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Divergent FUS phosphorylation in primate and mouse cells following double-strand DNA damage
Michelle A Johnson1, Qiudong Deng1, Georgia Taylor1
1Department of Pharmacology and Chemical Biology, Emory University, School of Medicine, Atlanta, GA, United States of America; Center for Neurodegenerative Disease, Emory University, School of Medicine, Atlanta, GA, United States of America.
Abstract:
Fused in sarcoma (FUS) is a RNA/DNA protein involved in multiple nuclear and cytoplasmic functions including transcription, splicing, mRNA trafficking, and stress granule formation. To accomplish these many functions, FUS must shuttle between cellular compartments in a highly regulated manner. When shuttling is disrupted, FUS abnormally accumulates into cytoplasmic inclusions that can be toxic. Disrupted shuttling of FUS into the nucleus is a hallmark of ~10% of frontotemporal lobar degeneration (FTLD) cases, the neuropathology that underlies frontotemporal dementia (FTD). Multiple pathways are known to disrupt nuclear/cytoplasmic shuttling of FUS. In earlier work, we discovered that double-strand DNA breaks (DSBs) trigger DNA-dependent protein kinase (DNA-PK) to phosphorylate FUS (p-FUS) at N-terminal residues leading to the cytoplasmic accumulation of FUS. Therefore, DNA damage may contribute to the development of FTLD pathology with FUS inclusions. In the present study, we examined how DSBs effect FUS phosphorylation in various primate and mouse cellular models. All cell lines derived from human and non-human primates exhibit N-terminal FUS phosphorylation following calicheamicin γ1 (CLM) induced DSBs. In contrast, we were unable to detect FUS phosphorylation in mouse-derived primary neurons or immortalized cell lines regardless of CLM treatment, duration, or concentration. Despite DNA damage induced by CLM treatment, we find that mouse cells do not phosphorylate FUS, likely due to reduced levels and activity of DNA-PK compared to human cells. Taken together, our work reveals that mouse-derived cellular models regulate FUS in an anomalous manner compared to primate cells. This raises the possibility that mouse models may not fully recapitulate the pathogenic cascades that lead to FTLD with FUS pathology.
Insights
DNA damage triggers FUS protein phosphorylation in primate cells but not mouse cells, suggesting mouse models may not fully replicate FTLD pathology involving FUS inclusions.
Area of Science:
- Neuroscience
- Molecular Biology
- Cell Biology
Background:
- Fused in sarcoma (FUS) is a critical RNA/DNA-binding protein involved in nuclear and cytoplasmic functions.
- Dysregulated FUS shuttling leads to cytoplasmic inclusions, a hallmark of frontotemporal lobar degeneration (FTLD) with FUS pathology.
- Double-strand DNA breaks (DSBs) can trigger FUS phosphorylation and cytoplasmic accumulation via DNA-dependent protein kinase (DNA-PK).
Purpose of the Study:
- To investigate the differential effects of DSBs on FUS phosphorylation in primate versus mouse cellular models.
- To determine if mouse models accurately recapitulate FUS-related pathogenic mechanisms observed in human FTLD.
Main Methods:
- Induction of DSBs using calicheamicin γ1 (CLM) in various human, non-human primate, and mouse cell lines.
- Analysis of N-terminal FUS phosphorylation (p-FUS) in response to CLM treatment.
- Assessment of DNA-PK levels and activity in different cell types.
Main Results:
- Primate-derived cell lines (human and non-human) consistently showed N-terminal FUS phosphorylation after CLM-induced DSBs.
- Mouse-derived primary neurons and cell lines failed to exhibit FUS phosphorylation, even with varying CLM concentrations and durations.
- Mouse cells displayed lower levels and activity of DNA-PK compared to primate cells, potentially explaining the lack of FUS phosphorylation.
Conclusions:
- Primate cells phosphorylate FUS in response to DSBs, a mechanism implicated in FTLD.
- Mouse cellular models do not phosphorylate FUS following DSBs, likely due to deficient DNA-PK signaling.
- Current mouse models may not fully recapitulate the molecular pathology of FTLD with FUS inclusions, limiting their translational relevance.
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