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Updated: May 2, 2026

Experimental Protocol for Using Drosophila As an Invertebrate Model System for Toxicity Testing in the Laboratory
Published on: July 10, 2018
Human FUS is toxic via association with RNA polymerase II in Drosophila
Thomas G Moens1,2,3, Luca Biasetti4, Wendy Scheveneels5,6
1Department of Neurosciences, Experimental Neurology and Leuven Brain Institute (LBI), KU Leuven-University of Leuven, Leuven, Belgium. t.moens@crukscotlandinstitute.ac.uk.
Abstract:
The RNA-binding protein FUS is commonly mutated in familial cases of amyotrophic lateral sclerosis (ALS-FUS), where it forms cytoplasmic inclusions. In addition, non-mutated FUS is a constituent component of protein inclusions in approximately 5-10% of cases of frontotemporal lobar degeneration (FTLD). Overexpression of wild-type human FUS is toxic to Drosophila neurons, preventing normal development and shortening lifespan in adults. In this study, we demonstrated that removal of the nuclear localisation sequence (NLS) of FUS, a common consequence of ALS-associated mutations, unexpectedly prevents toxicity in Drosophila models despite inducing FUS cytoplasmic mislocalisation. Using novel flies capable of expressing mGFP-tagged FUS, we found that FUS forms dynamic protein granules in Drosophila nuclei and does not form insoluble aggregates. FUS and other FET-family paralogues interact with the repetitive disordered C-terminal domain (CTD) of the large subunit of RNA polymerase II (Polr2A). Using flies that have variable CTD repeat lengths, we demonstrated that FUS genetically interacts with the Polr2A CTD to induce toxicity. Finally, we demonstrated that this association with Polr2A could be relevant to human disease, finding that inclusion-bearing neurons of individuals with FUS-positive FTLD, but not ALS-FUS, show cytoplasmic mislocalisation of POLR2A (the Polr2A human orthologue). Together, these results imply that FUS can have a nuclear mechanism of toxicity when overexpressed in animal models. This toxicity occurs via interaction with RNA polymerase II and aberrant interaction between FUS and POLR2A may be involved in the pathogenesis of FTLD.
Insights
The RNA-binding protein FUS, implicated in ALS-FUS and FTLD, unexpectedly shows reduced toxicity in Drosophila models when its nuclear localization sequence is removed. This suggests a nuclear mechanism of FUS toxicity involving RNA polymerase II interactions.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Mutations in the RNA-binding protein FUS are linked to familial amyotrophic lateral sclerosis (ALS-FUS), causing cytoplasmic inclusions.
- Non-mutated FUS is found in protein inclusions in frontotemporal lobar degeneration (FTLD).
- Overexpression of wild-type FUS is toxic to Drosophila neurons.
Purpose of the Study:
- To investigate the mechanism of FUS toxicity in Drosophila models.
- To explore the role of the nuclear localization sequence (NLS) in FUS toxicity.
- To determine the interaction between FUS and RNA polymerase II (Polr2A) in disease pathogenesis.
Main Methods:
- Utilized Drosophila models expressing mGFP-tagged FUS with modified or absent NLS.
- Assessed FUS localization and aggregation in fly neurons.
- Investigated genetic interactions between FUS and Polr2A CTD using flies with variable CTD repeat lengths.
- Examined POLR2A localization in human FTLD and ALS-FUS patient tissues.
Main Results:
- Removal of the FUS NLS prevented toxicity in Drosophila despite cytoplasmic mislocalization.
- FUS formed dynamic nuclear granules in flies, not insoluble aggregates.
- FUS genetically interacted with the Polr2A CTD to induce toxicity.
- Cytoplasmic mislocalization of POLR2A was observed in FTLD neurons but not ALS-FUS neurons.
Conclusions:
- FUS can exert toxicity through a nuclear mechanism involving RNA polymerase II.
- The interaction between FUS and Polr2A CTD is crucial for FUS-induced toxicity.
- Aberrant FUS-POLR2A interaction may contribute to the pathogenesis of FTLD.

