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Erschienen in: Cognitive Neurodynamics 2/2008

01.06.2008 | Research Article

An outline of functional self-organization in V1: synchrony, STLR and Hebb rules

verfasst von: J. J. Wright, P. D. Bourke

Erschienen in: Cognitive Neurodynamics | Ausgabe 2/2008

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Abstract

A model of self-organization of synapses in the striate cortex is described, and its functional implications discussed. Principal assumptions are: (a) covariance of cell firing declines with distance in cortex, (b) covariance of stimulus characteristics declines with distance in the visual field, and (c) metabolic rates are approximately uniform in all small axonal segments. Under these constraints, Hebbian learning implies a maximally stable synaptic configuration corresponding to anatomically and physiologically realistic ‘‘local maps’’, each of macro-columnar size, and each organized as Möbius projections of a “global map” of retinotopic form. Convergence to the maximally stable configuration is facilitated by the spatio-temporal learning rule. A tiling of V1, constructed of approximately mirror-image reflections of each local map by its neighbors, is formed. The model supplements standard concepts of feed-forward visual processing by introducing a new basis for contextual modulation and neural network identifications of visual signals, as perturbation of the synaptic configuration by rapid stimulus transients. On a long time-scale, synaptic development could overwrite the Möbius configuration, while LTP and LTD could mediate synaptic gain on intermediate time-scales.

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Literatur
Zurück zum Zitat Alexander DM, Wright JJ (2005) The maximum extent of horizontal integration in monkey V1. Vision Res 23(5):721–728 Alexander DM, Wright JJ (2005) The maximum extent of horizontal integration in monkey V1. Vision Res 23(5):721–728
Zurück zum Zitat Alexander DM, Bourke PD, Sheridan P, Konstandatos O, Wright JJ (2004) Intrinsic connections in tree shrew V1 imply a global to local mapping. Vision Res 44:857–876CrossRefPubMed Alexander DM, Bourke PD, Sheridan P, Konstandatos O, Wright JJ (2004) Intrinsic connections in tree shrew V1 imply a global to local mapping. Vision Res 44:857–876CrossRefPubMed
Zurück zum Zitat Angelucci A, Bullier J (2003) Reaching beyond the classical receptive field of V1 neurons; horizontal or feedback axons? J Physiol (Paris) 97:141–154CrossRef Angelucci A, Bullier J (2003) Reaching beyond the classical receptive field of V1 neurons; horizontal or feedback axons? J Physiol (Paris) 97:141–154CrossRef
Zurück zum Zitat Angelucci A, Levitt JB, Walton EJS, Hupe J-M, Bullier J, Lund JS (2002) Circuits of local and global signal integration in primary visual cortex. J Neurosci 22:8633–8646PubMed Angelucci A, Levitt JB, Walton EJS, Hupe J-M, Bullier J, Lund JS (2002) Circuits of local and global signal integration in primary visual cortex. J Neurosci 22:8633–8646PubMed
Zurück zum Zitat Artola A, Brocher S, Singer W (1990) Different voltage-dependent thresholds for the induction of long-term depression and long-term potentiation in slices of the rat visual cortex. Nature 47:69–72CrossRef Artola A, Brocher S, Singer W (1990) Different voltage-dependent thresholds for the induction of long-term depression and long-term potentiation in slices of the rat visual cortex. Nature 47:69–72CrossRef
Zurück zum Zitat Basole A, White LE, Fitzpatrick D (2003) Mapping multiple features of the population response of visual cortex. Nature 423:986–990CrossRefPubMed Basole A, White LE, Fitzpatrick D (2003) Mapping multiple features of the population response of visual cortex. Nature 423:986–990CrossRefPubMed
Zurück zum Zitat Blakemore C (1976) Modification of visual function by early visual experience. Bull Schweiz Akad Med Wiss 32:13–28PubMed Blakemore C (1976) Modification of visual function by early visual experience. Bull Schweiz Akad Med Wiss 32:13–28PubMed
Zurück zum Zitat Bosking WH, Zhang Y, Schofield B, Fitzpatrick D (1997) Orientation selectivity and the arrangement of horizontal connections in tree shrew striate cortex. J Neurosci 17(6):2112–2127PubMed Bosking WH, Zhang Y, Schofield B, Fitzpatrick D (1997) Orientation selectivity and the arrangement of horizontal connections in tree shrew striate cortex. J Neurosci 17(6):2112–2127PubMed
Zurück zum Zitat Braitenberg V (1978) Cortical architectonics: general and areal. In: Brazier MAB, Petsch H (eds) Architectonics of the cerebral cortex. Raven Press, New York, pp 443–465 Braitenberg V (1978) Cortical architectonics: general and areal. In: Brazier MAB, Petsch H (eds) Architectonics of the cerebral cortex. Raven Press, New York, pp 443–465
Zurück zum Zitat Braitenberg V, Schuz A (1991) Anatomy of the cortex: statistics and geometry. Springer-Verlag, New York Braitenberg V, Schuz A (1991) Anatomy of the cortex: statistics and geometry. Springer-Verlag, New York
Zurück zum Zitat Bressloff PC (2002) Bloch waves, periodic feature maps and cortical pattern formation. Phys Rev Lett 89:088101CrossRefPubMed Bressloff PC (2002) Bloch waves, periodic feature maps and cortical pattern formation. Phys Rev Lett 89:088101CrossRefPubMed
Zurück zum Zitat Cavanaugh JR, Bair W, Movshon JA (2002) Nature and interaction of signals from the receptive field center and surround in Macaque V1 neurons. J Neurophysiol 88(5):2530–2546CrossRefPubMed Cavanaugh JR, Bair W, Movshon JA (2002) Nature and interaction of signals from the receptive field center and surround in Macaque V1 neurons. J Neurophysiol 88(5):2530–2546CrossRefPubMed
Zurück zum Zitat Chapman B, Stryker MP, Bonhoeffer T (1996) Development of orientation preference maps in ferret primary visual cortex. J Neurosci 16:6443–6453PubMed Chapman B, Stryker MP, Bonhoeffer T (1996) Development of orientation preference maps in ferret primary visual cortex. J Neurosci 16:6443–6453PubMed
Zurück zum Zitat Chapman CL, Bourke PD, Wright JJ (2002) Spatial eigenmodes and synchronous oscillation: coincidence detection in simulated cerebral cortex. J Math Biol 45:57–78CrossRefPubMed Chapman CL, Bourke PD, Wright JJ (2002) Spatial eigenmodes and synchronous oscillation: coincidence detection in simulated cerebral cortex. J Math Biol 45:57–78CrossRefPubMed
Zurück zum Zitat Chavane F, Monier C, Bringuier V, Baudot P, Borg-Graham L, Lorenceau J, Fregnac Y (2000) The visual cortical association field: a gestalt concept or a psychophysiological entity? J Physiol (Paris) 94:333–342CrossRef Chavane F, Monier C, Bringuier V, Baudot P, Borg-Graham L, Lorenceau J, Fregnac Y (2000) The visual cortical association field: a gestalt concept or a psychophysiological entity? J Physiol (Paris) 94:333–342CrossRef
Zurück zum Zitat Eckhorn R, Bauer R. Jordon W, Brosch M, Kruse W, Monk M, Reitboeck HJ (1988) Coherent oscillations: a mechanism of feature linking in the in the visual cortex? Biol Cybern 60:121–130CrossRefPubMed Eckhorn R, Bauer R. Jordon W, Brosch M, Kruse W, Monk M, Reitboeck HJ (1988) Coherent oscillations: a mechanism of feature linking in the in the visual cortex? Biol Cybern 60:121–130CrossRefPubMed
Zurück zum Zitat Ernst UA, Pawelzik KR, Sahar-Pikielny C, Tsodyks MV (2001) Intracortical origin of visual maps. Nat Neurosci 4(4):431–436CrossRefPubMed Ernst UA, Pawelzik KR, Sahar-Pikielny C, Tsodyks MV (2001) Intracortical origin of visual maps. Nat Neurosci 4(4):431–436CrossRefPubMed
Zurück zum Zitat Freeman WJ (1975) Mass action in the nervous system. Academic Press, New York Freeman WJ (1975) Mass action in the nervous system. Academic Press, New York
Zurück zum Zitat Freeman WJ (2007) Proposed cortical shutter in cinematographic perception. In: Kozma R, Perlovsky L (eds) Neurodynamics of cognition and consciousness. Springer, New York Freeman WJ (2007) Proposed cortical shutter in cinematographic perception. In: Kozma R, Perlovsky L (eds) Neurodynamics of cognition and consciousness. Springer, New York
Zurück zum Zitat Gray CM, Engel AK, Konig P, Singer W (1992a) Synchronization of oscillatory neuronal responses in cat striate cortex: temporal properties. Vis Neurosci 8:337–347CrossRefPubMed Gray CM, Engel AK, Konig P, Singer W (1992a) Synchronization of oscillatory neuronal responses in cat striate cortex: temporal properties. Vis Neurosci 8:337–347CrossRefPubMed
Zurück zum Zitat Gray CM, Konig P, Engel AK, Singer W (1992b) Oscillatory responses in cat visual cortex exhibit intercolumnar synchronization which reflects global stimulus properties. Nature 388:334–337 Gray CM, Konig P, Engel AK, Singer W (1992b) Oscillatory responses in cat visual cortex exhibit intercolumnar synchronization which reflects global stimulus properties. Nature 388:334–337
Zurück zum Zitat Grossberg S, Williamson JR (2001) A neural model of how horizontal and interlaminar connections of visual cortex develop into adult circuits that carry out perceptual grouping and learning. Cereb Cortex 11:37–58CrossRefPubMed Grossberg S, Williamson JR (2001) A neural model of how horizontal and interlaminar connections of visual cortex develop into adult circuits that carry out perceptual grouping and learning. Cereb Cortex 11:37–58CrossRefPubMed
Zurück zum Zitat Hubel DH, Wiesel TN (1968) Receptive fields and functional architecture of the monkey striate cortex. J Physiol 195:215–243PubMed Hubel DH, Wiesel TN (1968) Receptive fields and functional architecture of the monkey striate cortex. J Physiol 195:215–243PubMed
Zurück zum Zitat Hubel DH, Wiesel TN (1977) Functional architecture of macaque monkey visual cortex. Proc R Soc (B) 198:1–59CrossRef Hubel DH, Wiesel TN (1977) Functional architecture of macaque monkey visual cortex. Proc R Soc (B) 198:1–59CrossRef
Zurück zum Zitat Kay J, Phillips WA (1997) Activation functions, computational goals and learning rules for local processors with contextual guidance. Neural Comput 9:763–778CrossRef Kay J, Phillips WA (1997) Activation functions, computational goals and learning rules for local processors with contextual guidance. Neural Comput 9:763–778CrossRef
Zurück zum Zitat Levitt JB, Lund JS (2002) The spatial extent over which neurons in macaque striate cortex pool visual signals. Vis Neurosci 19:439–452CrossRefPubMed Levitt JB, Lund JS (2002) The spatial extent over which neurons in macaque striate cortex pool visual signals. Vis Neurosci 19:439–452CrossRefPubMed
Zurück zum Zitat Li W, Their P, Wehrhahn C (2000) Contextual influence on orientation discrimination of humans and responses of neurons in V1 of alert monkeys. J Neurophysiol 83:941–954PubMed Li W, Their P, Wehrhahn C (2000) Contextual influence on orientation discrimination of humans and responses of neurons in V1 of alert monkeys. J Neurophysiol 83:941–954PubMed
Zurück zum Zitat Liley DTJ, Wright JJ (1994) Intracortical connectivity of pyramidal and stellate cells: estimates of synaptic densities and coupling symmetry. Network 5:175–189CrossRef Liley DTJ, Wright JJ (1994) Intracortical connectivity of pyramidal and stellate cells: estimates of synaptic densities and coupling symmetry. Network 5:175–189CrossRef
Zurück zum Zitat Obermayer K, Blasdel GG (1993) Geometry of orientation and ocular dominance columns in monkey striate cortex. J Neurosci 13(10):4114–4129PubMed Obermayer K, Blasdel GG (1993) Geometry of orientation and ocular dominance columns in monkey striate cortex. J Neurosci 13(10):4114–4129PubMed
Zurück zum Zitat Phillips WA, Singer W (1997) In search of common foundations for cortical computation. Behav Brain Sci 20:657–722CrossRefPubMed Phillips WA, Singer W (1997) In search of common foundations for cortical computation. Behav Brain Sci 20:657–722CrossRefPubMed
Zurück zum Zitat Ringach DL, Hawken MJ, Shapley R (1997) Dynamics of orientation tuning in macaque primary visual cortex. Nature 387:281–284CrossRefPubMed Ringach DL, Hawken MJ, Shapley R (1997) Dynamics of orientation tuning in macaque primary visual cortex. Nature 387:281–284CrossRefPubMed
Zurück zum Zitat Robinson PA, Rennie CJ, Wright JJ (1998) Synchronous oscillations in the cerebral cortex. Phys Rev E 57:4578–4588CrossRef Robinson PA, Rennie CJ, Wright JJ (1998) Synchronous oscillations in the cerebral cortex. Phys Rev E 57:4578–4588CrossRef
Zurück zum Zitat Scholl DA (1956) The organization of the cerebral cortex. Wiley, New York Scholl DA (1956) The organization of the cerebral cortex. Wiley, New York
Zurück zum Zitat Series P, Georges S, Lorenceau J, Fregnac Y (2002) Orientation dependent modulation of apparent speed: a model based on the dynamics of feed-forward and horizontal connectivity in V1 cortex. Vision Res 42:2781–2797CrossRefPubMed Series P, Georges S, Lorenceau J, Fregnac Y (2002) Orientation dependent modulation of apparent speed: a model based on the dynamics of feed-forward and horizontal connectivity in V1 cortex. Vision Res 42:2781–2797CrossRefPubMed
Zurück zum Zitat Singer W, Gray CM (1995) Visual feature integration and the temporal correlation hypothesis. Ann Rev Neurosci 18:555–586CrossRefPubMed Singer W, Gray CM (1995) Visual feature integration and the temporal correlation hypothesis. Ann Rev Neurosci 18:555–586CrossRefPubMed
Zurück zum Zitat Swindale NV, Shoham D, Grinvald A, Bonhoeffer T, Hubener M (2000) Visual cortical maps are optimised for uniform coverage. Nat Neurosci 3(8):822–826CrossRefPubMed Swindale NV, Shoham D, Grinvald A, Bonhoeffer T, Hubener M (2000) Visual cortical maps are optimised for uniform coverage. Nat Neurosci 3(8):822–826CrossRefPubMed
Zurück zum Zitat Tsuda I, Kuroda S (2004) A complex systems approach to an interpretation of dynamic brain activity II: does Cantor coding provide a dynamic model for the formation of episodic memory? In: Erdi P et al (eds) Cortical dynamics, LNCS 3146. Springer-Verlag, Berlin, Heidelberg, pp 129–139 Tsuda I, Kuroda S (2004) A complex systems approach to an interpretation of dynamic brain activity II: does Cantor coding provide a dynamic model for the formation of episodic memory? In: Erdi P et al (eds) Cortical dynamics, LNCS 3146. Springer-Verlag, Berlin, Heidelberg, pp 129–139
Zurück zum Zitat Tsukada M, Pan X (2005) The spatio-temporal learning rule and its efficiency in separating spatiotemporal patterns. Biol Cybern 92:139–146CrossRefPubMed Tsukada M, Pan X (2005) The spatio-temporal learning rule and its efficiency in separating spatiotemporal patterns. Biol Cybern 92:139–146CrossRefPubMed
Zurück zum Zitat Tsukada M, Aihara T, Saito H (1996) Hippocampal LTP depends on spatial and temporal correlation of inputs. Neural Netw 9:1357–1365CrossRefPubMed Tsukada M, Aihara T, Saito H (1996) Hippocampal LTP depends on spatial and temporal correlation of inputs. Neural Netw 9:1357–1365CrossRefPubMed
Zurück zum Zitat Tsukada M, Yamazaki Y, Kojima H (2007) Interaction between the spatiotemporal learning rule (STRL) and Hebb type (HEBB) in single pyramidal cells in the hippocampal CA1 area. Cogn Neurodyn 1:1871–4080CrossRef Tsukada M, Yamazaki Y, Kojima H (2007) Interaction between the spatiotemporal learning rule (STRL) and Hebb type (HEBB) in single pyramidal cells in the hippocampal CA1 area. Cogn Neurodyn 1:1871–4080CrossRef
Zurück zum Zitat von der Marlsburg C (1973) Self-organization of orientation selective cells in the striate cortex. Kybernetic 14:85–100CrossRef von der Marlsburg C (1973) Self-organization of orientation selective cells in the striate cortex. Kybernetic 14:85–100CrossRef
Zurück zum Zitat Wright JJ (1997) EEG simulation: variation of spectral envelope, pulse synchrony and 40 Hz oscillation. Biol Cybern 76:181–184CrossRefPubMed Wright JJ (1997) EEG simulation: variation of spectral envelope, pulse synchrony and 40 Hz oscillation. Biol Cybern 76:181–184CrossRefPubMed
Zurück zum Zitat Wright JJ (2008) Generation and control of cortical gamma: findings from simulation at two scales. Neural Networks (in press) Wright JJ (2008) Generation and control of cortical gamma: findings from simulation at two scales. Neural Networks (in press)
Zurück zum Zitat Wright JJ, Bourke PD, Chapman CL (2000) Synchronous oscillation in the cerebral cortex and object coherence: simulation of basic electrophysiological findings. Biol Cybern 83:341–353CrossRefPubMed Wright JJ, Bourke PD, Chapman CL (2000) Synchronous oscillation in the cerebral cortex and object coherence: simulation of basic electrophysiological findings. Biol Cybern 83:341–353CrossRefPubMed
Zurück zum Zitat Wright JJ, Alexander DM, Bourke PD (2006) Contribution of lateral interactions in V1 to organization of response properties. Vision Res 46:2703–2720CrossRefPubMed Wright JJ, Alexander DM, Bourke PD (2006) Contribution of lateral interactions in V1 to organization of response properties. Vision Res 46:2703–2720CrossRefPubMed
Metadaten
Titel
An outline of functional self-organization in V1: synchrony, STLR and Hebb rules
verfasst von
J. J. Wright
P. D. Bourke
Publikationsdatum
01.06.2008
Verlag
Springer Netherlands
Erschienen in
Cognitive Neurodynamics / Ausgabe 2/2008
Print ISSN: 1871-4080
Elektronische ISSN: 1871-4099
DOI
https://doi.org/10.1007/s11571-008-9048-y

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