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Alegre, G.

Publications and source records attributed to Alegre, G..

2 recordsLinked to original sources

Imp, a key regulator of transposable elements, cell growth, and differentiation genes during embryogenesis

Imps are a highly conserved family of RNA-binding proteins involved in embryonic development, cancer progression, and neurogenesis. However, the molecular pathways and RNAs regulated by Imp to control these processes remain poorly understood. Embryos derived from Imp mutant germline clones arrest development, and transcriptome analysis revealed significant dysregulation of genes involved in cell growth, differentiation, tube morphogenesis, neuronal projection development, and RNA metabolism, along with de-repression of transposable element (TE) RNAs. Consistent with these findings, Imp mutant embryos display TE-overexpression phenotypes, are smaller in size, and exhibit defective organ development, including impaired tracheal branching and gastrulation. Reduced levels of Imp at the larval neuromuscular junction (NMJ) impair synaptic bouton formation and decrease adult longevity. RIP-seq experiments showed that Imp-associated RNAs are enriched for TE RNAs. Proteomic analyses confirmed that several TE-encoded proteins are upregulated in Imp mutant embryos. Specifically, the Ty1 family retrotransposon Copia was derepressed. Consistent with recent findings that Copia is a potent inhibitor of synaptogenesis, its upregulation likely contributes to the impaired NMJ formation and broader embryonic defects observed in Imp mutants. Moreover, Imp associates with piRNA pathway proteins, ensures Piwi nuclear localization, and--like piwi mutants--its loss disrupts TE silencing and causes position-effect variegation (PEV) defects. The analysis of Imp complexes further points to potential mechanisms by which Imp may regulate TE expression. Overall, these results indicate that Imp maintains genome stability and ensures proper developmental progression and neuronal activity by regulating post-transcriptional processes and suppressing transposons.

developmental biology↗

Somatic function of the Argonaute protein Aubergine is essential for neuromuscular development and function in Drosophila

BackgroundThe PIWI-interacting RNA (piRNA) pathway is the primary defense against the deleterious activity of transposable elements (TEs), a role classically assigned to the germline. We recently discovered that the retrotransposon Copia is a negative regulator of synaptogenesis at the Drosophila larval neuromuscular junction (LNMJ) [1]. Here, we investigated whether the piRNA pathway regulates Copia in this somatic context. MethodsAnalysis of existing sequencing data revealed the expression of piRNA pathway components in somatic tissues [2]. We focused on Aubergine (aub), a core PIWI-clade Argonaute. We utilized CRISPR generated aub reporter lines and confocal microscopy to confirm the enrichment of AUB at the LNMJ and next generation sequencing coupled with digital PCR to validate the upregulation of TEs in aub knockdown larvae and adult tissues. ResultsData from genetic reporters and antibody staining show that AUB is expressed and localized to the LNMJ. Tissue-specific knockdown of aub at the LNMJ resulted in increased TE expression, including Copia. In contrast to the synaptic overgrowth seen with Copia depletion [1], aub reduction caused a decrease in synapse number and impaired motor function and lifespan. These phenotypes are consistent with the upregulation of Copia, a negative regulator of synapse growth. ConclusionsOur findings demonstrate that AUB functions somatically at the LNMJ to repress TEs, thereby ensuring proper neuromuscular development and function. This work establishes a physiological role for the piRNA pathway in a somatic tissue, linking TE repression to neuromuscular development.

neuroscience↗