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Biology subjects

Bensidoun, P.

Publications and source records attributed to Bensidoun, P..

3 recordsLinked to original sources

Imaging Translation in Early Embryo Development

The ultimate output of gene expression is to ensure that proteins are synthesized at the right levels, locations, and timings. Recently different imaging-based methods have been developed to visualize the translation of single mRNA molecules. These methods rely on signal amplification with the introduction of an array of a short peptide sequence (a tag such as SunTag), recognized by a genetically encodable single-chain antibody (a detector such as scFv). In this chapter, we discuss such methods to image and quantify translation dynamics in the early Drosophila embryo and provide examples based on a twist-32XSunTag reporter. We outline a step-by-step protocol to light-up translation in living embryos. We also detail a combinatorial strategy in fixed samples (smFISH-IF), allowing to distinguish single mRNA molecules engaged in translation.

developmental biology↗

Regulation of bicoid mRNA throughout oogenesis and early embryogenesis impacts protein gradient formation

The transcription factor Bicoid (Bcd) protein guides early Drosophila patterning and is the best-characterised morphogen. The source of the morphogen, bcd mRNA, is maternally deposited during oogenesis and localised to the anterior pole of the mature oocyte. While the spatiotemporal interpretation of the Bcd morphogen gradient has been intensely studied, when and where Bcd protein is produced and how this protein gradient is dynamically shaped remains contentious. Here, we use the SunTag reporter system to quantitatively examine the spatiotemporal profile of bcd mRNA translation in vivo. We show that association with Processing bodies (P bodies) in mature oocytes prevent premature bcd mRNA translation. Following egg activation, bcd mRNA dissociates from P bodies and translation is observed at the anterior pole. Translation remains restricted to the anterior domain throughout early development, even after nuclear migration in the syncytial blastoderm. At cellularisation, translation ceases and the remaining bcd mRNA associates with reformed P bodies, which appear to block any further translation. We use these observations to create a new modified source-diffusion-degradation model of Bcd gradient formation that has spatiotemporally varying production. Overall, our study reveals that bcd mRNA translation is tightly controlled in space and time during oogenesis and early embryogenesis.

developmental biology↗

Nuclear mRNA metabolism drives selective basket assembly on a subset of nuclear pores in budding yeast

To determine which transcripts should reach the cytoplasm for translation, eukaryotic cells have established mechanisms to regulate selective mRNA export through the nuclear pore complex (NPC). The nuclear basket, a substructure of the NPC protruding into the nucleoplasm, is thought to function as a stable platform where mRNA-protein complexes (mRNPs) are rearranged and undergo quality control (QC) prior to export, ensuring that only mature mRNAs reach the cytoplasm. Here, we use proteomic, genetic, live-cell, and single-molecule resolution microscopy approaches in budding yeast to demonstrate that baskets assemble only on a subset of NPCs and that basket formation is dependent on RNA polymerase II (Pol II) transcription and subsequent mRNP processing. Specifically, we observe that the cleavage and polyadenylation machinery, the poly(A)-binding protein Pab1, and pre-mRNA-leakage factor Pml39 are required for basket assembly. We further show that while all nuclear pores can bind Mlp1, baskets assemble only on a subset of nucleoplasmic NPCs, and these basket-containing pores associate a distinct protein and RNA interactome. Taken together, our data points towards nuclear pore heterogeneity and an RNA-dependent mechanism for functionalization of nuclear pores in budding yeast through nuclear basket assembly.

cell biology↗