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Beltran Arranz, A.

Publications and source records attributed to Beltran Arranz, A..

2 recordsLinked to original sources

Dlx2 reprograms the transcriptome and laminar position of glia-derivedAscl1-induced interneurons

Direct lineage reprogramming of glial cells into neurons offers a promising strategy to repair diseased brain circuits, but engineering defined neuronal subtypes remains challenging. We found that a phospho-site-deficient Ascl1 variant, Ascl1SA6, but not wildtype Ascl1, induces hallmarks of parvalbumin fast-spiking interneurons, raising the question of how closely these induced neurons resemble canonical cortical interneurons and what transcriptional events underlie this process. Single-cell transcriptomic analysis revealed that Ascl1SA6-induced neurons only partially recapitulated canonical interneuron programs and failed to induce the transcription factor Dlx2 and its downstream targets. Co-expression of Dlx2 with Ascl1SA6 restored a more canonical interneuron-like transcriptome, including genes involved in migration, and resulted in neurons occupying laminar positions more typical of endogenous interneurons. These findings provide molecular insights into how Ascl1 posttranslational modifications regulate its transcriptional activity and demonstrate a strategy to engineer induced cortical interneurons that more closely resemble their native counterparts, offering a framework for layer-specific restoration of inhibitory circuits in neurological diseases.

neuroscience↗

Reprogramming early cortical astroglia into neurons with hallmarks of fast-spiking parvalbumin-positive interneurons by phospho-site deficient Ascl1

Cellular reprogramming of mammalian glia to an induced neuronal fate holds potential for restoring diseased brain circuits. While the proneural factor Ascl1 is widely used for neuronal reprogramming, in the early postnatal mouse cortex Ascl1 fails to induce glia-to-neuron conversion, instead promoting proliferation of oligodendrocyte progenitor cells (OPC). Since Ascl1 activity is post-translationally regulated, here we investigated the consequences of mutating six serine phospho-acceptor sites to alanine (Ascl1SA6) on lineage reprogramming in vivo. Ascl1SA6 exhibited increased neurogenic activity in glia of the early postnatal mouse cortex, an effect enhanced by co-expression of Bcl2. Genetic fate-mapping revealed that most induced neurons originated from astrocytes while only a few derived from OPCs. Intriguingly, many Ascl1SA6/Bcl2-induced neurons expressed parvalbumin and were capable of high-frequency action potential firing. Our study demonstrates authentic conversion of astroglia into neurons featuring subclass hallmarks of cortical interneurons, advancing our scope of engineering neuronal fates in the brain.

neuroscience↗