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Updated: Mar 26, 2026

Quantitative Analysis of Alternative Pre-mRNA Splicing in Mouse Brain Sections Using RNA In Situ Hybridization Assay
Published on: August 26, 2018
FUS-mediated regulation of alternative RNA processing in neurons: insights from global transcriptome analysis
Akio Masuda1, Jun-Ichi Takeda1, Kinji Ohno1
1Division of Neurogenetics, Center for Neurological Diseases and Cancer, Nagoya University Graduate School of Medicine, Nagoya, Japan.
Abstract:
Fused in sarcoma (FUS) is an RNA-binding protein that is causally associated with oncogenesis and neurodegeneration. Recently, the role of FUS in neurodegeneration has been extensively studied, because mutations in FUS are associated with amyotrophic lateral sclerosis (ALS), and the FUS protein has been identified as a major component of intracellular inclusions in neurodegenerative disorders including ALS and frontotemporal lobar degeneration. FUS is a key molecule in transcriptional regulation and RNA processing including processes such as pre-messenger RNA (mRNA) splicing and polyadenylation. Interaction of FUS with various components of the transcription machinery, spliceosome, and the 3'-end processing machinery has been identified. Furthermore, recent advances in high-throughput transcriptomic profiling approaches have enabled us to determine the mechanisms of FUS-dependent RNA processing networks at a cellular level. These analyses have revealed that depletion of FUS in neuronal cells affects alternative splicing and alternative polyadenylation of thousands of mRNAs. Gene ontology analysis has suggested that FUS-modulated genes are implicated in neuronal functions and development. CLIP-seq of FUS has shown that FUS is frequently clustered around these alternative sites of nascent RNA. ChIP-seq of RNA polymerase II (RNAP II) has demonstrated that an interaction between FUS and nascent RNA downregulates local transcriptional activity of RNAP II, which is critically involved in RNA processing. Both alternative splicing and alternative polyadenylation are fundamental processes by which cells expand their transcriptomic diversity, and are particularly essential in the nervous system. Dependence of transcriptomic diversity on FUS makes the nervous system vulnerable to neurodegeneration, when FUS is functionally compromised. WIREs RNA 2016, 7:330-340. doi: 10.1002/wrna.1338 For further resources related to this article, please visit the WIREs website.
Insights
Fused in sarcoma (FUS) protein regulates RNA processing, impacting neuronal development and function. Compromised FUS function disrupts transcriptomic diversity, increasing vulnerability to neurodegenerative diseases like ALS.
Area of Science:
- Molecular Biology
- Neuroscience
- Genetics
Background:
- Fused in sarcoma (FUS) is an RNA-binding protein linked to oncogenesis and neurodegeneration.
- Mutations in FUS are associated with amyotrophic lateral sclerosis (ALS) and FUS is found in inclusions in neurodegenerative disorders.
Purpose of the Study:
- To investigate the role of FUS in RNA processing and its implications for neurodegeneration.
- To elucidate FUS-dependent RNA processing networks at a cellular level.
Main Methods:
- High-throughput transcriptomic profiling (e.g., CLIP-seq, ChIP-seq).
- Analysis of FUS depletion effects on alternative splicing and polyadenylation.
- Gene ontology analysis of FUS-modulated genes.
Main Results:
- FUS depletion affects alternative splicing and polyadenylation of thousands of mRNAs in neuronal cells.
- FUS-modulated genes are involved in neuronal functions and development.
- FUS interacts with nascent RNA, downregulating local transcriptional activity of RNA polymerase II.
Conclusions:
- FUS is critical for maintaining transcriptomic diversity through alternative splicing and polyadenylation.
- The nervous system's reliance on FUS for transcriptomic diversity makes it vulnerable to neurodegeneration when FUS is compromised.
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