bioRxiv · 10.1101/2024.09.04.611268
DNMT1-Mediated Regulation of Inhibitory Interneuron Migration Impacts Cortical Architecture and Function
Abstract
The fine-tuned establishment of neuronal circuits during the formation of the cerebral cortex is pivotal for its functionality. Developmental abnormalities affecting the composition of cortical circuits, which consist of excitatory neurons and inhibitory cortical interneurons (cINs), are linked to a spectrum of neuropsychiatric disorders. Excitatory neurons originate in cortical proliferative zones, while inhibitory interneurons migrate from discrete domains of the basal telencephalon into the cortex. This migration is intricately governed by intrinsic genetic programs and extrinsic cues. Our current study reveals the role of the DNA methyltransferase 1 (DNMT1) in regulating the expression of key genes implicated in mouse cIN development and in guiding the migration of somatostatin (SST)-expressing interneurons at postmitotic level within the developing cortex. Dnmt1 deletion causes SST+ cINs to exit prematurely from the superficial migratory stream. In addition to the perturbed migration pattern and altered gene expression signatures, Dnmt1-deficient SST+ cINs had a discernible non-cell autonomous effect on cortical progenitors, which culminated in nuanced alterations of layer thicknesses in the adult cortex. Our study uncovers that DNMT1 governs the migration of SST+ cINs and through this, their instructive role in sculpting the intricate cortical layer architecture by signaling to cortical progenitors, with pronounced effects on neuronal network function.
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Reichard, J., Wolff, P., Du, J., Fullio, C. L., Dorp, L., Yildiz, C. B., Linde, J., Vollmer, J., Kempf, S., Graff, S., Nabbefeld, G., Singh, M., Kuo, C.-C., Mohan, N. K., Vogel, T., Musall, S., Zimmer-Bensch, G. M.. 2024-09-06. DNMT1-Mediated Regulation of Inhibitory Interneuron Migration Impacts Cortical Architecture and Function. https://doi.org/10.1101/2024.09.04.611268
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