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Differential neurogenic patterns underlie the formation of primary and secondary areas in the developing somatosensory cortex. | LitMetric

Differential neurogenic patterns underlie the formation of primary and secondary areas in the developing somatosensory cortex.

Cereb Cortex

Department of Biology, Faculty of Education and Integrated Arts and Sciences, Waseda University, 2-2 Wakamatsu-cho, Shinjuku-ku, 162-8480, Tokyo, Japan.

Published: January 2025

AI Article Synopsis

  • The cerebral cortex has organized areas that are connected by axons, but how neurogenesis (the development of new neurons) is coordinated between these areas isn’t well understood.
  • The somatosensory cortex is important for processing touch and receives sensory information through the thalamus to its primary and secondary areas.
  • Our study found that neuron production in the secondary somatosensory cortex (S2) happens before the primary somatosensory cortex (S1) and ends sooner, with a decrease in upper-layer neurons in S2 due to a change at the surface layer, suggesting a specific mechanism that organizes the development of these cortical areas.

Article Abstract

The cerebral cortex consists of hierarchically organized areas interconnected by reciprocal axonal projections. However, the coordination of neurogenesis to optimize neuronal production and wiring between distinct cortical areas remains largely unexplored. The somatosensory cortex plays a crucial role in processing tactile information, with inputs from peripheral sensory receptors relayed through the thalamus to the primary and secondary somatosensory areas. To investigate the dynamics of neurogenesis in cortical circuit formation, we employed temporal genetic fate mapping of glutamatergic neuron cohorts across the somatosensory cortices. Our analysis revealed that neuronal production in the secondary somatosensory cortex (S2) precedes that of the primary somatosensory cortex (S1) from the deep-layer neuron production period and terminates earlier. We further revealed a progressive decline in upper-layer neuron output in S2, attributed to the attenuation of the apical ventricular surface, resulting in a reduced number of upper-layer neurons within S2. These findings support the existence of a protomap mechanism governing the area-specific assembly of primary and secondary areas in the developing neocortex.

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Source
http://dx.doi.org/10.1093/cercor/bhae491DOI Listing

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