Interchange of callosal and association projections in the developing visual cortex
Open Access
- 1 May 1986
- journal article
- research article
- Published by Society for Neuroscience in Journal of Neuroscience
- Vol. 6 (5) , 1384-1409
- https://doi.org/10.1523/jneurosci.06-05-01384.1986
Abstract
Neurons projecting transitorily into the corpus callosum from area 17 of the cat were retrogradely labeled by the fluorescent tracer Fast Blue (FB) injected into contralateral areas 17 and 18 on postnatal days 1–5. During the second postnatal month these neurons were still labeled by the early injection, although they had eliminated their callosal axon. At this time, 15–20% of these neurons could be retrogradely relabeled by injections of Diamidino Yellow (DY) into ipsilateral areas 17 and 18, but few or none by similar injections in the other areas that receive from area 17 (19, 21a, PMLS, 20a, 20b, DLS). Similarly, area 17 neurons projecting transitorily to contralateral area PMLS during the first postnatal week could be relabeled by DY injections in ipsilateral areas 17 and 18 but not in PMLS. Already around birth, many transitorily callosal neurons in area 17 send bifurcating axons both to contralateral areas 17 and 18 and ipsilateral area 18. It is probable that during postnatal development some of these neurons selectively eliminate their callosal axon collaterals and maintain the projection to ipsilateral area 18. In fact, some transitorily callosal neurons in area 17 can be double-labeled by simultaneous perinatal injections of FB in contralateral areas 17 and 18 and of a new long-lasting retrograde tracer, rhodamine-conjugated latex microspheres, in ipsilateral area 18. The same neurons can then be relabeled by reinjecting ipsilateral area 18 with DY during the second postnatal month. This finding, however, does not exclude the possibility that some transitorily callosal neurons send an axon to ipsilateral area 18 after eliminating their callosal axon. In conclusion, area 17 neurons that project transitorily through the corpus callosum later participate, probably permanently, in ipsilateral corticocortical projections but selectively to areas 17–18. The mechanism responsible for this selectivity is unknown, but it may be related to the differential radial distribution (i.e., to birth date) of area 17 neurons engaged in the various corticocortical projections. The problems raised by the use of long-lasting retrograde fluorescent tracers in neurodevelopmental studies and by the quantification of results of double- and triple-labeling paradigms are also discussed.This publication has 29 references indexed in Scilit:
- Autoradiographic tracing of developing subcortical projections of the occipital region in fetal rabbitsJournal of Comparative Neurology, 1980
- The postnatal development of visual callosal connections in the absence of visual experience or of the eyesExperimental Brain Research, 1980
- Postnatal shaping of callosal connections from sensory areasExperimental Brain Research, 1980
- Retinotopic organization of areas 18 and 19 in the catJournal of Comparative Neurology, 1979
- Anatomical organization of the primary visual cortex (area 17) of the cat. A comparison with area 17 of the macaque monkeyJournal of Comparative Neurology, 1979
- Exuberant projection into the corpus callosum from the visual cortex of newborn catsNeuroscience Letters, 1977
- Size Limit of Molecules Permeating the Junctional Membrane ChannelsScience, 1977
- A Semi-Automatic Computer-Microscope for the Analysis of Neuronal MorphologyIEEE Transactions on Biomedical Engineering, 1965
- THE ORGANIZATION OF THE VISUAL CORTEX IN THE CAT1955
- Structure of the area striata of the catJournal of Comparative Neurology, 1941