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.
Abstract:
Despite the outstanding achievements of precision medicine in hematology, many targeted therapies eventually fail due to the emergence of resistance mechanisms. Traditionally, a genocentric approach has been adopted to uncover the molecular underpinnings of treatment resistance. This has contributed to identifying resistance gene mutations and designing novel therapeutic molecules with increased potency for the mutant target. However, over the last five years, additional non-genetic adaptations have become increasingly recognized as crucial promoters of treatment resistance. In parallel, emerging works in the field of evolutionary biology suggest that advantageous phenotypic traits appear most often due to cell-intrinsic phenotypic plasticity and can arise independently of gene mutations. In selected cases, single genetic abnormalities such as those involving TP53 can prime human cells for plasticity and facilitate phenotypic variability. In this narrative review, we retrace the resistance mechanisms to targeted therapies in the framework of these novel evolutionary concepts. We highlight the dichotomy between genes-first and phenotypes-first pathways of treatment adaptation, with the former being driven by traditional single-point mutations and the latter initiated by the phenotypic diversity and the high-level plasticity of cancer cells. Focusing on resistance mechanisms to kinase inhibitors and BH3 mimetics in leukemias and lymphomas, we describe how each drug can trigger both escape routes, which may even coexist within the tumor bulk of individual patients. Lastly, we provide a three-step translational perspective on how to counteract phenotypes-first resistance mechanisms, with the aim of prolonging disease control in hematological malignancies.
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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