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Dannenberg, R.

Publications and source records attributed to Dannenberg, R..

3 recordsLinked to original sources

Sema7A and Sema4D Heterodimerization is Essential for Membrane Targeting and Neocortical Wiring

Disruption of neocortical circuitry and architecture in humans causes numerous neurodevelopmental disorders. Neocortical cytoarchitecture is orchestrated by various transcription factors such as Satb2 that control target genes during strict time windows. In humans, mutations of SATB2 cause SATB2 Associated Syndrome (SAS), a multisymptomatic syndrome involving intellectual disability, speech delay, epilepsy and craniofacial defects. We show that Satb2 controls neuronal migration and axonal outgrowth by inducing the expression of the GPI-anchored protein, Sema7A. We find that heterodimerization with Sema4D increases targeting of Sema4D to the membrane and is required for Sema7A function. Finally, we report that membrane localization and pos- translational modification of the Sema7A-Sema4D complex is disrupted by a novel de novo mutation in Sema4D (Q497P) that is associated with epilepsy in humans. GRAPHICAL ABSTRACT O_FIG O_LINKSMALLFIG WIDTH=197 HEIGHT=200 SRC="FIGDIR/small/527998v1_ufig1.gif" ALT="Figure 1"> View larger version (48K): org.highwire.dtl.DTLVardef@db698org.highwire.dtl.DTLVardef@4ee980org.highwire.dtl.DTLVardef@c3d9d6org.highwire.dtl.DTLVardef@12a135_HPS_FORMAT_FIGEXP M_FIG C_FIG HIGHLIGHTSO_LISema7A is a direct Satb2 target that drives neuronal migration and axon outgrowth C_LIO_LISema7A exerts its effect by heterodimerizing with Sema4D at neurites and growth cones C_LIO_LISema7A increases cell surface localization of Sema4D C_LIO_LIDe novo human Sema4D-Q497P mutation causes epilepsy, inhibits post-translational processing & surface localization C_LI eTOCSema7A is a direct target of the transcription factor Satb2. Sema7A promotes normal migration and axon outgrowth in cortical neurons by modulating reverse signaling via Sema4D. These processes are dependent on Sema7A-Sema4D heterodimerization and membrane localization; insufficient transcription of Sema7A or incomplete glycosylation of Sema4D inhibit this progression.

neuroscience↗

Timed global reorganization of protein synthesis during neocortex neurogenesis at codon resolution

Translation modulates the timing and amplification of gene expression after transcription. Brain development requires uniquely complex gene expression patterns, but large-scale measurements of translation directly in the prenatal brain are lacking. We measure the reactants, synthesis, and products of translation spanning mouse neocortex neurogenesis, and discover a transient window of dynamic regulation at mid-gestation. Timed translation upregulation of chromatin binding proteins like Satb2, which is essential for neuronal subtype differentiation, restricts protein expression in neuronal lineages despite broad transcriptional priming in progenitors. In contrast, translation downregulation of ribosomal proteins sharply decreases ribosome number, coinciding with a major shift in protein synthesis dynamics at mid-gestation. Changing levels of eIF4EBP1, a direct inhibitor of ribosomal protein translation, are concurrent with ribosome downregulation and controls Satb2 fate acquisition during neuronal differentiation. Thus, the refinement of transcriptional programs by translation is central to the molecular logic of brain development. Modeling of the developmental neocortex translatome is provided as an open-source searchable resource: https://shiny.mdc-berlin.de/cortexomics/.

neuroscience↗

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

Evolutionary expansion of the neocortex is associated with the increase in upper layer neurons. Here, we present Inositol-Requiring Enzyme 1, Ire1, as an essential determinant of upper layer fate, neuronal polarization and cortical lamination. We demonstrate a non-canonical function of Ire1 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 Ire1 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 Ire1 in a mechanism of translational control dependent on 5UTR-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. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=93 SRC="FIGDIR/small/449563v2_ufig1.gif" ALT="Figure 1"> View larger version (19K): org.highwire.dtl.DTLVardef@115a09aorg.highwire.dtl.DTLVardef@e30d2dorg.highwire.dtl.DTLVardef@763b27org.highwire.dtl.DTLVardef@2586e9_HPS_FORMAT_FIGEXP M_FIG C_FIG HIGHLIGHTSO_LISmall molecule screening reveals Ire1 upstream of upper layer neuronal identity C_LIO_LIPolarization and proper lamination of layer II/III neurons require Ire1 C_LIO_LIDevelopment of upper layers requires high translation rates driven by eIF4A1 and eEF-2 downstream of Ire1 C_LIO_LIeIF4A1-dependent Satb2 mRNA translation initiation is a mechanism of upper layer fate acquisition C_LI

neuroscience↗