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Detection of In Situ Protein-protein Complexes at the Drosophila Larval Neuromuscular Junction Using Proximity Ligation Assay
Published on: January 20, 2015
Identification of synaptic targets of Drosophila pumilio
Gengxin Chen1, Wanhe Li, Qing-Shuo Zhang
1Cold Spring Harbor Laboratory, Cold Spring Harbor, New York, USA.
Abstract:
Drosophila Pumilio (Pum) protein is a translational regulator involved in embryonic patterning and germline development. Recent findings demonstrate that Pum also plays an important role in the nervous system, both at the neuromuscular junction (NMJ) and in long-term memory formation. In neurons, Pum appears to play a role in homeostatic control of excitability via down regulation of para, a voltage gated sodium channel, and may more generally modulate local protein synthesis in neurons via translational repression of eIF-4E. Aside from these, the biologically relevant targets of Pum in the nervous system remain largely unknown. We hypothesized that Pum might play a role in regulating the local translation underlying synapse-specific modifications during memory formation. To identify relevant translational targets, we used an informatics approach to predict Pum targets among mRNAs whose products have synaptic localization. We then used both in vitro binding and two in vivo assays to functionally confirm the fidelity of this informatics screening method. We find that Pum strongly and specifically binds to RNA sequences in the 3'UTR of four of the predicted target genes, demonstrating the validity of our method. We then demonstrate that one of these predicted target sequences, in the 3'UTR of discs large (dlg1), the Drosophila PSD95 ortholog, can functionally substitute for a canonical NRE (Nanos response element) in vivo in a heterologous functional assay. Finally, we show that the endogenous dlg1 mRNA can be regulated by Pumilio in a neuronal context, the adult mushroom bodies (MB), which is an anatomical site of memory storage.
Insights
Drosophila Pumilio protein regulates gene expression in the nervous system. This study identifies new targets, including discs large (dlg1), crucial for memory formation in the brain.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Drosophila Pumilio (Pum) is a key translational regulator.
- Pum influences embryonic patterning, germline development, and nervous system functions like memory.
- Its specific targets in neurons are largely unidentified.
Purpose of the Study:
- To identify novel Pum-regulated mRNAs involved in synaptic function and memory.
- To validate an informatics approach for predicting Pum targets in neurons.
- To investigate the role of Pum in regulating discs large (dlg1) mRNA in the brain.
Main Methods:
- Informatics prediction of Pum targets among synaptically localized mRNAs.
- In vitro RNA binding assays to confirm Pum-mRNA interactions.
- In vivo functional assays in Drosophila to validate target regulation, including a heterologous Nanos response element (NRE) assay.
- Analysis of dlg1 mRNA regulation by Pumilio in adult mushroom bodies (MBs).
Main Results:
- Identified four novel Pum target mRNAs with high confidence using the informatics approach.
- Demonstrated Pum's specific binding to 3'UTR sequences of these targets.
- Showed that a Pum-binding site in dlg1 3'UTR can function as an NRE in vivo.
- Confirmed Pumilio-mediated regulation of endogenous dlg1 mRNA in Drosophila mushroom bodies.
Conclusions:
- The informatics method is effective for identifying Pum targets in the nervous system.
- Pumilio regulates dlg1 mRNA translation in neurons, implicating it in memory processes.
- This work expands the understanding of Pum's role in neural function and synaptic plasticity.

