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Volumn 99, Issue 5, 2008, Pages 2641-2655

Intrinsic frequency tuning in ELL pyramidal cells varies across electrosensory maps

Author keywords

[No Author keywords available]

Indexed keywords

ADAPTATION; AMPLITUDE MODULATION; ANIMAL CELL; ARTICLE; CONTROLLED STUDY; ELECTRORECEPTOR; LATERAL LINE SYSTEM; NERVE CONDUCTION; NONHUMAN; PRIORITY JOURNAL; PYRAMIDAL NERVE CELL; SENSORY NERVE; SENSORY STIMULATION; SPIKE WAVE; ANIMAL; CYTOLOGY; ELECTRIC FISH; ELECTROPHYSIOLOGY; MICROELECTRODE; PHYSIOLOGY; SENSORY RECEPTOR; STATISTICAL ANALYSIS;

EID: 47549104294     PISSN: 00223077     EISSN: 15221598     Source Type: Journal    
DOI: 10.1152/jn.00028.2008     Document Type: Article
Times cited : (40)

References (71)
  • 1
    • 0022628294 scopus 로고
    • Gain control in the electrosensory system mediated by descending inputs to the electrosensory lateral line lobe
    • Bastian J. Gain control in the electrosensory system mediated by descending inputs to the electrosensory lateral line lobe. J Neurosci 6: 553-562, 1986a.
    • (1986) J Neurosci , vol.6 , pp. 553-562
    • Bastian, J.1
  • 2
    • 0022626352 scopus 로고
    • Gain control in the electrosensory system: A role for the descending projections to the electrosensory lateral line lobe
    • Bastian J. Gain control in the electrosensory system: a role for the descending projections to the electrosensory lateral line lobe. J Comp Physiol [A] 158: 505-515, 1986b.
    • (1986) J Comp Physiol [A] , vol.158 , pp. 505-515
    • Bastian, J.1
  • 3
    • 1542298933 scopus 로고    scopus 로고
    • Plastic and nonplastic pyramidal cells perform unique roles in a network capable of adaptive redundancy reduction
    • Bastian J, Chacron MJ, Maler L. Plastic and nonplastic pyramidal cells perform unique roles in a network capable of adaptive redundancy reduction. Neuron 41: 767-779, 2004.
    • (2004) Neuron , vol.41 , pp. 767-779
    • Bastian, J.1    Chacron, M.J.2    Maler, L.3
  • 4
    • 0026148846 scopus 로고
    • Morphological correlates of pyramidal cell adaptation rate in the electrosensory lateral line lobe of weakly electric fish
    • Bastian J, Courtright J. Morphological correlates of pyramidal cell adaptation rate in the electrosensory lateral line lobe of weakly electric fish. J Comp Physiol [A] 168: 393-407, 1991.
    • (1991) J Comp Physiol [A] , vol.168 , pp. 393-407
    • Bastian, J.1    Courtright, J.2
  • 5
    • 0035176031 scopus 로고    scopus 로고
    • Dendritic modulation of burst-like firing in sensory neurons
    • Bastian J, Nguyenkim J. Dendritic modulation of burst-like firing in sensory neurons. J Neurophysiol 85: 10-22, 2001.
    • (2001) J Neurophysiol , vol.85 , pp. 10-22
    • Bastian, J.1    Nguyenkim, J.2
  • 6
    • 33748488488 scopus 로고    scopus 로고
    • Central neuroanatomy of electrosensory systems in fish. Electroreception
    • edited by Bullock TH. New York: Springer
    • Bell CC, Maler L. Central neuroanatomy of electrosensory systems in fish. Electroreception. In: Springer Handbook of Auditory Research, edited by Bullock TH. New York: Springer, 2005, p. xvi.
    • (2005) Springer Handbook of Auditory Research
    • Bell, C.C.1    Maler, L.2
  • 7
    • 0141749203 scopus 로고    scopus 로고
    • Herz AV. A universal model for spike-frequency adaptation
    • Benda J, Herz AV. A universal model for spike-frequency adaptation. Neural Comput 15: 2523-2564, 2003.
    • (2003) Neural Comput , vol.15 , pp. 2523-2564
    • Benda, J.1
  • 8
    • 14644428975 scopus 로고    scopus 로고
    • Spike-frequency adaptation separates transient communication signals from background oscillations
    • Benda J, Longtin A, Maler L. Spike-frequency adaptation separates transient communication signals from background oscillations. J Neurosci 25: 2312-2321, 2005.
    • (2005) J Neurosci , vol.25 , pp. 2312-2321
    • Benda, J.1    Longtin, A.2    Maler, L.3
  • 9
    • 33749683720 scopus 로고    scopus 로고
    • A synchronization-desynchronization code for natural communication signals
    • Benda J, Longtin A, Maler L. A synchronization-desynchronization code for natural communication signals. Neuron 52: 347-358, 2006.
    • (2006) Neuron , vol.52 , pp. 347-358
    • Benda, J.1    Longtin, A.2    Maler, L.3
  • 10
    • 0034799604 scopus 로고    scopus 로고
    • Function of NMDA receptors and persistent sodium channels in a feedback pathway of the electrosensory system
    • Berman N, Dunn RJ, Maler L. Function of NMDA receptors and persistent sodium channels in a feedback pathway of the electrosensory system. J Neurophysiol 86: 1612-1621, 2001.
    • (2001) J Neurophysiol , vol.86 , pp. 1612-1621
    • Berman, N.1    Dunn, R.J.2    Maler, L.3
  • 11
    • 23144434618 scopus 로고    scopus 로고
    • Systematic variation of potassium current amplitudes across the tonotopic axis of the rat medial nucleus of the trapezoid body
    • Brew HM, Forsythe ID. Systematic variation of potassium current amplitudes across the tonotopic axis of the rat medial nucleus of the trapezoid body. Hear Res 206: 116-132, 2005.
    • (2005) Hear Res , vol.206 , pp. 116-132
    • Brew, H.M.1    Forsythe, I.D.2
  • 13
    • 0019960674 scopus 로고
    • Peripheral organization and central projections of the electrosensory nerves in gymnotiform fish
    • Carr CE, Maler L, Sas E. Peripheral organization and central projections of the electrosensory nerves in gymnotiform fish. J Comp Neurol 211: 139-153, 1982.
    • (1982) J Comp Neurol , vol.211 , pp. 139-153
    • Carr, C.E.1    Maler, L.2    Sas, E.3
  • 14
    • 0038667849 scopus 로고    scopus 로고
    • Non-classical receptive field mediates switch in a sensory neuron's frequency tuning
    • Chacron MJ, Doiron B, Maler L, Longtin A, Bastian J. Non-classical receptive field mediates switch in a sensory neuron's frequency tuning. Nature 423: 77-81, 2003.
    • (2003) Nature , vol.423 , pp. 77-81
    • Chacron, M.J.1    Doiron, B.2    Maler, L.3    Longtin, A.4    Bastian, J.5
  • 15
    • 20444422859 scopus 로고    scopus 로고
    • Feedback and feedforward control of frequency tuning to naturalistic stimuli
    • Chacron MJ, Maler L, Bastian J. Feedback and feedforward control of frequency tuning to naturalistic stimuli. J Neurosci 25: 5521-5532, 2005.
    • (2005) J Neurosci , vol.25 , pp. 5521-5532
    • Chacron, M.J.1    Maler, L.2    Bastian, J.3
  • 17
    • 24944496222 scopus 로고    scopus 로고
    • Short-term synaptic depression causes a non-monotonic response to correlated stimuli
    • de la Rocha J, Parga N. Short-term synaptic depression causes a non-monotonic response to correlated stimuli. J Neurosci 25: 8416-8431, 2005.
    • (2005) J Neurosci , vol.25 , pp. 8416-8431
    • de la Rocha, J.1    Parga, N.2
  • 19
    • 0037472929 scopus 로고    scopus 로고
    • Inhibitory feedback required for network oscillatory responses to communication but not prey stimuli
    • Doiron B, Chacron MJ, Maler L, Longtin A, Bastian J. Inhibitory feedback required for network oscillatory responses to communication but not prey stimuli. Nature 421: 539-543, 2003a.
    • (2003) Nature , vol.421 , pp. 539-543
    • Doiron, B.1    Chacron, M.J.2    Maler, L.3    Longtin, A.4    Bastian, J.5
  • 20
    • 0037247175 scopus 로고    scopus 로고
    • + current modifies burst discharge by regulating conditional backpropagation of dendritic spikes
    • + current modifies burst discharge by regulating conditional backpropagation of dendritic spikes. J Neurophysiol 89: 324-337, 2003b.
    • (2003) J Neurophysiol , vol.89 , pp. 324-337
    • Doiron, B.1    Noonan, L.2    Lemon, N.3    Turner, R.W.4
  • 21
    • 34147183209 scopus 로고    scopus 로고
    • Interval coding. II. Dendrite-dependent mechanisms
    • Doiron B, Oswald AM, Maler L. Interval coding. II. Dendrite-dependent mechanisms. J Neurophysiol 97: 2744-2757, 2007.
    • (2007) J Neurophysiol , vol.97 , pp. 2744-2757
    • Doiron, B.1    Oswald, A.M.2    Maler, L.3
  • 22
    • 0029919517 scopus 로고    scopus 로고
    • Burst-firing sharpens frequency-tuning in primary auditory cortex
    • Eggermont JJ, Smith GM. Burst-firing sharpens frequency-tuning in primary auditory cortex. Neuroreport 7: 753-757, 1996.
    • (1996) Neuroreport , vol.7 , pp. 753-757
    • Eggermont, J.J.1    Smith, G.M.2
  • 23
    • 34548759049 scopus 로고    scopus 로고
    • Muscarinic receptors control frequency tuning through the downregulation of an a-type potassium current
    • Ellis LD, Krahe R, Bourque CW, Dunn RJ, Chacron MJ. Muscarinic receptors control frequency tuning through the downregulation of an a-type potassium current. J Neurophysiol 98: 1526-1537, 2007a.
    • (2007) J Neurophysiol , vol.98 , pp. 1526-1537
    • Ellis, L.D.1    Krahe, R.2    Bourque, C.W.3    Dunn, R.J.4    Chacron, M.J.5
  • 24
    • 34548383135 scopus 로고    scopus 로고
    • SK channels provide a novel mechanism for the control of frequency tuning in electrosensory neurons
    • Ellis LD, Mehaffey WH, Harvey-Girard E, Turner RW, Maler L, Dunn RJ. SK channels provide a novel mechanism for the control of frequency tuning in electrosensory neurons. J Neurosci 27: 9491-9502, 2007b.
    • (2007) J Neurosci , vol.27 , pp. 9491-9502
    • Ellis, L.D.1    Mehaffey, W.H.2    Harvey-Girard, E.3    Turner, R.W.4    Maler, L.5    Dunn, R.J.6
  • 25
    • 0036522964 scopus 로고    scopus 로고
    • Physiological role of calcium-activated potassium currents in the rat lateral amygdala
    • Faber ES, Sah P. Physiological role of calcium-activated potassium currents in the rat lateral amygdala. J Neurosci 22: 1618-1628, 2002.
    • (2002) J Neurosci , vol.22 , pp. 1618-1628
    • Faber, E.S.1    Sah, P.2
  • 27
    • 28044445062 scopus 로고    scopus 로고
    • + current inactivation can increase cell excitability by delaying a somatic depolarizing afterpotential
    • + current inactivation can increase cell excitability by delaying a somatic depolarizing afterpotential. J Neurophysiol 94: 3836-3848, 2005b.
    • (2005) J Neurophysiol , vol.94 , pp. 3836-3848
    • Fernandez, F.R.1    Mehaffey, W.H.2    Turner, R.W.3
  • 28
    • 0242353116 scopus 로고    scopus 로고
    • Rapid task-related plasticity of spectrotemporal receptive fields in primary auditory cortex
    • Fritz J, Shamma S, Elhilali M, Klein D. Rapid task-related plasticity of spectrotemporal receptive fields in primary auditory cortex. Nat Neurosci 6: 1216-1223, 2003.
    • (2003) Nat Neurosci , vol.6 , pp. 1216-1223
    • Fritz, J.1    Shamma, S.2    Elhilali, M.3    Klein, D.4
  • 29
    • 0032988977 scopus 로고    scopus 로고
    • Encoding and processing of sensory information in neuronal spike trains
    • Gabbiani F, Metzner W. Encoding and processing of sensory information in neuronal spike trains. J Exp Biol 202: 1267-1279, 1999.
    • (1999) J Exp Biol , vol.202 , pp. 1267-1279
    • Gabbiani, F.1    Metzner, W.2
  • 30
    • 0029805632 scopus 로고    scopus 로고
    • From stimulus encoding to feature extraction in weakly electric fish
    • Gabbiani F, Metzner W, Wessel R, Koch C. From stimulus encoding to feature extraction in weakly electric fish. Nature 384: 564-567, 1996.
    • (1996) Nature , vol.384 , pp. 564-567
    • Gabbiani, F.1    Metzner, W.2    Wessel, R.3    Koch, C.4
  • 32
    • 0036813195 scopus 로고    scopus 로고
    • Resonance and selective communication via bursts in neurons having subthreshold oscillations
    • Izhikevich EM. Resonance and selective communication via bursts in neurons having subthreshold oscillations. Biosystems 67: 95-102, 2002.
    • (2002) Biosystems , vol.67 , pp. 95-102
    • Izhikevich, E.M.1
  • 34
    • 0347862714 scopus 로고    scopus 로고
    • Information encoding and computation with spikes and bursts
    • Kepecs A, Lisman J. Information encoding and computation with spikes and bursts. Network 14: 103-118, 2003.
    • (2003) Network , vol.14 , pp. 103-118
    • Kepecs, A.1    Lisman, J.2
  • 35
    • 0346024189 scopus 로고    scopus 로고
    • Burst firing in sensory systems
    • Krahe R, Gabbiani F. Burst firing in sensory systems. Nat Rev Neurosci 5: 13-23, 2004.
    • (2004) Nat Rev Neurosci , vol.5 , pp. 13-23
    • Krahe, R.1    Gabbiani, F.2
  • 36
    • 0033812714 scopus 로고    scopus 로고
    • Conditional spike backpropagation generates burst discharge in a sensory neuron
    • Lemon N, Turner RW. Conditional spike backpropagation generates burst discharge in a sensory neuron. J Neurophysiol 84: 1519-1530, 2000.
    • (2000) J Neurophysiol , vol.84 , pp. 1519-1530
    • Lemon, N.1    Turner, R.W.2
  • 37
    • 9344252816 scopus 로고    scopus 로고
    • Encoding of natural scene movies by tonic and burst spikes in the lateral geniculate nucleus
    • Lesica NA, Stanley GB. Encoding of natural scene movies by tonic and burst spikes in the lateral geniculate nucleus. J Neurosci 24: 10731-10740, 2004.
    • (2004) J Neurosci , vol.24 , pp. 10731-10740
    • Lesica, N.A.1    Stanley, G.B.2
  • 39
    • 0035921157 scopus 로고    scopus 로고
    • Localization of two high-threshold potassium channel subunits in the rat central auditory system
    • Li W, Kaczmarek LK, Perney TM. Localization of two high-threshold potassium channel subunits in the rat central auditory system. J Comp Neurol 437: 196-218, 2001.
    • (2001) J Comp Neurol , vol.437 , pp. 196-218
    • Li, W.1    Kaczmarek, L.K.2    Perney, T.M.3
  • 40
    • 0031059920 scopus 로고    scopus 로고
    • Bursts as a unit of neural information: Making unreliable synapses reliable
    • Lisman JE. Bursts as a unit of neural information: making unreliable synapses reliable. Trends Neurosci 20: 38-43, 1997.
    • (1997) Trends Neurosci , vol.20 , pp. 38-43
    • Lisman, J.E.1
  • 41
    • 27744438719 scopus 로고    scopus 로고
    • Neural codes for perceptual discrimination in primary somatosensory cortex
    • Luna R, Hernandez A, Brody CD, Romo R. Neural codes for perceptual discrimination in primary somatosensory cortex. Nat Neurosci 8: 1210-1219, 2005.
    • (2005) Nat Neurosci , vol.8 , pp. 1210-1219
    • Luna, R.1    Hernandez, A.2    Brody, C.D.3    Romo, R.4
  • 42
    • 0035101699 scopus 로고    scopus 로고
    • Prey-capture behavior in gymnotid electric fish: Motion analysis and effects of water conductivity
    • MacIver MA, Sharabash NM, Nelson ME. Prey-capture behavior in gymnotid electric fish: motion analysis and effects of water conductivity. J Exp Biol 204: 543-557, 2001.
    • (2001) J Exp Biol , vol.204 , pp. 543-557
    • MacIver, M.A.1    Sharabash, N.M.2    Nelson, M.E.3
  • 43
    • 0018790376 scopus 로고
    • The posterior lateral line lobe of certain gymnotoid fish: Quantitative light microscopy
    • Maler L. The posterior lateral line lobe of certain gymnotoid fish: quantitative light microscopy. J Comp Neurol 183: 323-363, 1979.
    • (1979) J Comp Neurol , vol.183 , pp. 323-363
    • Maler, L.1
  • 44
    • 0028214084 scopus 로고
    • Correlating gamma-aminobutyric acidergic circuits and sensory function in the electrosensory lateral line lobe of a gymnotiform fish
    • Maler L, Mugnaini E. Correlating gamma-aminobutyric acidergic circuits and sensory function in the electrosensory lateral line lobe of a gymnotiform fish. J Comp Neurol 345: 224-252, 1994.
    • (1994) J Comp Neurol , vol.345 , pp. 224-252
    • Maler, L.1    Mugnaini, E.2
  • 45
    • 0024065339 scopus 로고
    • Morphological and electrophysiological properties of a novel in vitro preparation: The electrosensory lateral line lobe brain slice
    • Mathieson WB, Maler L. Morphological and electrophysiological properties of a novel in vitro preparation: the electrosensory lateral line lobe brain slice. J Comp Physiol [A] 163: 489-506, 1988.
    • (1988) J Comp Physiol [A] , vol.163 , pp. 489-506
    • Mathieson, W.B.1    Maler, L.2
  • 46
    • 27344452575 scopus 로고    scopus 로고
    • Deterministic multiplicative gain control with active dendrites
    • Mehaffey WH, Doiron B, Maler L, Turner RW. Deterministic multiplicative gain control with active dendrites. J Neurosci 25: 9968-9977, 2005.
    • (2005) J Neurosci , vol.25 , pp. 9968-9977
    • Mehaffey, W.H.1    Doiron, B.2    Maler, L.3    Turner, R.W.4
  • 47
    • 34547731429 scopus 로고    scopus 로고
    • Regulation of burst dynamics improves differential encoding of stimulus frequency by spike train segregation
    • Mehaffey WH, Fernandez FR, Maler L, Turner RW. Regulation of burst dynamics improves differential encoding of stimulus frequency by spike train segregation. J Neurophysiol 98: 939-951, 2007.
    • (2007) J Neurophysiol , vol.98 , pp. 939-951
    • Mehaffey, W.H.1    Fernandez, F.R.2    Maler, L.3    Turner, R.W.4
  • 49
    • 0033213891 scopus 로고    scopus 로고
    • Why are there so many sensory brain maps?
    • Metzner W. Why are there so many sensory brain maps? Cell Mol Life Sci 56: 1-4, 1999.
    • (1999) Cell Mol Life Sci , vol.56 , pp. 1-4
    • Metzner, W.1
  • 50
    • 0031449651 scopus 로고    scopus 로고
    • A sensory brain map for each behavior?
    • Metzner W, Juranek J. A sensory brain map for each behavior? Proc Natl Acad Sci USA 94: 14798-14803, 1997.
    • (1997) Proc Natl Acad Sci USA , vol.94 , pp. 14798-14803
    • Metzner, W.1    Juranek, J.2
  • 51
    • 0032520841 scopus 로고    scopus 로고
    • Feature extraction by burst-like spike patterns in multiple sensory maps
    • Metzner W, Koch C, Wessel R, Gabbiani F. Feature extraction by burst-like spike patterns in multiple sensory maps. J Neurosci 18: 2283-2300, 1998.
    • (1998) J Neurosci , vol.18 , pp. 2283-2300
    • Metzner, W.1    Koch, C.2    Wessel, R.3    Gabbiani, F.4
  • 52
    • 33749247411 scopus 로고    scopus 로고
    • The cellular basis for parallel neural transmission of a high-frequency stimulus and its low-frequency envelope
    • Middleton JW, Longtin A, Benda J, Maler L. The cellular basis for parallel neural transmission of a high-frequency stimulus and its low-frequency envelope. Proc Natl Acad Sci USA 103: 14596-14601, 2006.
    • (2006) Proc Natl Acad Sci USA , vol.103 , pp. 14596-14601
    • Middleton, J.W.1    Longtin, A.2    Benda, J.3    Maler, L.4
  • 53
    • 0037442794 scopus 로고    scopus 로고
    • A dynamic dendritic refractory period regulates burst discharge in the electrosensory lobe of weakly electric fish
    • Noonan L, Doiron B, Laing C, Longtin A, Turner RW. A dynamic dendritic refractory period regulates burst discharge in the electrosensory lobe of weakly electric fish. J Neurosci 23: 1524-1534, 2003.
    • (2003) J Neurosci , vol.23 , pp. 1524-1534
    • Noonan, L.1    Doiron, B.2    Laing, C.3    Longtin, A.4    Turner, R.W.5
  • 54
    • 2342668030 scopus 로고    scopus 로고
    • Parallel processing of sensory input by bursts and isolated spikes
    • Oswald AM, Chacron MJ, Doiron B, Bastian J, Maler L. Parallel processing of sensory input by bursts and isolated spikes. J Neurosci 24: 4351-4362, 2004.
    • (2004) J Neurosci , vol.24 , pp. 4351-4362
    • Oswald, A.M.1    Chacron, M.J.2    Doiron, B.3    Bastian, J.4    Maler, L.5
  • 55
    • 34147138268 scopus 로고    scopus 로고
    • Interval coding. I. Burst interspike intervals as indicators of stimulus intensity
    • Oswald AM, Doiron B, Maler L. Interval coding. I. Burst interspike intervals as indicators of stimulus intensity. J Neurophysiol 97: 2731-2743, 2007.
    • (2007) J Neurophysiol , vol.97 , pp. 2731-2743
    • Oswald, A.M.1    Doiron, B.2    Maler, L.3
  • 56
    • 0035863128 scopus 로고    scopus 로고
    • Expression of the Kv3.1 potassium channel in the avian auditory brain stem
    • Parameshwaran S, Carr CE, Perney TM. Expression of the Kv3.1 potassium channel in the avian auditory brain stem. J Neurosci 21: 485-494, 2001.
    • (2001) J Neurosci , vol.21 , pp. 485-494
    • Parameshwaran, S.1    Carr, C.E.2    Perney, T.M.3
  • 59
    • 0022332422 scopus 로고
    • Excitation dynamics: Insights from simplified membrane models
    • Rinzel J. Excitation dynamics: insights from simplified membrane models. Fed Proc 44: 2944-2946, 1985.
    • (1985) Fed Proc , vol.44 , pp. 2944-2946
    • Rinzel, J.1
  • 60
    • 9144238799 scopus 로고    scopus 로고
    • Neuronal correlates of a perceptual decision in ventral premotor cortex
    • Romo R, Hernandez A, Zainos A. Neuronal correlates of a perceptual decision in ventral premotor cortex. Neuron 41: 165-173, 2004.
    • (2004) Neuron , vol.41 , pp. 165-173
    • Romo, R.1    Hernandez, A.2    Zainos, A.3
  • 61
  • 62
    • 41549122255 scopus 로고    scopus 로고
    • Auditory cortex mapmaking: Principles, projections, and plasticity
    • Schreiner CE, Winer JA. Auditory cortex mapmaking: principles, projections, and plasticity. Neuron 56: 356-365, 2007.
    • (2007) Neuron , vol.56 , pp. 356-365
    • Schreiner, C.E.1    Winer, J.A.2
  • 63
    • 0024804447 scopus 로고
    • Multiple electrosensory maps in the medulla of weakly electric gymnotiform fish. I. Physiological differences
    • Shumway CA. Multiple electrosensory maps in the medulla of weakly electric gymnotiform fish. I. Physiological differences. J Neurosci 9: 4388-4399, 1989.
    • (1989) J Neurosci , vol.9 , pp. 4388-4399
    • Shumway, C.A.1
  • 64
    • 33747098937 scopus 로고    scopus 로고
    • Distribution of Kv1-like potassium channels in the electromotor and electrosensory systems of the weakly electric fish Apteronotus leptorhynchus
    • Smith GT, Unguez GA, Weber CM. Distribution of Kv1-like potassium channels in the electromotor and electrosensory systems of the weakly electric fish Apteronotus leptorhynchus. J Neurobiol 66: 1011-1031, 2006.
    • (2006) J Neurobiol , vol.66 , pp. 1011-1031
    • Smith, G.T.1    Unguez, G.A.2    Weber, C.M.3
  • 65
    • 0031182938 scopus 로고    scopus 로고
    • Physiological gain leads to high ISI variability in a simple model of a cortical regular spiking cell
    • Troyer TW, Miller KD. Physiological gain leads to high ISI variability in a simple model of a cortical regular spiking cell. Neural Comput 9: 971-983, 1997.
    • (1997) Neural Comput , vol.9 , pp. 971-983
    • Troyer, T.W.1    Miller, K.D.2
  • 66
    • 0028034070 scopus 로고
    • TTX-sensitive dendritic sodium channels underlie oscillatory discharge in a vertebrate sensory neuron
    • Turner RW, Maler L, Deerinck T, Levinson SR, Ellisman MH. TTX-sensitive dendritic sodium channels underlie oscillatory discharge in a vertebrate sensory neuron. J Neurosci 14: 6453-6471, 1994.
    • (1994) J Neurosci , vol.14 , pp. 6453-6471
    • Turner, R.W.1    Maler, L.2    Deerinck, T.3    Levinson, S.R.4    Ellisman, M.H.5
  • 67
    • 0029908305 scopus 로고    scopus 로고
    • Oscillatory and burst discharge across electrosensory topographic maps
    • Turner RW, Plant JR, Maler L. Oscillatory and burst discharge across electrosensory topographic maps. J Neurophysiol 76: 2364-2382, 1996.
    • (1996) J Neurophysiol , vol.76 , pp. 2364-2382
    • Turner, R.W.1    Plant, J.R.2    Maler, L.3
  • 68
    • 1442324763 scopus 로고    scopus 로고
    • Loss of Kv3.1 tonotopicity and alterations in cAMP response element-binding protein signaling in central auditory neurons of hearing impaired mice
    • von Hehn CA, Bhattacharjee A, Kaczmarek LK. Loss of Kv3.1 tonotopicity and alterations in cAMP response element-binding protein signaling in central auditory neurons of hearing impaired mice. J Neurosci 24: 1936-1940, 2004.
    • (2004) J Neurosci , vol.24 , pp. 1936-1940
    • von Hehn, C.A.1    Bhattacharjee, A.2    Kaczmarek, L.K.3
  • 69
    • 27744521439 scopus 로고    scopus 로고
    • Tuning for spectrotemporal modulations as a mechanism for auditory discrimination of natural sounds
    • Woolley SM, Fremouw TE, Hsu A, Theunissen FE. Tuning for spectrotemporal modulations as a mechanism for auditory discrimination of natural sounds. Nat Neurosci 8: 1371-1379, 2005.
    • (2005) Nat Neurosci , vol.8 , pp. 1371-1379
    • Woolley, S.M.1    Fremouw, T.E.2    Hsu, A.3    Theunissen, F.E.4
  • 70
    • 0032477739 scopus 로고    scopus 로고
    • Parallel processing in the nervous system: Evidence from sensory maps
    • Young ED. Parallel processing in the nervous system: evidence from sensory maps. Proc Natl Acad Sci USA 95: 933-934, 1998.
    • (1998) Proc Natl Acad Sci USA , vol.95 , pp. 933-934
    • Young, E.D.1
  • 71
    • 0037481886 scopus 로고    scopus 로고
    • Topography and synaptic shaping of direction selectivity in primary auditory cortex
    • Zhang LI, Tan AY, Schreiner CE, Merzenich MM. Topography and synaptic shaping of direction selectivity in primary auditory cortex. Nature 424: 201-205, 2003.
    • (2003) Nature , vol.424 , pp. 201-205
    • Zhang, L.I.1    Tan, A.Y.2    Schreiner, C.E.3    Merzenich, M.M.4


* 이 정보는 Elsevier사의 SCOPUS DB에서 KISTI가 분석하여 추출한 것입니다.