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Biology subjects

Gorey, S.

Publications and source records attributed to Gorey, S..

3 recordsLinked to original sources

Regulation of protein abundance in neurons by selective translation of 3'UTR isoforms

The precise regulation of protein synthesis is essential for cellular function and survival. In particular, in neurons, dysregulated mRNA translation is linked to impaired memory formation and is a hallmark of neurodegenerative diseases. Neurons are characterized by tissue-specific, long 3' untranslated regions (3'UTRs); in this study, we demonstrate that mRNA isoforms with these neuronal 3'UTRs are less efficiently translated than their short counterparts in Drosophila and mammalian brains. 3'UTR-dependent translation is based on a negative feedback mechanism centered around the two neural-enriched proteins ELAV and Pumilio. The long elav 3'UTR inhibits production of the neuronal ELAV protein, which in turn mediates 3'UTR extension of hundreds of neuronal genes. Those long 3'UTR isoforms are preferentially bound and translationally inhibited by Pumilio. The regulatory loop maintains optimal neuronal 3'UTR and protein levels in conditions of genetic and environmental perturbations; its disruption reduces animal viability and lowers stress resilience, and causes severe developmental phenotypes in flies and in human brain organoids. We propose 3'UTR-mediated translational control as an evolutionarily conserved mechanism for the maintenance of cell-type-specific proteostasis.

molecular biology↗

Pumilio differentially binds to mRNA 3' UTR isoforms to regulate localization of synaptic proteins

In neuronal cells, the regulation of RNA is crucial for the spatiotemporal control of gene expression, but how the correct localization, levels, and function of synaptic proteins are achieved is not well understood. In this study, we globally investigate the role of alternative 3 UTRs in regulating RNA localization in the synaptic regions of the Drosophila brain. We identify direct mRNA targets of the translational repressor Pumilio, finding that mRNAs bound by Pumilio encode proteins enriched in synaptosomes. Pumilio differentially binds to RNA isoforms of the same gene, favoring long, neuronal 3 UTRs. These longer 3 UTRs tend to remain in the neuronal soma, whereas shorter UTR isoforms localize to the synapse. In cultured pumilio mutant neurons, severe axon outgrowth defects were accompanied by mRNA isoform mislocalization, and proteins encoded by these Pumilio targets displayed excessive abundance at synaptic boutons. Our study identifies an important and widespread mechanism for the spatiotemporal regulation of protein function in neurons.

genomics↗

ELAV mediates circular RNA biogenesis in neurons

Circular RNAs (circRNAs) arise from back-splicing of precursor RNAs and accumulate in the nervous system of animals, where they are thought to regulate gene expression and synaptic function. Here, we show that neuronal circRNA biosynthesis is mediated by the pan-neuronal RNA-binding protein ELAV. In Drosophila embryos, we characterize the circRNA landscape in normal and elav mutant neurons. We find that neuronal circRNAs are globally (>75%) depleted upon ELAV knockout, and induction of ELAV expression drives ectopic RNA circularization. In brain tissue, ELAV binds to pre-mRNA introns flanking putative circRNAs and decreases efficiency of linear splicing in favor of intron pairing at reverse complementary matches, inducing circularization. Together, our data demonstrate that ELAV directly modulates splicing decisions to generate the neuronal circRNA landscape.

molecular biology↗