi Y. 2012. Specialized cortical subnetworks differentially connect frontal cortex to parahippocampal areas. J Neurosci. 32:1898-1913.
    • (2012) J Neurosci , vol.32 , pp. 1898-1913
    • Hirai, Y.1    Morishima, M.2    Karube, F.3    Kawaguchi, Y.4
  • 47
    • 85009516195 scopus 로고    scopus 로고
    • A comprehensive excitatory input map of the striatum reveals novel functional organization
    • Hunnicutt BJ, Jongbloets BC, Birdsong WT, Gertz KJ, Zhong H, Mao T. 2016. A comprehensive excitatory input map of the striatum reveals novel functional organization. eLife. 5:e19103.
    • (2016) ELife , vol.5 , pp. e19103
    • Hunnicutt, B.J.1    Jongbloets, B.C.2    Birdsong, W.T.3    Gertz, K.J.4    Zhong, H.5    Mao, T.6
  • 48
    • 0035478077 scopus 로고    scopus 로고
    • The thalamic matrix and thalamocortical synchrony
    • Jones EG. 2001. The thalamic matrix and thalamocortical synchrony. Trends Neurosci. 24:595-601.
    • (2001) Trends Neurosci , vol.24 , pp. 595-601
    • Jones, E.G.1
  • 49
    • 33845235869 scopus 로고    scopus 로고
    • Cortical feed-forward networks for binding different streams of sensory information
    • Kampa BM, Letzkus JJ, Stuart GJ. 2006. Cortical feed-forward networks for binding different streams of sensory information. Nat Neurosci. 9:1472-1473.
    • (2006) Nat Neurosci , vol.9 , pp. 1472-1473
    • Kampa, B.M.1    Letzkus, J.J.2    Stuart, G.J.3
  • 50
    • 0026503803 scopus 로고
    • Receptor subtypes involved in callosallyinduced postsynaptic potentials in rat frontal agranular cortex in vitro
    • Kawaguchi Y. 1992. Receptor subtypes involved in callosallyinduced postsynaptic potentials in rat frontal agranular cortex in vitro. Exp Brain Res. 88:33-40.
    • (1992) Exp Brain Res , vol.88 , pp. 33-40
    • Kawaguchi, Y.1
  • 51
    • 0027535780 scopus 로고
    • Groupings of nonpyramidal and pyramidal cells with specific physiological and morphological characteristics in rat frontal cortex
    • Kawaguchi Y. 1993. Groupings of nonpyramidal and pyramidal cells with specific physiological and morphological characteristics in rat frontal cortex. J Neurophysiol. 69:416-431.
    • (1993) J Neurophysiol , vol.69 , pp. 416-431
    • Kawaguchi, Y.1
  • 52
    • 84949450306 scopus 로고    scopus 로고
    • Hierarchical organization of neocortical neuron types
    • Kageyama R, Yamamori T, editors. Tokyo: Springer
    • Kawaguchi Y. 2013. Hierarchical organization of neocortical neuron types. In: Kageyama R, Yamamori T, editors. Cortical development: neural diversity and neocortical organization. Tokyo: Springer. p. 181-202.
    • (2013) Cortical Development: Neural Diversity and Neocortical Organization , pp. 181-202
    • Kawaguchi, Y.1
  • 53
    • 0024459191 scopus 로고
    • Intracellular recording of identified neostriatal patch and matrix spiny cells in a slice preparation preserving cortical inputs
    • Kawaguchi Y, Wilson CJ, Emson PC. 1989. Intracellular recording of identified neostriatal patch and matrix spiny cells in a slice preparation preserving cortical inputs. J Neurophysiol. 62:1052-1068.
    • (1989) J Neurophysiol , vol.62 , pp. 1052-1068
    • Kawaguchi, Y.1    Wilson, C.J.2    Emson, P.C.3
  • 54
    • 84961653942 scopus 로고    scopus 로고
    • Three types of cortical layer 5 neurons that differ in brain-wide connectivity and function
    • Kim EJ, Juavinett AL, Kyubwa EM, Jacobs MW, Callaway EM. 2015. Three types of cortical layer 5 neurons that differ in brain-wide connectivity and function. Neuron. 88:1253-1267.
    • (2015) Neuron , vol.88 , pp. 1253-1267
    • Kim, E.J.1    Juavinett, A.L.2    Kyubwa, E.M.3    Jacobs, M.W.4    Callaway, E.M.5
  • 55
    • 0032526982 scopus 로고    scopus 로고
    • Connectivity and convergence of single corticostriatal axons
    • Kincaid AE, Zheng T, Wilson CJ. 1998. Connectivity and convergence of single corticostriatal axons. J Neurosci. 18: 4722-4731.
    • (1998) J Neurosci , vol.18 , pp. 4722-4731
    • Kincaid, A.E.1    Zheng, T.2    Wilson, C.J.3
  • 56
    • 84859322280 scopus 로고    scopus 로고
    • Hierarchical connectivity and connection-specific dynamics in the corticospinal-corticostriatal microcircuit in mouse motor cortex
    • Kiritani T, Wickersham IR, Seung HS, Shepherd GM. 2012. Hierarchical connectivity and connection-specific dynamics in the corticospinal-corticostriatal microcircuit in mouse motor cortex. J Neurosci. 32:4992-5001.
    • (2012) J Neurosci , vol.32 , pp. 4992-5001
    • Kiritani, T.1    Wickersham, I.R.2    Seung, H.S.3    Shepherd, G.M.4
  • 57
    • 84860156184 scopus 로고    scopus 로고
    • The subthalamic nucleus is one of multiple innervation sites for long-range corticofugal axons: A singleaxon tracing study in the rat
    • Kita T, Kita H. 2012. The subthalamic nucleus is one of multiple innervation sites for long-range corticofugal axons: a singleaxon tracing study in the rat. J Neurosci. 32:5990-5999.
    • (2012) J Neurosci , vol.32 , pp. 5990-5999
    • Kita, T.1    Kita, H.2
  • 58
    • 84862203483 scopus 로고    scopus 로고
    • Striatal mechanisms underlying movement, reinforcement, and punishment
    • Kravitz AV, Kreitzer AC. 2012. Striatal mechanisms underlying movement, reinforcement, and punishment. Physiology (Bethesda). 27:167-177.
    • (2012) Physiology (Bethesda) , vol.27 , pp. 167-177
    • Kravitz, A.V.1    Kreitzer, A.C.2
  • 60
    • 33846798025 scopus 로고    scopus 로고
    • Neocortical inhibitory terminals innervate dendritic spines targeted by thalamocortical afferents
    • Kubota Y, Hatada S, Kondo S, Karube F, Kawaguchi Y. 2007. Neocortical inhibitory terminals innervate dendritic spines targeted by thalamocortical afferents. J Neurosci. 27:1139-1150. Kuramoto E, Furuta T, Nakamura KC, Unzai T, Hioki H, Kaneko T. 2009. Two types of thalamocortical projections from the motor thalamic nuclei of the rat: a single neuron-tracing study using viral vectors. Cereb Cortex. 19:2065-2077.
    • (2007) J Neurosci , vol.27 , pp. 1139-1150
    • Kubota, Y.1    Hatada, S.2    Kondo, S.3    Karube, F.4    Kawaguchi, Y.5
  • 61
    • 84922376037 scopus 로고    scopus 로고
    • Ventral medial nucleus neurons send thalamocortical afferents more widely and more preferentially to layer 1 than neurons of the ventral anterior-ventral lateral nuclear complex in the rat
    • Kuramoto E, Ohno S, Furuta T, Unzai T, Tanaka YR, Hioki H, Kaneko T. 2015. Ventral medial nucleus neurons send thalamocortical afferents more widely and more preferentially to layer 1 than neurons of the ventral anterior-ventral lateral nuclear complex in the rat. Cereb Cortex. 25:221-235.
    • (2015) Cereb Cortex , vol.25 , pp. 221-235
    • Kuramoto, E.1    Ohno, S.2    Furuta, T.3    Unzai, T.4    Tanaka, Y.R.5    Hioki, H.6    Kaneko, T.7
  • 62
    • 84978851240 scopus 로고    scopus 로고
    • Individual mediodorsal thalamic neurons project to multiple areas of the rat prefrontal cortex: A single neuron-tracing study using virus vectors
    • Kuramoto E, Pan S, Furuta T, Tanaka YR, Iwai H, Yamanaka A, Ohno S, Kaneko T, Goto T, Hioki H. 2017. Individual mediodorsal thalamic neurons project to multiple areas of the rat prefrontal cortex: a single neuron-tracing study using virus vectors. J Comp Neurol. 525:166-185.
    • (2017) J Comp Neurol , vol.525 , pp. 166-185
    • Kuramoto, E.1    Pan, S.2    Furuta, T.3    Tanaka, Y.R.4    Iwai, H.5    Yamanaka, A.6    Ohno, S.7    Kaneko, T.8    Goto, T.9    Hioki, H.10
  • 63
    • 4644350294 scopus 로고    scopus 로고
    • Evidence for differential cortical input to direct pathway versus indirect pathway striatal projection neurons in rats
    • Lei W, Jiao Y, Del Mar N, Reiner A. 2004. Evidence for differential cortical input to direct pathway versus indirect pathway striatal projection neurons in rats. J Neurosci. 24:8289-8299.
    • (2004) J Neurosci , vol.24 , pp. 8289-8299
    • Lei, W.1    Jiao, Y.2    Del Mar, N.3    Reiner, A.4
  • 64
    • 84899486740 scopus 로고    scopus 로고
    • The impact of cortical deafferentation on the neocortical slow oscillation
    • Lemieux M, Chen JY, Lonjers P, Bazhenov M, Timofeev I. 2014. The impact of cortical deafferentation on the neocortical slow oscillation. J Neurosci. 34:5689-5703.
    • (2014) J Neurosci , vol.34 , pp. 5689-5703
    • Lemieux, M.1    Chen, J.Y.2    Lonjers, P.3    Bazhenov, M.4    Timofeev, I.5
  • 66
    • 0031727755 scopus 로고    scopus 로고
    • Axonal arborization of corticostriatal and corticothalamic fibers arising from prelimbic cortex in the rat
    • Levesque M, Parent A. 1998. Axonal arborization of corticostriatal and corticothalamic fibers arising from prelimbic cortex in the rat. Cereb Cortex. 8:602-613.
    • (1998) Cereb Cortex , vol.8 , pp. 602-613
    • Levesque, M.1    Parent, A.2
  • 67
    • 84924414762 scopus 로고    scopus 로고
    • A motor cortex circuit for motor planning and movement
    • Li N, Chen TW, Guo ZV, Gerfen CR, Svoboda K. 2015. A motor cortex circuit for motor planning and movement. Nature. 519:51-56.
    • (2015) Nature , vol.519 , pp. 51-56
    • Li, N.1    Chen, T.W.2    Guo, Z.V.3    Gerfen, C.R.4    Svoboda, K.5
  • 68
    • 84964896806 scopus 로고    scopus 로고
    • Robust neuronal dynamics in premotor cortex during motor planning
    • Li N, Daie K, Svoboda K, Druckmann S. 2016. Robust neuronal dynamics in premotor cortex during motor planning. Nature. 532:459-464.
    • (2016) Nature , vol.532 , pp. 459-464
    • Li, N.1    Daie, K.2    Svoboda, K.3    Druckmann, S.4
  • 69
    • 84875475778 scopus 로고    scopus 로고
    • The rat prefrontostriatal system analyzed in 3D: Evidence for multiple interacting functional units
    • Mailly P, Aliane V, Groenewegen HJ, Haber SN, Deniau JM. 2013. The rat prefrontostriatal system analyzed in 3D: evidence for multiple interacting functional units. J Neurosci. 33: 5718-5727.
    • (2013) J Neurosci , vol.33 , pp. 5718-5727
    • Mailly, P.1    Aliane, V.2    Groenewegen, H.J.3    Haber, S.N.4    Deniau, J.M.5
  • 72
    • 3042554012 scopus 로고    scopus 로고
    • Structural basis of long-term potentiation in single dendritic spines
    • Matsuzaki M, Honkura N, Ellis-Davies GC, Kasai H. 2004. Structural basis of long-term potentiation in single dendritic spines. Nature. 429:761-766.
    • (2004) Nature , vol.429 , pp. 761-766
    • Matsuzaki, M.1    Honkura, N.2    Ellis-Davies, G.C.3    Kasai, H.4
  • 73
    • 24044472184 scopus 로고    scopus 로고
    • Excitatory connections made by presynaptic cortico-cortical pyramidal cells in layer 6 of the neocortex
    • Mercer A, West DC, Morris OT, Kirchhecker S, Kerkhoff JE, Thomson AM. 2005. Excitatory connections made by presynaptic cortico-cortical pyramidal cells in layer 6 of the neocortex. Cereb Cortex. 15:1485-1496.
    • (2005) Cereb Cortex , vol.15 , pp. 1485-1496
    • Mercer, A.1    West, D.C.2    Morris, O.T.3    Kirchhecker, S.4    Kerkhoff, J.E.5    Thomson, A.M.6
  • 74
    • 0027137818 scopus 로고
    • Ionic flux contributions to neocortical slow waves and nucleus basalis-mediated activation: Whole-cell recordings in vivo
    • Metherate R, Ashe JH. 1993. Ionic flux contributions to neocortical slow waves and nucleus basalis-mediated activation: whole-cell recordings in vivo. J Neurosci. 13:5312-5323.
    • (1993) J Neurosci , vol.13 , pp. 5312-5323
    • Metherate, R.1    Ashe, J.H.2
  • 75
    • 0034928713 scopus 로고    scopus 로고
    • An integrative theory of prefrontal cortex function
    • Miller EK, Cohen JD. 2001. An integrative theory of prefrontal cortex function. Annu Rev Neurosci. 24:167-202.
    • (2001) Annu Rev Neurosci , vol.24 , pp. 167-202
    • Miller, E.K.1    Cohen, J.D.2
  • 76
    • 84930181312 scopus 로고    scopus 로고
    • The mediodorsal thalamus as a higher order thalamic relay nucleus important for learning and decisionmaking
    • Mitchell AS. 2015. The mediodorsal thalamus as a higher order thalamic relay nucleus important for learning and decisionmaking. Neurosci Biobehav Rev. 54:76-88.
    • (2015) Neurosci Biobehav Rev , vol.54 , pp. 76-88
    • Mitchell, A.S.1
  • 77
    • 33644790758 scopus 로고    scopus 로고
    • Towards the classification of subpopulations of layer v pyramidal projection neurons
    • Molnár Z, Cheung AF. 2006. Towards the classification of subpopulations of layer V pyramidal projection neurons. Neurosci Res. 55:105-115.
    • (2006) Neurosci Res , vol.55 , pp. 105-115
    • Molnár, Z.1    Cheung, A.F.2
  • 79
    • 33646443534 scopus 로고    scopus 로고
    • Recurrent connection patterns of corticostriatal pyramidal cells in frontal cortex
    • Morishima M, Kawaguchi Y. 2006. Recurrent connection patterns of corticostriatal pyramidal cells in frontal cortex. J Neurosci. 26:4394-4405.
    • (2006) J Neurosci , vol.26 , pp. 4394-4405
    • Morishima, M.1    Kawaguchi, Y.2
  • 80
    • 79960397045 scopus 로고    scopus 로고
    • Highly differentiated projection-specific cortical subnetworks
    • Morishima M, Morita K, Kubota Y, Kawaguchi Y. 2011. Highly differentiated projection-specific cortical subnetworks. J Neurosci. 31:10380-10391.
    • (2011) J Neurosci , vol.31 , pp. 10380-10391
    • Morishima, M.1    Morita, K.2    Kubota, Y.3    Kawaguchi, Y.4
  • 81
    • 84898427272 scopus 로고    scopus 로고
    • Differential cortical activation of the striatal direct and indirect pathway cells: Reconciling the anatomical and optogenetic results by using a computational method
    • Morita K. 2014. Differential cortical activation of the striatal direct and indirect pathway cells: reconciling the anatomical and optogenetic results by using a computational method. J Neurophysiol. 112:120-146.
    • (2014) J Neurophysiol , vol.112 , pp. 120-146
    • Morita, K.1
  • 82
    • 84939262688 scopus 로고    scopus 로고
    • Computing reward-prediction error: An integrated account of cortical timing and basalganglia pathways for appetitive and aversive learning
    • Morita K, Kawaguchi Y. 2015. Computing reward-prediction error: an integrated account of cortical timing and basalganglia pathways for appetitive and aversive learning. Eur J Neurosci. 42:2003-2021.
    • (2015) Eur J Neurosci , vol.42 , pp. 2003-2021
    • Morita, K.1    Kawaguchi, Y.2
  • 83
    • 84864066393 scopus 로고    scopus 로고
    • Reinforcement learning: Computing the temporal difference of values via distinct corticostriatal pathways
    • Morita K, Morishima M, Sakai K, Kawaguchi Y. 2012. Reinforcement learning: computing the temporal difference of values via distinct corticostriatal pathways. Trends Neurosci. 35:457-467.
    • (2012) Trends Neurosci , vol.35 , pp. 457-467
    • Morita, K.1    Morishima, M.2    Sakai, K.3    Kawaguchi, Y.4
  • 84
    • 84908572998 scopus 로고    scopus 로고
    • Neural antecedents of self-initiated actions in secondary motor cortex
    • Murakami M, Vicente MI, Costa GM, Mainen ZF. 2014. Neural antecedents of self-initiated actions in secondary motor cortex. Nat Neurosci. 17:1574-1582.
    • (2014) Nat Neurosci , vol.17 , pp. 1574-1582
    • Murakami, M.1    Vicente, M.I.2    Costa, G.M.3    Mainen, Z.F.4
  • 86
    • 0029942444 scopus 로고    scopus 로고
    • Total number of neurons in the neostriatal, pallidal, subthalamic, and substantia nigral nuclei of the rat basal ganglia: A stereological study using the Cavalieri and optical disector methods
    • Oorschot DE. 1996. Total number of neurons in the neostriatal, pallidal, subthalamic, and substantia nigral nuclei of the rat basal ganglia: a stereological study using the Cavalieri and optical disector methods. J Comp Neurol. 366:580-599.
    • (1996) J Comp Neurol , vol.366 , pp. 580-599
    • Oorschot, D.E.1
  • 87
    • 67649342617 scopus 로고    scopus 로고
    • Evidence of action sequence chunking in goal-directed instrumental conditioning and its dependence on the dorsomedial prefrontal cortex
    • Ostlund SB, Winterbauer NE, Balleine BW. 2009. Evidence of action sequence chunking in goal-directed instrumental conditioning and its dependence on the dorsomedial prefrontal cortex. J Neurosci. 29:8280-8287.
    • (2009) J Neurosci , vol.29 , pp. 8280-8287
    • Ostlund, S.B.1    Winterbauer, N.E.2    Balleine, B.W.3
  • 89
    • 56149095043 scopus 로고    scopus 로고
    • Firing-pattern-dependent specificity of cortical excitatory feed-forward subnetworks
    • Otsuka T, Kawaguchi Y. 2008. Firing-pattern-dependent specificity of cortical excitatory feed-forward subnetworks. J Neurosci. 28:11186-11195.
    • (2008) J Neurosci , vol.28 , pp. 11186-11195
    • Otsuka, T.1    Kawaguchi, Y.2
  • 90
    • 79952418802 scopus 로고    scopus 로고
    • Cell diversity and connection specificity between callosal projection neurons in the frontal cortex
    • Otsuka T, Kawaguchi Y. 2011. Cell diversity and connection specificity between callosal projection neurons in the frontal cortex. J Neurosci. 31:3862-3870.
    • (2011) J Neurosci , vol.31 , pp. 3862-3870
    • Otsuka, T.1    Kawaguchi, Y.2
  • 91
    • 84866310435 scopus 로고    scopus 로고
    • The neurobiology of the prefrontal cortex: Anatomy
    • Oxford, United Kingdom: Oxford University Press
    • Passingham RE, Wise SP. 2012. The neurobiology of the prefrontal cortex: anatomy. In: evolution, and the origin of insight. Oxford, United Kingdom: Oxford University Press.
    • (2012) Evolution, and the Origin of Insight
    • Passingham, R.E.1    Wise, S.P.2
  • 92
    • 79955101961 scopus 로고    scopus 로고
    • A synaptic organizing principle for cortical neuronal groups
    • Perin R, Berger TK, Markram H. 2011. A synaptic organizing principle for cortical neuronal groups. Proc Natl Acad Sci U S A. 108:5419-5424.
    • (2011) Proc Natl Acad Sci U S A , vol.108 , pp. 5419-5424
    • Perin, R.1    Berger, T.K.2    Markram, H.3
  • 93
    • 61349194996 scopus 로고    scopus 로고
    • The subcellular organization of neocortical excitatory connections
    • Petreanu L, Mao T, Sternson SM, Svoboda K. 2009. The subcellular organization of neocortical excitatory connections. Nature. 457:1142-1145.
    • (2009) Nature , vol.457 , pp. 1142-1145
    • Petreanu, L.1    Mao, T.2    Sternson, S.M.3    Svoboda, K.4
  • 94
    • 46149083014 scopus 로고    scopus 로고
    • Two distinct activity patterns of fast-spiking interneurons during neocortical UP states
    • Puig MV, Ushimaru M, Kawaguchi Y. 2008. Two distinct activity patterns of fast-spiking interneurons during neocortical UP states. Proc Natl Acad Sci USA. 105:8428-8433.
    • (2008) Proc Natl Acad Sci USA , vol.105 , pp. 8428-8433
    • Puig, M.V.1    Ushimaru, M.2    Kawaguchi, Y.3
  • 95
    • 84959861453 scopus 로고    scopus 로고
    • Recurrent network models of sequence generation and memory
    • Rajan K, Harvey CD, Tank DW. 2016. Recurrent network models of sequence generation and memory. Neuron. 90:128-142.
    • (2016) Neuron , vol.90 , pp. 128-142
    • Rajan, K.1    Harvey, C.D.2    Tank, D.W.3
  • 96
    • 0015965793 scopus 로고
    • Neurons in rhesus monkey visual cortex: Systematic relation between time of origin and eventual disposition
    • Rakic P. 1974. Neurons in rhesus monkey visual cortex: systematic relation between time of origin and eventual disposition. Science. 183:425-427.
    • (1974) Science , vol.183 , pp. 425-427
    • Rakic, P.1
  • 97
    • 0242665640 scopus 로고    scopus 로고
    • The associative striatum: Organization of cortical projections to the dorsocentral striatum in rats
    • Reep RL, Cheatwood JL, Corwin JV. 2003. The associative striatum: organization of cortical projections to the dorsocentral striatum in rats. J Comp Neurol. 467:271-292.
    • (2003) J Comp Neurol , vol.467 , pp. 271-292
    • Reep, R.L.1    Cheatwood, J.L.2    Corwin, J.V.3
  • 98
    • 0033546978 scopus 로고    scopus 로고
    • Topographic organization of the striatal and thalamic connections of rat medial agranular cortex
    • Reep RL, Corwin JV. 1999. Topographic organization of the striatal and thalamic connections of rat medial agranular cortex. Brain Res. 841:43-52.
    • (1999) Brain Res , vol.841 , pp. 43-52
    • Reep, R.L.1    Corwin, J.V.2
  • 99
    • 0023394893 scopus 로고
    • Efferent connections of the rostral portion of medial agranular cortex in rats
    • Reep RL, Corwin JV, Hashimoto A, Watson RT. 1987. Efferent connections of the rostral portion of medial agranular cortex in rats. Brain Res Bull. 19:203-221.
    • (1987) Brain Res Bull , vol.19 , pp. 203-221
    • Reep, R.L.1    Corwin, J.V.2    Hashimoto, A.3    Watson, R.T.4
  • 100
    • 0025278368 scopus 로고
    • Topographic organization in the corticocortical connections of medial agranular cortex in rats
    • Reep RL, Goodwin GS, Corwin JV. 1990. Topographic organization in the corticocortical connections of medial agranular cortex in rats. J Comp Neurol. 294:262-280.
    • (1990) J Comp Neurol , vol.294 , pp. 262-280
    • Reep, R.L.1    Goodwin, G.S.2    Corwin, J.V.3
  • 101
    • 80755128076 scopus 로고    scopus 로고
    • Corticostriatal projection neurons-dichotomous types and dichotomous functions
    • Reiner A, Hart NM, Lei W, Deng Y. 2010. Corticostriatal projection neurons-dichotomous types and dichotomous functions. Front Neuroanat. 4:142.
    • (2010) Front Neuroanat , vol.4 , pp. 142
    • Reiner, A.1    Hart, N.M.2    Lei, W.3    Deng, Y.4
  • 102
    • 0037468114 scopus 로고    scopus 로고
    • Differential morphology of pyramidal tract-type and intratelencephalically projecting-type corticostriatal neurons and their intrastriatal terminals in rats
    • Reiner A, Jiao Y, Del Mar N, Laverghetta AV, Lei WL. 2003. Differential morphology of pyramidal tract-type and intratelencephalically projecting-type corticostriatal neurons and their intrastriatal terminals in rats. J Comp Neurol. 457: 420-440.
    • (2003) J Comp Neurol , vol.457 , pp. 420-440
    • Reiner, A.1    Jiao, Y.2    Del Mar, N.3    Laverghetta, A.V.4    Lei, W.L.5
  • 103
    • 34247360027 scopus 로고    scopus 로고
    • Thalamocortical Up states: Differential effects of intrinsic and extrinsic cortical inputs on persistent activity
    • Rigas P, Castro-Alamancos MA. 2007. Thalamocortical Up states: differential effects of intrinsic and extrinsic cortical inputs on persistent activity. J Neurosci. 27:4261-4272.
    • (2007) J Neurosci , vol.27 , pp. 4261-4272
    • Rigas, P.1    Castro-Alamancos, M.A.2
  • 104
    • 0018603117 scopus 로고
    • Laminar origins and terminations of cortical connections of the occipital lobe in the rhesus monkey
    • Rockland KS, Pandya DN. 1979. Laminar origins and terminations of cortical connections of the occipital lobe in the rhesus monkey. Brain Res. 179:3-20.
    • (1979) Brain Res , vol.179 , pp. 3-20
    • Rockland, K.S.1    Pandya, D.N.2
  • 105
    • 70349443489 scopus 로고    scopus 로고
    • Thalamic input to distal apical dendrites in neocortical layer 1 is massive and highly convergent
    • Rubio-Garrido P, Perez-de-Manzo F, Porrero C, Galazo MJ, Clasca F. 2009. Thalamic input to distal apical dendrites in neocortical layer 1 is massive and highly convergent. Cereb Cortex. 19: 2380-2395.
    • (2009) Cereb Cortex , vol.19 , pp. 2380-2395
    • Rubio-Garrido, P.1    Perez-De-Manzo, F.2    Porrero, C.3    Galazo, M.J.4    Clasca, F.5
  • 107
    • 0033799036 scopus 로고    scopus 로고
    • Cellular and network mechanisms of rhythmic recurrent activity in neocortex
    • Sanchez-Vives MV, McCormick DA. 2000. Cellular and network mechanisms of rhythmic recurrent activity in neocortex. Nat Neurosci. 3:1027-1034.
    • (2000) Nat Neurosci , vol.3 , pp. 1027-1034
    • Sanchez-Vives, M.V.1    McCormick, D.A.2
  • 109
    • 13244281707 scopus 로고    scopus 로고
    • Prefrontal white matter volume is disproportionately larger in humans than in other primates
    • Schoenemann PT, Sheehan MJ, Glotzer LD. 2005. Prefrontal white matter volume is disproportionately larger in humans than in other primates. Nat Neurosci. 8:242-252.
    • (2005) Nat Neurosci , vol.8 , pp. 242-252
    • Schoenemann, P.T.1    Sheehan, M.J.2    Glotzer, L.D.3
  • 110
    • 84934759332 scopus 로고    scopus 로고
    • Neuronal reward and decision signals: From theories to data
    • Schultz W. 2015. Neuronal reward and decision signals: from theories to data. Physiol Rev. 95:853-951.
    • (2015) Physiol Rev , vol.95 , pp. 853-951
    • Schultz, W.1
  • 111
    • 0030896968 scopus 로고    scopus 로고
    • A neural substrate of prediction and reward
    • Schultz W, Dayan P, Montague PR. 1997. A neural substrate of prediction and reward. Science. 275:1593-1599.
    • (1997) Science , vol.275 , pp. 1593-1599
    • Schultz, W.1    Dayan, P.2    Montague, P.R.3
  • 112
    • 84982144179 scopus 로고    scopus 로고
    • Thalamus plays a central role in ongoing cortical functioning
    • Sherman SM. 2016. Thalamus plays a central role in ongoing cortical functioning. Nat Neurosci. 19:533-541.
    • (2016) Nat Neurosci , vol.19 , pp. 533-541
    • Sherman, S.M.1
  • 114
    • 21244471972 scopus 로고    scopus 로고
    • The importance of being agranular: A comparative account of visual and motor cortex
    • Shipp S. 2005. The importance of being agranular: a comparative account of visual and motor cortex. Philos Trans R Soc Lond B Biol Sci. 360:797-814.
    • (2005) Philos Trans R Soc Lond B Biol Sci , vol.360 , pp. 797-814
    • Shipp, S.1
  • 115
    • 34250191065 scopus 로고    scopus 로고
    • Structure and function of the cerebral cortex
    • Shipp S. 2007. Structure and function of the cerebral cortex. Curr Biol. 17:R443-R449.
    • (2007) Curr Biol , vol.17 , pp. R443-R449
    • Shipp, S.1
  • 116
    • 84888869781 scopus 로고    scopus 로고
    • Reflections on agranular architecture: Predictive coding in the motor cortex
    • Shipp S, Adams RA, Friston KJ. 2013. Reflections on agranular architecture: predictive coding in the motor cortex. Trends Neurosci. 36:706-716.
    • (2013) Trends Neurosci , vol.36 , pp. 706-716
    • Shipp, S.1    Adams, R.A.2    Friston, K.J.3
  • 117
    • 0020047406 scopus 로고
    • Growth patterns in the lateral wall of the mouse telencephalon: I. Autoradiographic studies of the histogenesis of the isocortex and adjacent areas
    • Smart IH, Smart M. 1982. Growth patterns in the lateral wall of the mouse telencephalon: I. autoradiographic studies of the histogenesis of the isocortex and adjacent areas. J Anat. 134: 273-298.
    • (1982) J Anat , vol.134 , pp. 273-298
    • Smart, I.H.1    Smart, M.2
  • 119
    • 66649110345 scopus 로고    scopus 로고
    • Parvalbumin neurons and gamma rhythms enhance cortical circuit performance
    • Sohal VS, Zhang F, Yizhar O, Deisseroth K. 2009. Parvalbumin neurons and gamma rhythms enhance cortical circuit performance. Nature. 459:698-702.
    • (2009) Nature , vol.459 , pp. 698-702
    • Sohal, V.S.1    Zhang, F.2    Yizhar, O.3    Deisseroth, K.4
  • 120
    • 18044383304 scopus 로고    scopus 로고
    • Highly nonrandom features of synaptic connectivity in local cortical circuits
    • Song S, Sjöström PJ, Reigl M, Nelson S, Chklovskii DB. 2005. Highly nonrandom features of synaptic connectivity in local cortical circuits. PLoS Biol. 3:e68.
    • (2005) PLoS Biol , vol.3 , pp. e68
    • Song, S.1    Sjöström, P.J.2    Reigl, M.3    Nelson, S.4    Chklovskii, D.B.5
  • 121
    • 0027328657 scopus 로고
    • A novel slow (<1 Hz) oscillation of neocortical neurons in vivo: Depolarizing and hyperpolarizing components
    • Steriade M, Nuñez A, Amzica F. 1993. A novel slow (<1 Hz) oscillation of neocortical neurons in vivo: depolarizing and hyperpolarizing components. J Neurosci. 13:3252-3265.
    • (1993) J Neurosci , vol.13 , pp. 3252-3265
    • Steriade, M.1    Nuñez, A.2    Amzica, F.3
  • 123
    • 80052261365 scopus 로고    scopus 로고
    • Role of rodent secondary motor cortex in value-based action selection
    • Sul JH, Jo S, Lee D, Jung MW. 2011. Role of rodent secondary motor cortex in value-based action selection. Nat Neurosci. 14:1202-1208.
    • (2011) Nat Neurosci , vol.14 , pp. 1202-1208
    • Sul, J.H.1    Jo, S.2    Lee, D.3    Jung, M.W.4
  • 124
    • 84893503924 scopus 로고    scopus 로고
    • Neural circuits as computational dynamical systems
    • Sussillo D. 2014. Neural circuits as computational dynamical systems. Curr Opin Neurobiol. 25:156-163.
    • (2014) Curr Opin Neurobiol , vol.25 , pp. 156-163
    • Sussillo, D.1
  • 125
    • 0032562206 scopus 로고    scopus 로고
    • Postsynaptic pyramidal target selection by descending layer III pyramidal axons: Dual intracellular recordings and biocytin filling in slices of rat neocortex
    • Thomson AM, Bannister AP. 1998. Postsynaptic pyramidal target selection by descending layer III pyramidal axons: dual intracellular recordings and biocytin filling in slices of rat neocortex. Neuroscience. 84:669-683.
    • (1998) Neuroscience , vol.84 , pp. 669-683
    • Thomson, A.M.1    Bannister, A.P.2
  • 126
    • 85018645171 scopus 로고    scopus 로고
    • Sleep slow oscillation and plasticity
    • Timofeev I, Chauvette S. 2017. Sleep slow oscillation and plasticity. Curr Opin Neurobiol. 44:116-126.
    • (2017) Curr Opin Neurobiol , vol.44 , pp. 116-126
    • Timofeev, I.1    Chauvette, S.2
  • 127
    • 84887012416 scopus 로고    scopus 로고
    • Direction-and distance-dependent interareal connectivity of pyramidal cell subpopulations in the rat frontal cortex
    • Ueta Y, Hirai Y, Otsuka T, Kawaguchi Y. 2013. Direction-and distance-dependent interareal connectivity of pyramidal cell subpopulations in the rat frontal cortex. Front Neural Circuits. 7:164.
    • (2013) Front Neural Circuits , vol.7 , pp. 164
    • Ueta, Y.1    Hirai, Y.2    Otsuka, T.3    Kawaguchi, Y.4
  • 128
    • 84906972700 scopus 로고    scopus 로고
    • Multiple layer 5 pyramidal cell subtypes relay cortical feedback from secondary to primary motor areas in rats
    • Ueta Y, Otsuka T, Morishima M, Ushimaru M, Kawaguchi Y. 2014. Multiple layer 5 pyramidal cell subtypes relay cortical feedback from secondary to primary motor areas in rats. Cereb Cortex. 24:2362-2376.
    • (2014) Cereb Cortex , vol.24 , pp. 2362-2376
    • Ueta, Y.1    Otsuka, T.2    Morishima, M.3    Ushimaru, M.4    Kawaguchi, Y.5
  • 129
    • 84940426289 scopus 로고    scopus 로고
    • Temporal structure of neuronal activity among cortical neuron subtypes during slow oscillations in anesthetized rats
    • Ushimaru M, Kawaguchi Y. 2015. Temporal structure of neuronal activity among cortical neuron subtypes during slow oscillations in anesthetized rats. J Neurosci. 35: 11988-12001.
    • (2015) J Neurosci , vol.35 , pp. 11988-12001
    • Ushimaru, M.1    Kawaguchi, Y.2
  • 130
    • 84856632185 scopus 로고    scopus 로고
    • Differentiated participation of thalamocortical subnetworks in slow/spindle waves and desynchronization
    • Ushimaru M, Ueta Y, Kawaguchi Y. 2012. Differentiated participation of thalamocortical subnetworks in slow/spindle waves and desynchronization. J Neurosci. 32:1730-1746.
    • (2012) J Neurosci , vol.32 , pp. 1730-1746
    • Ushimaru, M.1    Ueta, Y.2    Kawaguchi, Y.3
  • 132
    • 84879745959 scopus 로고    scopus 로고
    • Dynamic interaction of spindles and gamma activity during cortical slow oscillations and its modulation by subcortical afferents
    • Valencia M, Artieda J, Bolam JP, Mena-Segovia J. 2013. Dynamic interaction of spindles and gamma activity during cortical slow oscillations and its modulation by subcortical afferents. PLoS One. 8:e67540.
    • (2013) PLoS One , vol.8 , pp. e67540
    • Valencia, M.1    Artieda, J.2    Bolam, J.P.3    Mena-Segovia, J.4
  • 133
    • 6344226500 scopus 로고    scopus 로고
    • Selective neurofilament (SMI-32, FNP-7 and N200) expression in subpopulations of layer v pyramidal neurons in vivo and in vitro
    • Voelker CC, Garin N, Taylor JS, Gähwiler BH, Hornung JP, Molnár Z. 2004. Selective neurofilament (SMI-32, FNP-7 and N200) expression in subpopulations of layer V pyramidal neurons in vivo and in vitro. Cereb Cortex. 14:1276-1286.
    • (2004) Cereb Cortex , vol.14 , pp. 1276-1286
    • Voelker, C.C.1    Garin, N.2    Taylor, J.S.3    Gähwiler, B.H.4    Hornung, J.P.5    Molnár, Z.6
  • 134
    • 53849125053 scopus 로고    scopus 로고
    • Decision making in recurrent neuronal circuits
    • Wang XJ. 2008. Decision making in recurrent neuronal circuits. Neuron. 60:215-234
    • (2008) Neuron , vol.60 , pp. 215-234
    • Wang, X.J.1
  • 135
    • 30744461568 scopus 로고    scopus 로고
    • Layer 6 cortico-thalamic pyramidal cells preferentially innervate interneurons and generate facilitating EPSPs
    • West DC, Mercer A, Kirchhecker S, Morris OT, Thomson AM. 2006. Layer 6 cortico-thalamic pyramidal cells preferentially innervate interneurons and generate facilitating EPSPs. Cereb Cortex. 16:200-211.
    • (2006) Cereb Cortex , vol.16 , pp. 200-211
    • West, D.C.1    Mercer, A.2    Kirchhecker, S.3    Morris, O.T.4    Thomson, A.M.5
  • 136
    • 0023201339 scopus 로고
    • Morphology and synaptic connections of crossed corticostriatal neurons in the rat
    • Wilson CJ. 1987. Morphology and synaptic connections of crossed corticostriatal neurons in the rat. J Comp Neurol. 263:567-580.
    • (1987) J Comp Neurol , vol.263 , pp. 567-580
    • Wilson, C.J.1


* 이 정보는 Elsevier사의 SCOPUS DB에서 KISTI가 분석하여 추출한 것입니다.