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Published on: March 10, 2023
Functionalized Lineage Tracing Can Enable the Development of Homogenization-Based Therapeutic Strategies in Cancer
Catherine Gutierrez1,2, Caroline K Vilas3,4, Catherine J Wu1,2,5,6
1Department of Medicine, Harvard Medical School, Boston, MA, United States.
Abstract:
The therapeutic landscape across many cancers has dramatically improved since the introduction of potent targeted agents and immunotherapy. Nonetheless, success of these approaches is too often challenged by the emergence of therapeutic resistance, fueled by intratumoral heterogeneity and the immense evolutionary capacity inherent to cancers. To date, therapeutic strategies have attempted to outpace the evolutionary tempo of cancer but frequently fail, resulting in lack of tumor response and/or relapse. This realization motivates the development of novel therapeutic approaches which constrain evolutionary capacity by reducing the degree of intratumoral heterogeneity prior to treatment. Systematic development of such approaches first requires the ability to comprehensively characterize heterogeneous populations over the course of a perturbation, such as cancer treatment. Within this context, recent advances in functionalized lineage tracing approaches now afford the opportunity to efficiently measure multimodal features of clones within a tumor at single cell resolution, enabling the linkage of these features to clonal fitness over the course of tumor progression and treatment. Collectively, these measurements provide insights into the dynamic and heterogeneous nature of tumors and can thus guide the design of homogenization strategies which aim to funnel heterogeneous cancer cells into known, targetable phenotypic states. We anticipate the development of homogenization therapeutic strategies to better allow for cancer eradication and improved clinical outcomes.
Insights
Cancer evolution drives treatment resistance. New strategies aim to reduce tumor heterogeneity before therapy, improving cancer eradication and patient outcomes.
Area of Science:
- Oncology
- Cancer Evolution
- Genomics
Background:
- Targeted agents and immunotherapy have advanced cancer treatment.
- Therapeutic resistance, driven by intratumoral heterogeneity and cancer evolution, limits treatment success.
- Current strategies often fail to outpace cancer's evolutionary capacity, leading to relapse.
Purpose of the Study:
- To develop novel therapeutic approaches that constrain cancer's evolutionary capacity.
- To reduce intratumoral heterogeneity before initiating cancer treatment.
- To guide the design of cancer homogenization strategies for improved clinical outcomes.
Main Methods:
- Characterizing heterogeneous cancer cell populations during treatment perturbations.
- Utilizing functionalized lineage tracing approaches for comprehensive analysis.
- Measuring multimodal features of tumor clones at single-cell resolution.
Main Results:
- Linking specific clonal features to their fitness during tumor progression and treatment.
- Gaining insights into the dynamic and heterogeneous nature of tumors.
- Enabling the design of strategies to funnel cancer cells into targetable phenotypic states.
Conclusions:
- Reducing intratumoral heterogeneity is a promising strategy to overcome therapeutic resistance.
- Functionalized lineage tracing provides critical data for designing effective cancer therapies.
- Homogenization strategies hold potential for improved cancer eradication and patient survival.
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