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Updated: Apr 23, 2026

In Vivo Immunogenicity Screening of Tumor-Derived Extracellular Vesicles by Flow Cytometry of Splenic T Cells
Published on: September 23, 2021
Modeling putative therapeutic implications of exosome exchange between tumor and immune cells
Mingyang Lu1, Bin Huang2, Samir M Hanash3
1Center for Theoretical Biological Physics.
Abstract:
Development of effective strategies to mobilize the immune system as a therapeutic modality in cancer necessitates a better understanding of the contribution of the tumor microenvironment to the complex interplay between cancer cells and the immune response. Recently, effort has been directed at unraveling the functional role of exosomes and their cargo of messengers in this interplay. Exosomes are small vesicles (30-200 nm) that mediate local and long-range communication through the horizontal transfer of information, such as combinations of proteins, mRNAs and microRNAs. Here, we develop a tractable theoretical framework to study the putative role of exosome-mediated cell-cell communication in the cancer-immunity interplay. We reduce the complex interplay into a generic model whose three components are cancer cells, dendritic cells (consisting of precursor, immature, and mature types), and killer cells (consisting of cytotoxic T cells, helper T cells, effector B cells, and natural killer cells). The framework also incorporates the effects of exosome exchange on enhancement/reduction of cell maturation, proliferation, apoptosis, immune recognition, and activation/inhibition. We reveal tristability-possible existence of three cancer states: a low cancer load with intermediate immune level state, an intermediate cancer load with high immune level state, and a high cancer load with low immune-level state, and establish the corresponding effective landscape for the cancer-immunity network. We illustrate how the framework can contribute to the design and assessments of combination therapies.
Insights
This study introduces a theoretical framework to understand how exosomes influence cancer immunity. It reveals three possible cancer states based on the complex interactions between cancer cells and immune cells, aiding combination therapy design.
Area of Science:
- Immunology
- Theoretical Biology
- Cancer Research
Background:
- Effective cancer immunotherapies require understanding the tumor microenvironment's role in cancer-immune interactions.
- Exosomes mediate cell-cell communication via transferring proteins, mRNAs, and microRNAs, influencing this interplay.
Purpose of the Study:
- To develop a theoretical framework modeling exosome-mediated communication in the cancer-immunity network.
- To investigate the impact of exosomes on immune cell dynamics and cancer progression.
Main Methods:
- A generic theoretical model was developed, incorporating cancer cells, dendritic cells (precursor, immature, mature), and killer cells (cytotoxic T cells, helper T cells, effector B cells, natural killer cells).
- The model accounts for exosome effects on cell maturation, proliferation, apoptosis, immune recognition, and activation/inhibition.
Main Results:
- The framework reveals tristability, indicating three potential cancer states: low cancer/intermediate immunity, intermediate cancer/high immunity, and high cancer/low immunity.
- An effective landscape for the cancer-immunity network was established, illustrating these state transitions.
Conclusions:
- The theoretical framework provides insights into exosome-driven cancer-immunity dynamics.
- This model can aid in designing and assessing novel combination cancer therapies targeting exosome-mediated communication.
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