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The Journal of Neuroscience, September 12, 2007, 27(37):9962-9974; doi:10.1523/JNEUROSCI.1536-07.2007

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Cellular/Molecular
Properties of Persistent Postnatal Cortical Subplate Neurons

Juan Torres-Reveron1,2 and Michael J. Friedlander2

1Department of Neurobiology, University of Alabama at Birmingham, Birmingham, Alabama 35294, and 2Department of Neuroscience, Baylor College of Medicine, Houston, Texas 77030

Correspondence should be addressed to M. J. Friedlander, Department of Neuroscience, Baylor College of Medicine, One Baylor Plaza, Suite S740A, Houston, TX 77030. Email: friedlan{at}bcm.edu

Subplate (SP) neurons are important for the proper development of thalamocortical innervation. They are necessary for formation of ocular dominance and orientation columns in visual cortex. During the perinatal period, many SP neurons die. The surviving cohort forms interstitial cells in the white matter (WM) and a band of horizontally oriented cells below layer VI (layer VIb, layer VII, or subplate cells). Although the function of embryonic SP neurons has been well established, the functional roles of WM and postnatal SP cells are not known. We used a combination of anatomical, immunohistochemical, and electrophysiological techniques to explore the dendritic morphology, neurotransmitter phenotype, intrinsic electrophysiological, and synaptic input properties of these surviving cells in the rat visual cortex. The density of SP and WM cells significantly decreases during the first month of life. Both populations express neuronal markers and have extensive dendritic arborizations within the SP, WM, and to the overlying visual cortex. Some intrinsic electrophysiological properties of SP and WM cells are similar: each generates high-frequency slowly adapting trains of action potentials in response to a sustained depolarization. However, SP cells exhibit greater frequency-dependent action potential broadening than WM neurons. Both cell types receive predominantly AMPA/kainate receptor-mediated excitatory synaptic input that undergoes paired-pulse facilitation as well as NMDA receptor and GABAergic input. Synaptic inputs to these cells can also undergo long-term synaptic plasticity. Thus, surviving SP and WM cells are functional electrogenic neurons integrated within the postnatal visual cortical circuit.

Key words: layer VII; white matter; electrophysiology; plasticity; cortex; subplate


Received April 5, 2007; revised July 18, 2007; accepted July 18, 2007.

Correspondence should be addressed to M. J. Friedlander, Department of Neuroscience, Baylor College of Medicine, One Baylor Plaza, Suite S740A, Houston, TX 77030. Email: friedlan{at}bcm.edu




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