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Updated: Sep 7, 2025

Author Spotlight: Combining Proximity Ligand Assay with Gamma-H2AX Staining to Characterize Protein Interactions in DNA Damage Response
Published on: August 2, 2024
Proximity-based labeling reveals DNA damage-induced phosphorylation of fused in sarcoma (FUS) causes distinct changes
Michelle A Johnson1, Thomas A Nuckols1, Paola Merino1
1Department of Pharmacology and Chemical Biology, Emory University, School of Medicine, Atlanta, Georgia, USA; Center for Neurodegenerative Disease, Emory University, School of Medicine, Atlanta, Georgia, USA.
Abstract:
Accumulation of cytoplasmic inclusions containing fused in sarcoma (FUS), an RNA/DNA-binding protein, is a common hallmark of frontotemporal lobar degeneration and amyotrophic lateral sclerosis neuropathology. We have previously shown that DNA damage can trigger the cytoplasmic accumulation of N-terminally phosphorylated FUS. However, the functional consequences of N-terminal FUS phosphorylation are unknown. To gain insight into this question, we utilized proximity-dependent biotin labeling via ascorbate peroxidase 2 aired with mass spectrometry to investigate whether N-terminal phosphorylation alters the FUS protein-protein interaction network (interactome), and subsequently, FUS function. We report the first analysis comparing the interactomes of three FUS variants: homeostatic wildtype FUS (FUS WT), phosphomimetic FUS (FUS PM; a proxy for N-terminally phosphorylated FUS), and the toxic FUS proline 525 to leucine mutant (FUS P525L) that causes juvenile amyotrophic lateral sclerosis. We found that the phosphomimetic FUS interactome is uniquely enriched for a group of cytoplasmic proteins that mediate mRNA metabolism and translation, as well as nuclear proteins involved in the spliceosome and DNA repair functions. Furthermore, we identified and validated the RNA-induced silencing complex RNA helicase MOV10 as a novel interacting partner of FUS. Finally, we provide functional evidence that N-terminally phosphorylated FUS may disrupt homeostatic translation and steady-state levels of specific mRNA transcripts. Taken together, these results highlight phosphorylation as a unique modulator of the interactome and function of FUS.
Insights
Phosphorylation of the FUS protein (fused in sarcoma) alters its interactions, impacting mRNA metabolism and translation. This finding offers new insights into frontotemporal lobar degeneration and amyotrophic lateral sclerosis.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Cytoplasmic inclusions of fused in sarcoma (FUS) are hallmarks of neurodegenerative diseases like frontotemporal lobar degeneration (FTLD) and amyotrophic lateral sclerosis (ALS).
- DNA damage can induce N-terminal phosphorylation of FUS, but its functional impact remains unclear.
Purpose of the Study:
- To investigate how N-terminal FUS phosphorylation affects its protein-protein interactions and cellular functions.
- To compare the interactomes of wildtype FUS, phosphomimetic FUS, and a disease-associated FUS mutant.
Main Methods:
- Utilized proximity-dependent biotinylation with mass spectrometry (Bio-ID MS) to analyze FUS interactomes.
- Compared three FUS variants: wildtype (FUS WT), phosphomimetic (FUS PM), and a disease mutant (FUS P525L).
Main Results:
- The FUS PM interactome showed enrichment of proteins involved in mRNA metabolism, translation, splicing, and DNA repair.
- Identified MOV10 (RNA helicase) as a novel FUS interacting partner.
- N-terminally phosphorylated FUS disrupts homeostatic translation and mRNA levels.
Conclusions:
- N-terminal FUS phosphorylation uniquely modulates the FUS interactome and function.
- This phosphorylation may play a role in the neuropathology of FTLD and ALS.
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