Home LiteratureArticle Details
PMID: 7215484 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Restriction of visual experience to a single orientation affects the organization of orientation columns in cat visual cortex. A study with deoxyglucose.

Experimental brain research ·Vol. 41 ·No. 3-4 ·1981-00-00 ·Pages 199-215

Singer W, Freeman B, Rauschecker J

Abstract

In six dark reared, 4-weak-old kittens visual experience was restricted to contours of a single orientation, horizontal or vertical, using cylindrical lenses. Subsequently, the deoxyglucose method was used to determine whether these artificial raising conditions had affected the development of orientation columns in the visual cortex. After application of the deoxyglucose pulse one hemifield was stimulated with vertical, the other with horizontal contours. Thus, from interhemispheric comparison, changes in columnar systems corresponding to experienced and inexperienced orientations could be determined. The following results were obtained: (1) Irrespective of the restrictions in visual experience, orientation columns develop in areas 17, 18, 19 and in the visual areas of the posterior suprasylvian sulcus. (2) Within area 17, spacing between columns encoding the same orientations is remarkably regular (1 mm), is not influenced by selective experience and shows only slight interindividual variation. (3) In non-striate areas the spacing of columns is less regular and the spatial frequency of the periodicity is lower. (4) The modifiability of this columnar pattern by selective experience is small within the granular layer of striate cortex but substantial in non-granular layers: Within layer IV columns whose preference corresponds to the experienced orientation are wider and more active than those encoding the orthogonal orientation but the columnar grid remains basically unaltered. Outside layer IV the columnar system is maintained only for columns encoding the experienced orientations. The deprived columns by contrast frequently fail to extend into non-granular layers and remain confined to the vicinity of layer IV. (5) These modifications in the columnar arrangement are more pronounced in striate cortex than in nonstriate visual areas and, within the former, more conspicuous in the central than in the peripheral representation of the visual field. It is concluded that within layer IV the blue print for the system of orientation columns is determined by genetic instructions: first order cells in layer IV develop orientation selectivity irrespective of experience whereby the preference for a particular orientation is predetermined by the position in the columnar grid. Dependent on experience is, however, the expansion of the columnar system from layer IV into non-granular layers. It is argued that all distortions following selective rearing can be accounted for by competitive interactions between intracortical pathways, the mechanisms being identical to those established for competitive processes in the domain of ocular dominance columns. It is proposed that such experience dependent modifiability of connections between first and second order cells is a necessary prerequisite for the development of orientation selectivity in cells with large and complex receptive fields.

MeSH Terms
Animals Blood Glucose/metabolism Cats Computers Deoxyglucose/metabolism Dominance, Cerebral/physiology Form Perception/physiology Neurons/ultrastructure Orientation/physiology Sensory Deprivation/physiology Visual Cortex/anatomy & histology Visual Pathways/anatomy & histology Visual Perception/physiology
Chemicals
Blood Glucose Deoxyglucose
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Singer W
Freeman B
Rauschecker J
References (53)
53 references, click to expand
  1. Meridional amblyopia: evidence for modification of the human visual system by early visual experience.
    Vision Res. 1973 Mar;13(3):535-58 PMID: 4693404
  2. Organization of cat striate cortex: a correlation of receptive-field properties with afferent and efferent connections.
    J Neurophysiol. 1975 Sep;38(5):1080-98 PMID: 1177006
  3. Vertical organization in the visual cortex (area 17) in the cat.
    Exp Brain Res. 1974;21(3):315-36 PMID: 4442492
  4. Physiological consequences for the cat's visual cortex of effectively restricting early visual experience with oriented contours.
    J Neurophysiol. 1978 Jul;41(4):896-909 PMID: 681993
  5. Quantitative study of cortical orientation selectivity in visually inexperienced kitten.
    J Neurophysiol. 1976 Jan;39(1):63-70 PMID: 1249604
  6. Visual experience modifies distribution of horizontally and vertically oriented receptive fields in cats.
    Science. 1970 May 15;168(3933):869-71 PMID: 5444065
  7. Plasticity of ocular dominance columns in monkey striate cortex.
    Philos Trans R Soc Lond B Biol Sci. 1977 Apr 26;278(961):377-409 PMID: 19791
  8. Cat parastriate cortex: a primary or secondary visual area.
    J Neurophysiol. 1975 Sep;38(5):1099-1113 PMID: 1177007
  9. Monocular astigmatism effects on kitten visual cortex development.
    Nature. 1977 Nov 10;270(5633):177-8 PMID: 927530
  10. Orientation specificity of cells in cat striate cortex.
    J Neurophysiol. 1974 Nov;37(6):1394-409 PMID: 4436709
  11. The distribution of degenerating axons after small lesions in the intact and isolated visual cortex of the cat.
    Exp Brain Res. 1977 Mar 30;27(3-4):419-40 PMID: 880995
  12. RECEPTIVE FIELDS AND FUNCTIONAL ARCHITECTURE IN TWO NONSTRIATE VISUAL AREAS (18 AND 19) OF THE CAT.
    J Neurophysiol. 1965 Mar;28:229-89 PMID: 14283058
  13. Anatomical organization of the primary visual cortex (area 17) of the cat. A comparison with area 17 of the macaque monkey.
    J Comp Neurol. 1979 Apr 15;184(4):599-618 PMID: 106072
  14. Functional amblyopia in kittens with unilateral exotropia. I. Electrophysiological assessment.
    Exp Brain Res. 1980;40(3):294-304 PMID: 7428883
  15. Receptive-field properties and neuronal connectivity in striate and parastriate cortex of contour-deprived cats.
    J Neurophysiol. 1976 May;39(3):613-30 PMID: 948009
  16. A quantitative study of the projection area of the central and the paracentral visual field in area 17 of the cat. II. The spatial organization of the orientation domain.
    Exp Brain Res. 1975 Dec 22;24(2):181-202 PMID: 1218550
  17. Deoxyglucose mapping of the orientation column system in the striate cortex of the tree shrew, Tupaia glis.
    Brain Res. 1978 Mar 10;142(3):538-45 PMID: 638750
  18. The [14C]deoxyglucose method for the measurement of local cerebral glucose utilization: theory, procedure, and normal values in the conscious and anesthetized albino rat.
    J Neurochem. 1977 May;28(5):897-916 PMID: 864466
  19. The effect of early astigmatism on the visual resolution of gratings.
    J Physiol. 1974 Dec;243(3):739-56 PMID: 4449078
  20. Visual evoked responses in humans with abnormal visual experience.
    J Physiol. 1975 Jun;247(3):711-24 PMID: 1142304
  21. Patterns of degeneration after intrinsic lesions of the visual cortex (area 17) of the monkey.
    Brain Res. 1973 Apr 13;53(1):208-13 PMID: 4348901
  22. Ordered arrangement of orientation columns in monkeys lacking visual experience.
    J Comp Neurol. 1974 Dec 1;158(3):307-18 PMID: 4215829
  23. Modification of the distribution of receptive field orientation in cats by selective visual exposure during development.
    Exp Brain Res. 1971 Jun 29;12(5):509-27 PMID: 5093727
  24. Sequence regularity and geometry of orientation columns in the monkey striate cortex.
    J Comp Neurol. 1974 Dec 1;158(3):267-93 PMID: 4436456
  25. Early development of visual cortical cells in normal and dark-reared kittens: relationship between orientation selectivity and ocular dominance.
    J Physiol. 1978 May;278:27-44 PMID: 671298
  26. Anatomical demonstration of orientation columns in macaque monkey.
    J Comp Neurol. 1978 Feb 1;177(3):361-80 PMID: 412878
  27. Retinotopic organization of areas 18 and 19 in the cat.
    J Comp Neurol. 1979 Jun 15;185(4):657-78 PMID: 447876
  28. Receptive field characteristics and plastic properties of visual cortical cells in kittens reared with or without visual experience.
    Exp Brain Res. 1975;22(1):25-36 PMID: 1116499
  29. Receptive fields, binocular interaction and functional architecture in the cat's visual cortex.
    J Physiol. 1962 Jan;160:106-54 PMID: 14449617
  30. The distribution of afferents representing the right and left eyes in the cat's visual cortex.
    Brain Res. 1977 Aug 5;131(1):103-16 PMID: 884538
  31. A quantitative study of the projection area of the central and the paracentral visual field in area 17 of the cat. I. The precision of the topography.
    Exp Brain Res. 1975 Dec 22;24(2):159-79 PMID: 1218549
  32. A physiological and behavioural study in cats of the effect of early visual experience with contours of a single orientation.
    J Physiol. 1977 Mar;265(3):615-36 PMID: 853380
  33. An intracellular study of neuronal organization in the visual cortex.
    Exp Brain Res. 1974;21(1):45-66 PMID: 4422633
  34. RECEPTIVE FIELDS OF CELLS IN STRIATE CORTEX OF VERY YOUNG, VISUALLY INEXPERIENCED KITTENS.
    J Neurophysiol. 1963 Nov;26:994-1002 PMID: 14084171
  35. The retinotopic organization of lateral suprasylvian visual areas in the cat.
    J Comp Neurol. 1978 Jan 15;177(2):237-56 PMID: 621290
  36. 14C-deoxyglucose mapping of orientation subunits in the cats visual cortical areas.
    Exp Brain Res. 1979;37(3):609-13 PMID: 520445
  37. Receptive-field properties of neurons in binocular and monocular segments of striate cortex in cats raised with binocular lid suture.
    J Neurophysiol. 1978 Mar;41(2):322-37 PMID: 650270
  38. Changes in the circuitry of the kitten visual cortex are gated by postsynaptic activity.
    Nature. 1979 Jul 5;280(5717):58-60 PMID: 15305579
  39. Contrast sensitivity in humans with abnormal visual experience.
    J Physiol. 1975 Jun;247(3):687-710 PMID: 1142303
  40. Uniformity of monkey striate cortex: a parallel relationship between field size, scatter, and magnification factor.
    J Comp Neurol. 1974 Dec 1;158(3):295-305 PMID: 4436457
  41. The effects of early visual experience on the cat's visual cortex and their possible explanation by Hebb synapses.
    J Physiol. 1981 Jan;310:215-39 PMID: 7230034
  42. Development of the brain depends on the visual environment.
    Nature. 1970 Oct 31;228(5270):477-8 PMID: 5482506
  43. Alteration of visual cortex from environmental asymmetries.
    Nature. 1973 Dec 7;246(5432):359-60 PMID: 4586321
  44. Modification of orientation and direction selectivity of cortical cells in kittens with monocular vision.
    Brain Res. 1976 Dec 24;118(3):460-8 PMID: 1009429
  45. Orientation columns in macaque monkey visual cortex demonstrated by the 2-deoxyglucose autoradiographic technique.
    Nature. 1977 Sep 22;269(5626):328-30 PMID: 409953
  46. Visual experience and cortical development.
    Nature. 1975 Nov 20;258(5532):199-204 PMID: 1105190
  47. The 'module-concept' in cerebral cortex architecture.
    Brain Res. 1975 Sep 23;95(2-3):475-96 PMID: 808252
  48. Modification of direction selectivity of neurons in the visual cortex of kittens.
    Brain Res. 1975 Jan 24;84(1):143-9 PMID: 1111822
  49. Prominent excitatory pathways in the cat visual cortex (A 17 and A 18): a current source density analysis of electrically evoked potentials.
    Exp Brain Res. 1978 Nov 15;33(3-4):371-94 PMID: 215431
  50. Innate and environmental factors in the development of the kitten's visual cortex.
    J Physiol. 1975 Jul;248(3):663-716 PMID: 1151843
  51. Cortical effect of selective visual experience: degeneration or reorganization?
    Brain Res. 1973 Mar 15;51:345-51 PMID: 4706021
  52. Demonstration of orientation columns with [14C]2-deoxyglucose in a cat reared in a striped environment.
    Brain Res. 1979 Sep 21;173(3):538-42 PMID: 487106
  53. Visual cortical cells: their developmental properties in normal and dark reared kittens.
    J Physiol. 1976 Feb;255(2):511-25 PMID: 1255531
Article Info
Journal
Experimental brain research
Abbr.
Exp Brain Res
ISSN
0014-4819
Published
1981-00-00
Pages
199-215
Language
English
Region
Germany
NLM ID
0043312
Subset
IM
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: [email protected]