Optical imaging in vitro provides evidence for the minicolumnar nature of cortical response
- 1 November 1997
- journal article
- research article
- Published by Wolters Kluwer Health in NeuroReport
- Vol. 8 (16) , 3513-3517
- https://doi.org/10.1097/00001756-199711100-00019
Abstract
THE response of rat neocortical slices to electrical stimulation at the layer VI/white matter border was recorded using intrinsic signal optical imaging. The optical response of the slice is column-shaped, extends from layer VI to the pial surface, and is strongly correlated with the amplitude of simultaneously recorded evoked potentials. Spectral analysis revealed radially oriented spatial variations in the intensity of the optical signal with a period of 30–60 μm/cycle. Nissl-stained sections of slices also exhibited a radially oriented periodicity in optical density with the same period. We conclude that the periodic variations in the intrinsic optical signal correspond to stimulus-activated minicolumns.Keywords
This publication has 11 references indexed in Scilit:
- A systematic map of direction preference in primary visual cortexNature, 1996
- Imaging cell volume changes and neuronal excitation in the hippocampal sliceNeuroscience, 1994
- Neuronal Organization in Area 17 of Cat Visual CortexCerebral Cortex, 1993
- Iso-orientation domains in cat visual cortex are arranged in pinwheel-like patternsNature, 1991
- Demonstration of discrete place‐defined columns—segregates—in the cat SIJournal of Comparative Neurology, 1990
- High‐resolution 2‐deoxyglucose mapping of functional cortical columns in mouse barrel cortexJournal of Comparative Neurology, 1988
- Specification of Cerebral Cortical AreasScience, 1988
- Spatial organization of the peripheral input to area 1 cell columns. I. the detection of ‘segregates’Brain Research Reviews, 1988
- A quantitative study of the projection area of the central and the paracentral visual field in area 17 of the catExperimental Brain Research, 1975
- Functional architecture in cat primary auditory cortex: columnar organization and organization according to depth.Journal of Neurophysiology, 1970