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Updated: Jun 27, 2026

Dissecting Cell-Autonomous Function of Fragile X Mental Retardation Protein in an Auditory Circuit by In Ovo Electroporation
Published on: July 6, 2022
Metabotropic glutamate receptor-mediated use-dependent down-regulation of synaptic excitability involves the fragile
Sarah Repicky1, Kendal Broadie
1Department of Biological Sciences, Vanderbilt University, VU Station B, Box 351634, Nashville, TN 37235-1634, USA.
Abstract:
Loss of the mRNA-binding protein FMRP results in the most common inherited form of both mental retardation and autism spectrum disorders: fragile X syndrome (FXS). The leading FXS hypothesis proposes that metabotropic glutamate receptor (mGluR) signaling at the synapse controls FMRP function in the regulation of local protein translation to modulate synaptic transmission strength. In this study, we use the Drosophila FXS disease model to test the relationship between Drosophila FMRP (dFMRP) and the sole Drosophila mGluR (dmGluRA) in regulation of synaptic function, using two-electrode voltage-clamp recording at the glutamatergic neuromuscular junction (NMJ). Null dmGluRA mutants show minimal changes in basal synapse properties but pronounced defects during sustained high-frequency stimulation (HFS). The double null dfmr1;dmGluRA mutant shows repression of enhanced augmentation and delayed onset of premature long-term facilitation (LTF) and strongly reduces grossly elevated post-tetanic potentiation (PTP) phenotypes present in dmGluRA-null animals. Null dfmr1 mutants show features of synaptic hyperexcitability, including multiple transmission events in response to a single stimulus and cyclic modulation of transmission amplitude during prolonged HFS. The double null dfmr1;dmGluRA mutant shows amelioration of these defects but does not fully restore wildtype properties in dfmr1-null animals. These data suggest that dmGluRA functions in a negative feedback loop in which excess glutamate released during high-frequency transmission binds the glutamate receptor to dampen synaptic excitability, and dFMRP functions to suppress the translation of proteins regulating this synaptic excitability. Removal of the translational regulator partially compensates for loss of the receptor and, similarly, loss of the receptor weakly compensates for loss of the translational regulator.
Insights
Loss of fragile X mental retardation protein (dFMRP) and metabotropic glutamate receptor A (dmGluRA) in Drosophila reveals their interplay in regulating synaptic excitability. Their combined absence partially rescues synaptic defects observed in single mutants.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Fragile X syndrome (FXS), the most common inherited cause of intellectual disability and autism, is linked to FMRP loss.
- The leading hypothesis implicates metabotropic glutamate receptor (mGluR) signaling in FMRP's role in synaptic plasticity.
Purpose of the Study:
- To investigate the functional relationship between Drosophila FMRP (dFMRP) and Drosophila mGluR (dmGluRA) in synaptic function.
- To test the hypothesis that mGluR signaling modulates FMRP-dependent translation regulation at the synapse.
Main Methods:
- Utilized the Drosophila FXS model.
- Employed two-electrode voltage-clamp recordings at the glutamatergic neuromuscular junction (NMJ).
- Analyzed null mutants for dmGluRA, dfmr1, and double mutants (dfmr1;dmGluRA).
Main Results:
- Null dmGluRA mutants exhibited defects during high-frequency stimulation (HFS).
- The double dfmr1;dmGluRA mutant showed amelioration of synaptic hyperexcitability and potentiation defects seen in single mutants.
- dFMRP loss caused synaptic hyperexcitability, while dmGluRA loss impaired synaptic plasticity during HFS.
Conclusions:
- Data suggest dmGluRA acts in a negative feedback loop to dampen synaptic excitability.
- dFMRP likely suppresses the translation of proteins involved in synaptic excitability.
- The loss of one component partially compensates for the loss of the other, indicating a complex regulatory interaction.
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08:22A Robust Polymerase Chain Reaction-based Assay for Quantifying Cytosine-guanine-guanine Trinucleotide Repeats in Fragile X Mental Retardation-1 Gene
Published on: September 16, 2019
10:58TMS: Using the Theta-Burst Protocol to Explore Mechanism of Plasticity in Individuals with Fragile X Syndrome and Autism
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