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  Ire1α-Regulated Rate of mRNA Translation is Required for Acquisition of Identity and Polarity in Upper Layer Cortical Neurons

Ambrozkiewicz, M. C., Borisova, E., Newman, A. G., Kraushar, M. L., Schaub, T., Dannenberg, R., et al. (2021). Ire1α-Regulated Rate of mRNA Translation is Required for Acquisition of Identity and Polarity in Upper Layer Cortical Neurons. bioRxiv. doi:10.1101/2021.06.23.449563.

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Ambrozkiewicz_2021.pdf (Preprint), 11MB
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Ambrozkiewicz, Mateusz C. , Autor
Borisova, Ekaterina , Autor
Newman, Andrew G. , Autor
Kraushar, Matthew L.1, Autor           
Schaub, Theres , Autor
Dannenberg, Rike , Autor
Brockmann, Marisa , Autor
Rosário, Marta , Autor
Turko, Paul , Autor
Jahn, Olaf, Autor
Kaplan, David R. , Autor
Iwawaki, Takao , Autor
Spahn, Christian M. T. , Autor
Rosenmund, Christian , Autor
Tarabykin, Victor , Autor
Affiliations:
1High-Resolution Neurogenetics (Matthew Kraushar), Dept. of Genome Regulation (Head: Alexander Meissner), Max Planck Institute for Molecular Genetics, Max Planck Society, ou_3374910              

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Schlagwörter: cortical development, neuronal fate, upper layers, polarity, axon, protein translation, neuronal progenitors, Ire1a, Satb2
 Zusammenfassung: Evolutionary expansion of the neocortex is associated with the increase in upper layer neurons. Here, we present Inositol-Requiring Enzyme 1α, Ire1α, as an essential determinant of upper layer fate, neuronal polarization and cortical lamination. We demonstrate a non-canonical function of Ire1α in the regulation of global translation rates in the developing neocortex through its dynamic interaction with the ribosome and regulation of eIF4A1 and eEF-2 expression. Inactivation of Ire1α engenders lower protein synthesis rates associated with stalled ribosomes and decreased number of translation start sites. We show unique sensitivity of upper layer fate to translation rates. Whereas eEF-2 is required for cortical lamination, eIF4A1 regulates acquisition of upper layer fate downstream of Ire1α in a mechanism of translational control dependent on 5’UTR-embedded structural elements in fate determinant genes. Our data unveil developmental regulation of ribosome dynamics as post-transcriptional mechanisms orchestrating neuronal diversity establishment and assembly of cortical layers.

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Sprache(n): eng - English
 Datum: 2021-06-23
 Publikationsstatus: Online veröffentlicht
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 Identifikatoren: DOI: 10.1101/2021.06.23.449563
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Titel: bioRxiv
Genre der Quelle: Webseite
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