PP2A and GSK3 act as modifiers of FUS-ALS by modulating mitochondrial transport
Paraskevi Tziortzouda1,2, Jolien Steyaert1,2, Wendy Scheveneels1,2
1Department of Neurosciences, Experimental Neurology and Leuven Brain Institute (LBI), KU Leuven-University of Leuven, Leuven, Belgium.
Abstract:
Amyotrophic lateral sclerosis (ALS) is a fatal neurodegenerative disease which currently lacks effective treatments. Mutations in the RNA-binding protein FUS are a common cause of familial ALS, accounting for around 4% of the cases. Understanding the mechanisms by which mutant FUS becomes toxic to neurons can provide insight into the pathogenesis of both familial and sporadic ALS. We have previously observed that overexpression of wild-type or ALS-mutant FUS in Drosophila motor neurons is toxic, which allowed us to screen for novel genetic modifiers of the disease. Using a genome-wide screening approach, we identified Protein Phosphatase 2A (PP2A) and Glycogen Synthase Kinase 3 (GSK3) as novel modifiers of FUS-ALS. Loss of function or pharmacological inhibition of either protein rescued FUS-associated lethality in Drosophila. Consistent with a conserved role in disease pathogenesis, pharmacological inhibition of both proteins rescued disease-relevant phenotypes, including mitochondrial trafficking defects and neuromuscular junction failure, in patient iPSC-derived spinal motor neurons (iPSC-sMNs). In FUS-ALS flies, mice, and human iPSC-sMNs, we observed reduced GSK3 inhibitory phosphorylation, suggesting that FUS dysfunction results in GSK3 hyperactivity. Furthermore, we found that PP2A acts upstream of GSK3, affecting its inhibitory phosphorylation. GSK3 has previously been linked to kinesin-1 hyperphosphorylation. We observed this in both flies and iPSC-sMNs, and we rescued this hyperphosphorylation by inhibiting GSK3 or PP2A. Moreover, increasing the level of kinesin-1 expression in our Drosophila model strongly rescued toxicity, confirming the relevance of kinesin-1 hyperphosphorylation. Our data provide in vivo evidence that PP2A and GSK3 are disease modifiers, and reveal an unexplored mechanistic link between PP2A, GSK3, and kinesin-1, that may be central to the pathogenesis of FUS-ALS and sporadic forms of the disease.
Insights
New research identifies Protein Phosphatase 2A (PP2A) and Glycogen Synthase Kinase 3 (GSK3) as key modifiers of FUS-Amyotrophic Lateral Sclerosis (ALS). Inhibiting these proteins rescues FUS-ALS toxicity and related neuronal defects.
Area of Science:
- Neuroscience
- Genetics
- Molecular Biology
Background:
- Amyotrophic lateral sclerosis (ALS) is a fatal neurodegenerative disease with limited treatment options.
- Mutations in the FUS gene are a significant cause of familial ALS, highlighting FUS toxicity as a potential therapeutic target.
- Understanding FUS-ALS pathogenesis is crucial for developing treatments for both familial and sporadic forms of the disease.
Purpose of the Study:
- To identify novel genetic modifiers of FUS-induced toxicity in motor neurons.
- To elucidate the molecular mechanisms underlying FUS-ALS pathogenesis.
- To explore potential therapeutic targets for FUS-ALS.
Main Methods:
- Genome-wide genetic screening in Drosophila motor neurons overexpressing wild-type or mutant FUS.
- Pharmacological inhibition of identified modifier genes (PP2A and GSK3) in Drosophila and patient-derived induced pluripotent stem cell-derived spinal motor neurons (iPSC-sMNs).
- Assessment of disease-relevant phenotypes, including lethality, mitochondrial trafficking, neuromuscular junction function, and protein phosphorylation levels.
Main Results:
- Protein Phosphatase 2A (PP2A) and Glycogen Synthase Kinase 3 (GSK3) were identified as novel genetic modifiers of FUS-ALS.
- Inhibition of PP2A or GSK3 rescued FUS-associated lethality in Drosophila and ameliorated disease phenotypes in iPSC-sMNs.
- FUS dysfunction led to GSK3 hyperactivity, mediated upstream by PP2A, and resulted in kinesin-1 hyperphosphorylation, which was rescued by inhibiting GSK3 or PP2A.
Conclusions:
- PP2A and GSK3 are validated in vivo as critical disease modifiers in FUS-ALS.
- A novel mechanistic link involving PP2A, GSK3, and kinesin-1 in FUS-ALS pathogenesis was uncovered.
- Targeting the PP2A-GSK3-kinesin-1 pathway represents a promising therapeutic strategy for FUS-ALS and potentially sporadic ALS.
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