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.

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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