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1.
Neuron ; 112(9): 1397-1415.e6, 2024 May 01.
Article in English | MEDLINE | ID: mdl-38377989

ABSTRACT

Defects in tRNA biogenesis are associated with multiple neurological disorders, yet our understanding of these diseases has been hampered by an inability to determine tRNA expression in individual cell types within a complex tissue. Here, we developed a mouse model in which RNA polymerase III is conditionally epitope tagged in a Cre-dependent manner, allowing us to accurately profile tRNA expression in any cell type in vivo. We investigated tRNA expression in diverse nervous system cell types, revealing dramatic heterogeneity in the expression of tRNA genes between populations. We found that while maintenance of levels of tRNA isoacceptor families is critical for cellular homeostasis, neurons are differentially vulnerable to insults to distinct tRNA isoacceptor families. Cell-type-specific translatome analysis suggests that the balance between tRNA availability and codon demand may underlie such differential resilience. Our work provides a platform for investigating the complexities of mRNA translation and tRNA biology in the brain.


Subject(s)
Brain , Homeostasis , Neurons , RNA, Transfer , Animals , RNA, Transfer/genetics , RNA, Transfer/metabolism , Homeostasis/physiology , Mice , Brain/metabolism , Neurons/metabolism , RNA Polymerase III/metabolism , RNA Polymerase III/genetics , Mice, Transgenic
2.
Sci Adv ; 10(2): eadh3929, 2024 Jan 12.
Article in English | MEDLINE | ID: mdl-38198538

ABSTRACT

Transcription factors play vital roles in neuron development; however, little is known about the role of these proteins in maintaining neuronal homeostasis. Here, we show that the transcription factor RREB1 (Ras-responsive element-binding protein 1) is essential for neuron survival in the mammalian brain. A spontaneous mouse mutation causing loss of a nervous system-enriched Rreb1 transcript is associated with progressive loss of cerebellar Purkinje cells and ataxia. Analysis of chromatin immunoprecipitation and sequencing, along with RNA sequencing data revealed dysregulation of RREB1 targets associated with the microtubule cytoskeleton. In agreement with the known role of microtubules in dendritic development, dendritic complexity was disrupted in Rreb1-deficient neurons. Analysis of sequencing data also suggested that RREB1 plays a role in the endomembrane system. Mutant Purkinje cells had fewer numbers of autophagosomes and lysosomes and contained P62- and ubiquitin-positive inclusions. Together, these studies demonstrate that RREB1 functions to maintain the microtubule network and proteostasis in mammalian neurons.


Subject(s)
Proteostasis , Transcription Factors , Animals , Mice , Mammals , Microtubules , Neurons , Purkinje Cells
3.
Sci Rep ; 14(1): 13603, 2024 06 13.
Article in English | MEDLINE | ID: mdl-38866944

ABSTRACT

Notch signaling guides vascular development and function by regulating diverse endothelial cell behaviors, including migration, proliferation, vascular density, endothelial junctions, and polarization in response to flow. Notch proteins form transcriptional activation complexes that regulate endothelial gene expression, but few of the downstream effectors that enable these phenotypic changes have been characterized in endothelial cells, limiting our understanding of vascular Notch activities. Using an unbiased screen of translated mRNA rapidly regulated by Notch signaling, we identified novel in vivo targets of Notch signaling in neonatal mouse brain endothelium, including UNC5B, a member of the netrin family of angiogenic-regulatory receptors. Endothelial Notch signaling rapidly upregulates UNC5B in multiple endothelial cell types. Loss or gain of UNC5B recapitulated specific Notch-regulated phenotypes. UNC5B expression inhibited endothelial migration and proliferation and was required for stabilization of endothelial junctions in response to shear stress. Loss of UNC5B partially or wholly blocked the ability of Notch activation to regulate these endothelial cell behaviors. In the developing mouse retina, endothelial-specific loss of UNC5B led to excessive vascularization, including increased vascular outgrowth, density, and branchpoint count. These data indicate that Notch signaling upregulates UNC5B as an effector protein to control specific endothelial cell behaviors and inhibit angiogenic growth.


Subject(s)
Cell Movement , Cell Proliferation , Endothelial Cells , Netrin Receptors , Receptors, Notch , Retina , Signal Transduction , Animals , Netrin Receptors/metabolism , Receptors, Notch/metabolism , Mice , Endothelial Cells/metabolism , Retina/metabolism , Humans , Retinal Vessels/metabolism , Neovascularization, Physiologic
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