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Updated: Apr 19, 2026

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Published on: January 7, 2019
A loss of FUS/TLS function leads to impaired cellular proliferation
C L Ward1, K J Boggio1, B N Johnson2
1Department of Neurology, University of Massachusetts Medical School, Albert Sherman Center, Worcester, MA, USA.
Abstract:
Fused in sarcoma/translocated in liposarcoma (FUS/TLS or FUS) is a multifunctional RNA/DNA-binding protein that is pathologically associated with cancer and neurodegeneration. To gain insight into the vital functions of FUS and how a loss of FUS function impacts cellular homeostasis, FUS expression was reduced in different cellular models through RNA interference. Our results show that a loss of FUS expression severely impairs cellular proliferation and leads to an increase in phosphorylated histone H3, a marker of mitotic arrest. A quantitative proteomics analysis performed on cells undergoing various degrees of FUS knockdown revealed protein expression changes for known RNA targets of FUS, consistent with a loss of FUS function with respect to RNA processing. Proteins that changed in expression as a function of FUS knockdown were associated with multiple processes, some of which influence cell proliferation including cell cycle regulation, cytoskeletal organization, oxidative stress and energy homeostasis. FUS knockdown also correlated with increased expression of the closely related protein EWS (Ewing's sarcoma). We demonstrate that the maladaptive phenotype resulting from FUS knockdown is reversible and can be rescued by re-expression of FUS or partially rescued by the small-molecule rolipram. These results provide insight into the pathways and processes that are regulated by FUS, as well as the cellular consequences for a loss of FUS function.
Insights
Reducing FUS protein levels severely impairs cell growth and causes mitotic arrest. This phenotype is reversible and linked to altered RNA processing, highlighting FUS
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- Fused in sarcoma (FUS) is a key RNA/DNA-binding protein implicated in cancer and neurodegenerative diseases.
- Understanding FUS's essential cellular roles and the consequences of its loss is crucial for disease research.
Purpose of the Study:
- To investigate the vital functions of FUS and its impact on cellular homeostasis.
- To elucidate the molecular mechanisms underlying FUS-regulated cellular processes.
Main Methods:
- RNA interference (RNAi) was used to reduce FUS expression in cellular models.
- Quantitative proteomics was employed to analyze protein expression changes.
- Mitotic arrest was assessed via phosphorylated histone H3 levels.
Main Results:
- FUS knockdown significantly impaired cellular proliferation and induced mitotic arrest.
- Proteomics revealed altered expression of FUS RNA targets, indicating disrupted RNA processing.
- Affected proteins were linked to cell cycle, cytoskeleton, oxidative stress, and energy homeostasis.
Conclusions:
- Loss of FUS function severely disrupts cellular homeostasis, affecting proliferation and RNA processing.
- The observed maladaptive phenotype is reversible, suggesting therapeutic potential.
- FUS regulates critical cellular pathways, and its dysregulation contributes to disease states.
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