Phosphoproteomics identifies determinants of PAK inhibitor sensitivity in leukaemia cells

Pedro Casado1, Santiago Marfa2, Marym M Hadi2

  • 1Centre for Cancer Evolution, Barts Cancer Institute, Queen Mary University of London, London, EC1M6BQ, UK. p.m.casado-irquierdo@qmul.ac.uk.

Abstract

Insights

P21 activated kinase inhibitors (PAKi) show promise for treating acute myeloid leukaemia (AML). This study reveals PF-3758309 effectively targets AML cells by inhibiting key pathways and identifies PHF2 phosphorylation as a predictive biomarker for personalized treatment.

Area of Science:

  • Oncology
  • Molecular Biology
  • Pharmacology

Background:

  • P21 activated kinases (PAK) are crucial in cancer signaling and are targeted by PAK inhibitors (PAKi) for anticancer therapy.
  • Limited understanding of PAKi mechanisms hinders clinical application, necessitating further research in acute myeloid leukaemia (AML).

Purpose of the Study:

  • To characterize the functional and molecular responses to PAK inhibitors (PF-3758309, FRAX-486, IPA-3) in AML models.
  • To identify biochemical pathways affected by PAKi in AML and discover determinants of treatment response in patient samples.

Main Methods:

  • Integrated phosphoproteomics, proteomics, and gene dependency data in AML cell lines and primary patient cells.
  • Assessed PAKi effects on cell cycle, proliferation, differentiation, and apoptosis.
  • Utilized machine learning on phosphoproteomics data to predict ex vivo response and identify biomarkers in AML patient samples.

Main Results:

  • PAK1 activation predicts poor prognosis in AML; PF-3758309 demonstrated significant efficacy in reducing proliferation and inducing apoptosis.
  • PF-3758309 inhibited PAK, AMPK, and PKCA, reduced c-MYC activity, and affected the FLT3 pathway in relevant AML subtypes.
  • Machine learning models accurately predicted PF-3758309 response, identifying PHF2 phosphorylation at Ser705 as a key biomarker.

Conclusions:

  • Defined the comprehensive proteomic, molecular, and functional responses of AML cells to PF-3758309.
  • Suggests a pathway for personalizing AML treatment strategies using PAK inhibitors based on identified biomarkers.

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