Pyramidal neurons in layer 5 of the rat visual cortex. III. Differential maturation of axon targeting, dendritic morphology, and electrophysiological properties
- 22 January 1994
- journal article
- research article
- Published by Wiley in Journal of Comparative Neurology
- Vol. 339 (4) , 495-518
- https://doi.org/10.1002/cne.903390404
Abstract
This paper describes the early morphological and physiological development of pyramidal neurons in layer 5 of the rat visual cortex in relation to the targets chosen by their axons. Cells were prelabeled by retrograde transport from the superior colliculus or the contralateral visual cortex and intracellularly injected either in fixed slices or after recording in living slices. In the adult, corticotectal cells have thick apical dendrites with an extensive terminal arborization extending into layer 1, and fire characteristic bursts of action potentials when injected with a depolarizing current; interhemispheric cells have slender apical dendrites that terminate without a terminal tuft, usually in layer 2/3, and they display a more regular firing pattern (Kasper et al.: J Comp Neurol, this issue, 339:459–474). At embryonic day E18 (when axons of the two classes of cells are already taking different routes towards their targets) and E21, pyramidal‐like cells throughout the cortical plate all have similar soma‐dendritic morphology, with spindle‐shaped cell bodies and few, short basal dendrites but apical dendrites that all end in distinct tufts in the marginal zone. At postnatal day P3, after the axons of both cell classes have reached their targets, all pyramidal neurons in layer 5 still have distinct terminal in distinct tufts in the marginal zone. At postnatal day P3, after the axons of both cell classes have reached their targets, all pyramidal neurons in layer 5 still have distinct terminal arborizations in layer 1, though they vary in complexity and extent. The somata are now more mature (round to ovoid in shape), and the basal dendritic tree has extended. As early as P5, all cells studied could be clearly classified as tufted or untufted (considerably earlier than previously reported; Koester and O'Leary: J Neurosci 12:1382, '92), and these features correlated precisely with the projection target, as in the adult. Measurement showed that although interhemispheric cells lose their terminal tufts, in general the trunks of their apical dendrites do not withdraw but continue to grow, at roughly the same rate as those of corticotectal cells. The two classes of layer 5 pyramidal neurons differentiate from each other in three distinct phases: pathway selection by axons precedes the loss of the apical tuft by interhemispheric cells, and these morphological characteristics are established 10 days before the onset of burst‐firing in corticotectal cells. These three steps may be guided by different molecular signals.Keywords
This publication has 43 references indexed in Scilit:
- Targets and Laminar Distribution of Projection Neurons with 'Inverted' Morphology in Rabbit CortexEuropean Journal of Neuroscience, 1991
- Clusters of Coupled Neuroblasts in Embryonic NeocortexScience, 1991
- Dendritic morphology and axon collaterals of corticotectal, corticopontine, and callosal neurons in layer V of primary visual cortex of the hooded ratJournal of Comparative Neurology, 1988
- Cellular and synaptic physiology and epileptogenesis of developing rat neocortical neurons in vitroDevelopmental Brain Research, 1987
- The development of the corticotectal pathway in the albino ratDevelopmental Brain Research, 1986
- Maturation of rat visual cortex. III. Postnatal morphogenesis and synaptogenesis of local circuit neuronsDevelopmental Brain Research, 1986
- The postnatal growth of the callosal connections of primary and secondary visual cortex in the ratDevelopmental Brain Research, 1984
- Appearance of [3H]saxitoxin binding sites in developing rat brainDevelopmental Brain Research, 1983
- Efferent systems of primary visual cortex: A review of structure and functionBrain Research Reviews, 1983
- The early formation of the corpus callosum: a light and electron microscopic study in foetal and neonatal ratsJournal of Neurocytology, 1982