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Updated: May 17, 2025

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Published on: August 21, 2019
Death-ision: the link between cellular resilience and cancer resistance to treatments
Gustavo Baldassarre1, Ivana L de la Serna2, François M Vallette3,4
1Division of Molecular Oncology, Centro di Riferimento Oncologico di Aviano (CRO) IRCCS, National Cancer Institute, Aviano, 33081, Italy. gbaldassarre@cro.it.
Abstract:
One of the key challenges in defeating advanced tumors is the ability of cancer cells to evade the selective pressure imposed by chemotherapy, targeted therapies, immunotherapy and cellular therapies. Both genetic and epigenetic alterations contribute to the development of resistance, allowing cancer cells to survive initially effective treatments. In this narration, we explore how genetic and epigenetic regulatory mechanisms influence the state of tumor cells and their responsiveness to different therapeutic strategies. We further propose that an altered balance between cell growth and cell death is a fundamental driver of drug resistance. Cell death programs exist in various forms, shaped by cell type, triggering factors, and microenvironmental conditions. These processes are governed by temporal and spatial constraints and appear to be more heterogeneous than previously understood. To capture the intricate interplay between death-inducing signals and survival mechanisms, we introduce the concept of Death-ision. This framework highlights the dynamic nature of cell death regulation, determining whether specific cancer cell clones evade or succumb to therapy. Building on this understanding offers promising strategies to counteract resistant clones and enhance therapeutic efficacy. For instance, combining DNMT inhibitors with immune checkpoint blockade may counteract YAP1-driven resistance or the use of transcriptional CDK inhibitors could prevent or overcome chemotherapy resistance. Death-ision aims to provide a deeper understanding of the diversity and evolution of cell death programs, not only at diagnosis but also throughout disease progression and treatment adaptation.
Insights
Cancer cells resist therapy through genetic and epigenetic changes, altering cell death and survival. The new "Death-ision" framework explains how this balance impacts treatment effectiveness and resistance.
Area of Science:
- Oncology
- Molecular Biology
- Cancer Genetics
Background:
- Advanced tumors pose challenges due to cancer cell resistance to various therapies.
- Genetic and epigenetic alterations are key mechanisms driving this treatment resistance.
- Understanding these alterations is crucial for developing effective cancer treatments.
Purpose of the Study:
- To explore how genetic and epigenetic mechanisms influence tumor cell states and therapeutic responses.
- To propose that an altered balance between cell growth and cell death drives drug resistance.
- To introduce the "Death-ision" framework for understanding cell death regulation in cancer.
Main Methods:
- Review and synthesis of current knowledge on genetic and epigenetic resistance mechanisms.
- Conceptual framework development ("Death-ision") to analyze cell death and survival dynamics.
- Exploration of potential therapeutic strategies targeting resistance pathways.
Main Results:
- Genetic and epigenetic alterations contribute significantly to cancer drug resistance.
- An imbalanced cell death and growth dynamic is a fundamental driver of resistance.
- The "Death-ision" framework elucidates the dynamic regulation of cell death programs.
- Specific therapeutic combinations (e.g., DNMT inhibitors with immune checkpoint blockade) show promise.
Conclusions:
- Understanding the heterogeneity of cell death programs is vital for overcoming cancer resistance.
- The "Death-ision" concept provides insights into how cancer clones evade therapy.
- Targeting cell death regulation offers novel strategies to enhance therapeutic efficacy and combat resistance.
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