Genes-first and phenotypes-first paths to treatment resistance in hematological malignancies

Edoardo Tamellini1, Cristina Frusteri1, Isacco Ferrarini2

  • 1Department of Engineering for Innovation Medicine, University of Verona, Verona, Italy.

Cell Death & Disease
|November 10, 2025
PubMed

Insights

Targeted therapies in hematology often fail due to resistance. This review explores how cancer cells adapt through genetic mutations or non-genetic plasticity, impacting treatment effectiveness.

Area of Science:

  • Hematology
  • Cancer Biology
  • Evolutionary Medicine

Background:

  • Precision medicine has advanced hematology treatments.
  • Treatment resistance remains a significant challenge, leading to therapy failure.
  • Traditional approaches focus on genetic mutations, but non-genetic adaptations are increasingly recognized.

Purpose of the Study:

  • To re-evaluate resistance mechanisms to targeted therapies in hematological malignancies through an evolutionary lens.
  • To highlight the interplay between genetic and non-genetic resistance pathways.
  • To propose strategies to overcome non-genetic resistance for improved disease control.

Main Methods:

  • Narrative review of existing literature.
  • Analysis of resistance mechanisms to kinase inhibitors and BH3 mimetics.
  • Integration of evolutionary biology concepts with cancer treatment resistance.

Main Results:

  • Two primary resistance pathways identified: genes-first (mutations) and phenotypes-first (plasticity).
  • Phenotypic plasticity, independent of mutations, is a key driver of treatment adaptation.
  • TP53 mutations can promote cellular plasticity and phenotypic variability.
  • Both pathways can be triggered by targeted therapies and coexist within patients.

Conclusions:

  • Understanding the dichotomy of resistance pathways is crucial for combating treatment failure.
  • Phenotypes-first resistance mechanisms require novel counteractive strategies.
  • A translational approach is proposed to prolong disease control in hematological cancers by addressing non-genetic adaptations.

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