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Dissecting Cell-Autonomous Function of Fragile X Mental Retardation Protein in an Auditory Circuit by In Ovo Electroporation
Published on: July 6, 2022
Characterization of Fragile X Mental Retardation Protein granules formation and dynamics in Drosophila
Cristina Gareau1, David Martel, Laetitia Coudert
1Department of Molecular Biology, Medical Biochemistry, and Pathology, Faculty of Medicine, Laval University, CHUQ Research Center/St-François d'Assise Research Center , Quebec, QC G1L 3L5 , Canada.
Abstract:
FMRP is an evolutionarily conserved protein that is highly expressed in neurons and its deficiency causes fragile X mental retardation syndrome. FMRP controls the translation of target mRNAs in part by promoting their dynamic transport in neuronal RNA granules. We have previously shown that high expression of mammalian FMRP induces formation of granules termed FMRP granules. These RNA granules are reminiscent of neuronal granules, of stress granules, as well as of the recently described in vitro-assembled granules. In contrast with mammalian FMRP, which has two paralog proteins, Drosophila FMRP (dFMRP) is encoded by a single gene that has no paralog. Using this genetically simple organism, we investigated formation and dynamics of FMRP granules. We found that increased expression of dFMRP in Drosophila cells induces the formation of dynamic dFMRP RNA granules. Mutagenesis studies identified the N-terminal protein-protein domain of dFMRP as a key determinant for FMRP granules formation. The RGG RNA binding motif of dFMRP is dispensable for dFMRP granules formation since its deletion does not prevent formation of those granules. Deletion of the RGG motif reduced, however, dFMRP trafficking between FMRP granules and the cytosol. Similarly, deletion of a large part of the KH RNA binding motif of dFMRP had no effect on formation of dFMRP-granules, but diminished the shuttling activity of dFMRP. Our results thus suggest that the mechanisms controlling formation of RNA granules and those promoting their dynamics are uncoupled. This study opens new avenues to further elucidate the molecular mechanisms controlling FMRP trafficking with its associated mRNAs in and out of RNA granules.
Insights
Fragile X mental retardation protein (FMRP) forms dynamic RNA granules in neurons. Its N-terminal domain drives granule formation, while RNA-binding motifs influence trafficking, suggesting uncoupled formation and dynamics.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Fragile X mental retardation protein (FMRP) is crucial for neuronal function and its absence causes fragile X syndrome.
- FMRP regulates mRNA translation by facilitating transport within neuronal RNA granules.
- Previous work showed mammalian FMRP induces specific granules, but the underlying mechanisms remain unclear.
Purpose of the Study:
- To investigate the formation and dynamics of FMRP granules using Drosophila melanogaster as a model system.
- To identify the specific domains of Drosophila FMRP (dFMRP) responsible for granule formation and dynamics.
- To determine if granule formation and dynamics are coupled processes.
Main Methods:
- Overexpression of dFMRP in Drosophila cells to induce granule formation.
- Site-directed mutagenesis to assess the role of specific dFMRP domains (N-terminal protein-protein, RGG, KH motifs).
- Microscopy and live-cell imaging to observe granule formation and dFMRP trafficking.
Main Results:
- Increased dFMRP expression leads to the formation of dynamic dFMRP RNA granules in Drosophila cells.
- The N-terminal protein-protein interaction domain of dFMRP is essential for granule formation.
- The RGG and KH RNA-binding motifs are dispensable for granule formation but critical for dFMRP trafficking between granules and the cytosol.
Conclusions:
- Granule formation and dynamics are distinct, uncoupled processes regulated by different domains of dFMRP.
- The N-terminal domain mediates granule assembly, while RNA-binding motifs control dFMRP shuttling.
- This study provides insights into the molecular mechanisms governing FMRP-mediated RNA transport and neuronal function.

