Molecular programs guiding arealization of descending cortical pathways.

Abe, Philipp; Lavalley, Adrien; Morassut, Ilaria; Santinha, Antonio J; Roig-Puiggros, Sergi; Javed, Awais; Klingler, Esther; Baumann, Natalia et al. · Nature · 2024

basic_science · Level V

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Abstract

Layer 5 extratelencephalic (ET) neurons are present across neocortical areas and send axons to multiple subcortical targets<sup>1-6</sup>. Two cardinal subtypes exist<sup>7,8</sup>: (1) Slco2a1-expressing neurons (ET<sub>dist</sub>), which predominate in the motor cortex and project distally to the pons, medulla and spinal cord; and (2) Nprs1- or Hpgd-expressing neurons (ET<sub>prox</sub>), which predominate in the visual cortex and project more proximally to the pons and thalamus. An understanding of how area-specific ET<sub>dist</sub> and ET<sub>prox</sub> emerge during development is important because they are critical for fine motor skills and are susceptible to spinal cord injury and amyotrophic lateral sclerosis<sup>9-12</sup>. Here, using cross-areal mapping of axonal projections in the mouse neocortex, we identify the subtype-specific developmental dynamics of ET neurons. Whereas subsets of ET<sub>prox</sub> emerge by pruning of ET<sub>dist</sub> axons, others emerge de novo. We outline corresponding subtype-specific developmental transcriptional programs using single-nucleus sequencing. Leveraging these findings, we use postnatal in vivo knockdown of subtype-specific transcription factors to reprogram ET neuron connectivity towards more proximal targets. Together, these results show the functional transcriptional programs driving ET neuron diversity and uncover cell subtype-specific gene regulatory networks that can be manipulated to direct target specificity in motor corticofugal pathways.

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