Prospective evaluation of structure-based simulations reveal their ability to predict the impact of kinase mutations

Sukrit Singh1, Vytautas Gapsys2, Matteo Aldeghi3

  • 1Computational and Systems Biology Program, Memorial Sloan Kettering Cancer Center, New York, NY, 10065, USA.

Insights

Structure-based methods accurately predict kinase mutations impacting cancer drug resistance. This study benchmarks these computational approaches against experimental data, offering a valuable tool for precision oncology and drug development.

Area of Science:

  • Biochemistry and Structural Biology
  • Computational Chemistry
  • Precision Oncology

Background:

  • Small molecule kinase inhibitors are crucial cancer therapeutics.
  • Drug resistance due to target mutations limits treatment efficacy.
  • Precision oncology aims to match therapies with tumor mutation profiles, but requires mutation-specific resistance/sensitivity data.

Purpose of the Study:

  • To prospectively benchmark structure-based computational methods for predicting the impact of kinase mutations on inhibitor binding affinity.
  • To compare the accuracy of physics-based simulations, Rosetta, and machine learning models.
  • To establish an experimental and computational benchmark for future method development.

Main Methods:

  • Utilized a NanoBRET reporter assay to measure in-cell kinase inhibitor affinities for Abl kinase mutants.
  • Blindly tested structure-based computational approaches against experimental data.
  • Compared predicted changes in binding free energy (ΔΔG) with experimental measurements.

Main Results:

  • Structure-based methods accurately classified kinase mutations as inhibitor-resistant or -sensitizing.
  • Physics-based simulations showed higher accuracy for mutations distant from the active site.
  • Investigated specific mutations (T315A, L298F) revealing sensitivity to starting configurations and protonation states.

Conclusions:

  • Structure-based computational methods are effective tools for predicting kinase mutation effects on inhibitor binding.
  • These methods can aid in selecting optimal therapies, predicting resistance, and identifying sensitizing mutations.
  • The study provides a benchmark for advancing computational prediction of drug resistance in oncology.

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