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Engineering Artificial Factors to Specifically Manipulate Alternative Splicing in Human Cells
Published on: April 26, 2017
Identification of an RNA binding specificity for the potential splicing factor TLS
1INSERM U528, Institut Curie-Recherche, 26 rue d'Ulm, 75248 Paris, Cedex 05, France.
Abstract:
The TLS/FUS gene is involved in a recurrent chromosomal translocation in human myxoid liposarcomas. We previously reported that TLS is a potential splicing regulator able to modulate the 5'-splice site selection in an E1A pre-mRNA. Using an in vitro selection procedure, we investigated whether TLS exhibits a specificity with regard to RNA recognition. The RNAs selected by TLS share a common GGUG motif. Mutation of a G or U residue within this motif abolishes the interaction of TLS with the selected RNAs. We showed that TLS can bind GGUG-containing RNAs with a 250 nm affinity. By UV cross-linking/competition and immunoprecipitation experiments, we demonstrated that TLS recognizes a GGUG-containing RNA in nuclear extracts. Each one of the RNA binding domains (the three RGG boxes and the RNA recognition motif) contributes to the specificity of the TLS.RNA interaction, whereas only RRM and RGG2-3 participate to the E1A alternative splicing in vivo. The specificity of the TLS.RNA interaction was also observed using as natural pre-mRNA, the G-rich IVSB7 intron of the beta-tropomyosin pre-mRNA. Moreover, we determined that RNA binding specificities of TLS and high nuclear ribonucleoprotein A1 were different. Hence, our results help define the role of the specific interaction of TLS with RNA during the splicing process of a pre-mRNA.
Insights
The TLS/FUS gene protein recognizes specific RNA sequences containing a GGUG motif, influencing pre-mRNA splicing. This interaction is crucial for alternative splicing regulation in cellular processes.
Area of Science:
- Molecular Biology
- Genetics
- RNA Biology
Background:
- The TLS/FUS gene is implicated in chromosomal translocations associated with myxoid liposarcomas.
- TLS (Translocated in Liposarcoma) protein functions as a potential splicing regulator, modulating 5'-splice site selection.
Purpose of the Study:
- To investigate the RNA recognition specificity of the TLS protein.
- To elucidate the role of TLS-RNA interactions in pre-mRNA splicing regulation.
Main Methods:
- In vitro RNA selection assays to identify TLS-binding motifs.
- UV cross-linking/competition and immunoprecipitation to confirm RNA binding in nuclear extracts.
- Site-directed mutagenesis to assess the contribution of RNA binding domains to specificity and splicing.
Main Results:
- TLS specifically binds to RNAs containing a GGUG motif with high affinity (250 nM).
- Mutation of the GGUG motif disrupts TLS binding.
- Multiple RNA-binding domains (RGG boxes and RRM) contribute to TLS-RNA interaction specificity.
- RRM and RGG2-3 domains are critical for TLS-mediated E1A alternative splicing in vivo.
- TLS-RNA interaction specificity was also observed with natural pre-mRNAs, like beta-tropomyosin.
- TLS exhibits distinct RNA binding specificities compared to hnRNP A1.
Conclusions:
- TLS protein specifically recognizes and binds GGUG-containing RNA motifs.
- This specific RNA interaction is essential for TLS's role in regulating alternative pre-mRNA splicing.
- Understanding TLS-RNA interactions provides insights into splicing mechanisms and liposarcoma pathogenesis.
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