All-Atom Simulations Elucidate the Impact of U2AF2 Cancer-Associated Mutations on Pre-mRNA Recognition
Riccardo Rozza1, Andrea Saltalamacchia2, Clarissa Orrico2
1National Research Council of Italy (CNR)-IOM c/o International School for Advanced Studies (SISSA/ISAS), via Bonomea 265, 34136 Trieste, Italy.
Abstract:
The U2AF2 splicing factor, made of two tandem RNA recognition motifs (RRMs) joined by a flexible linker, selects the intronic polypyrimidine sequence of premature mRNA, thus ensuring splicing fidelity. Increasing evidence links mutations of key splicing factors, including U2AF2, to a variety of cancers. Nevertheless, the impact of U2AF2 cancer-associated mutations on polypyrimidine recognition remains unclear. Here, we combined extensive (18 μs-long) all-atom molecular dynamics simulations and dynamical network theory analysis (NWA) of U2AF2, in its wild-type form and in the presence of the six most frequent cancer-associated mutations, bound to a poly-U strand. Our results reveal that the selected mutations affect the pre-mRNA binding at two hot spot regions, irrespectively of where these mutants are placed on the distinct U2AF2 domains. Complementarily, NWA traced the existence of cross-communication pathways, connecting each mutation site to these recognition hot spots, whose strength is altered by the mutations. Our outcomes suggest the existence of a structural/dynamical interplay of the two U2AF2's RRMs underlying the recognition of the polypyrimidine tract and reveal that the cancer-associated mutations affect the polypyrimidine selection by altering the RRMs' cooperativity. This mechanism may be shared by other RNA binding proteins hallmarked, like U2AF2, by multidomain architecture and high plasticity.
Insights
Cancer-associated mutations in the U2AF2 splicing factor disrupt polypyrimidine recognition by altering RNA recognition motif (RRM) cooperativity. This impacts splicing fidelity and may offer therapeutic targets.
Area of Science:
- Molecular Biology
- Biophysics
- Computational Biology
Background:
- U2AF2 is a critical splicing factor ensuring mRNA processing accuracy.
- Mutations in U2AF2 are linked to various cancers, but their effect on function is unknown.
- Polypyrimidine recognition by U2AF2 is essential for splicing fidelity.
Purpose of the Study:
- Investigate the impact of cancer-associated U2AF2 mutations on polypyrimidine recognition.
- Elucidate the molecular mechanisms by which mutations affect U2AF2 function.
- Understand the structural and dynamical basis of polypyrimidine selection.
Main Methods:
- All-atom molecular dynamics (MD) simulations (18 μs).
- Dynamical network theory analysis (NWA).
- Studied wild-type U2AF2 and six common cancer mutants bound to poly-U RNA.
Main Results:
- Mutations affect pre-mRNA binding at two key hot spots, regardless of mutation location.
- NWA identified altered cross-communication pathways between mutation sites and binding hot spots.
- Cancer mutations disrupt the cooperative interplay between U2AF2's RRMs.
Conclusions:
- A structural/dynamical interplay between U2AF2's RRMs is crucial for polypyrimidine tract recognition.
- Cancer-associated mutations impair polypyrimidine selection by altering RRM cooperativity.
- This mechanism may apply to other multi-domain, plastic RNA-binding proteins.
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