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Conjoint pathologic cascades mediated by ALS/FTLD-U linked RNA-binding proteins TDP-43 and FUS
1Department of Neurology, School of Medicine, Keio University, Tokyo, Japan. d-ito@jk9.so-net.ne.jp
Abstract:
The RNA-binding proteins TAR DNA-binding protein (TDP-43) and fused in sarcoma (FUS) play central roles in neurodegeneration associated with familial amyotrophic lateral sclerosis (ALS) and frontotemporal lobar degeneration with ubiquitin-positive inclusions (FTLD-U). Normally localized in the nucleus, in sites affected by ALS and FTLD-U they are mislocalized to the cytoplasm and form cytoplasmic inclusions. TDP-43 and FUS are transported to the nucleus in a Ran-GTPase-dependent manner via nuclear import receptors, but they also contribute to the formation of stress granules (SGs), which are intracytoplasmic structures incorporating RNA. C-terminal truncations of TDP-43 eliminate the nuclear transport signal and cause mislocalization of the protein to the cytoplasm, where it accumulates and forms SGs. ALS-associated FUS mutations impair nuclear transport and cause mislocalization of FUS to the cytoplasm, where it also contributes to assembly of SGs. Furthermore, the ALS susceptibility factor ataxin-2, recently identified as a potent modifier of TDP-43 toxicity, is also a predicted cytoplasmic RNA-binding protein and a constituent protein of SGs, suggesting that it is a part of the common pathologic cascade formed by TDP-43 and FUS. Thus, we propose that excessive mislocalization of the RNA-binding proteins TDP-43, FUS, and ataxin-2 into the cytoplasm leads to impairment of the RNA quality control system, forming the core of the ALS/FTLD-U degenerative cascade. In this review, we discuss the molecular basis of the novel disease spectrum of ALS/FTLD-U, including the neurodegenerative mechanism of the cytoplasmic RNA-binding proteins TDP-43 and FUS and the possibility of a novel therapeutic strategy.
Insights
Mislocalization of RNA-binding proteins TAR DNA-binding protein (TDP-43) and fused in sarcoma (FUS) to the cytoplasm drives neurodegeneration in ALS and FTLD-U. This cytoplasmic accumulation impairs RNA quality control, forming a core disease pathway.
Area of Science:
- Neuroscience
- Molecular Biology
- Genetics
Background:
- Amyotrophic lateral sclerosis (ALS) and frontotemporal lobar degeneration (FTLD-U) are neurodegenerative diseases.
- RNA-binding proteins TAR DNA-binding protein (TDP-43) and fused in sarcoma (FUS) are implicated in these diseases.
- These proteins are normally nuclear but mislocalize to the cytoplasm in affected individuals.
Purpose of the Study:
- To review the molecular mechanisms underlying TDP-43 and FUS mislocalization in ALS/FTLD-U.
- To explore the role of cytoplasmic RNA-binding proteins in neurodegeneration.
- To discuss potential therapeutic strategies targeting this pathway.
Main Methods:
- Review of existing literature on TDP-43, FUS, and ataxin-2.
- Analysis of protein localization and function in cellular models and patient tissues.
- Discussion of the role of stress granules (SGs) and RNA quality control.
Main Results:
- TDP-43 and FUS mislocalize to the cytoplasm in ALS/FTLD-U, forming inclusions and stress granules.
- C-terminal TDP-43 truncations and FUS mutations disrupt nuclear import, leading to cytoplasmic accumulation.
- Ataxin-2, an ALS susceptibility factor, is also a cytoplasmic RNA-binding protein and SG component, suggesting a common pathological cascade.
Conclusions:
- Excessive cytoplasmic mislocalization of TDP-43, FUS, and ataxin-2 impairs RNA quality control, driving ALS/FTLD-U.
- This cytoplasmic RNA-binding protein pathway represents a core neurodegenerative mechanism.
- Targeting this pathway offers a potential novel therapeutic strategy for ALS/FTLD-U.
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