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Published on: November 28, 2019
Suppression of T cell responses in the tumor microenvironment
1Department of Cell Biology, Perlmutter Cancer Center, New York University Langone School of Medicine, 550 First Avenue, New York, NY 10016, USA.
Abstract:
The immune system recognizes protein antigens expressed in transformed cells evidenced by accumulation of antigen-specific T cells in tumor and tumor draining lymph nodes. However, despite demonstrable immune response, cancers grow progressively suggesting that priming of antitumor immunity is insufficiently vigorous or that antitumor immunity is suppressed, or both. Compared to virus infection, antitumor T cells are low abundance that likely contributes to tumor escape and enhancement of priming is a long-sought goal of experimental vaccination therapy. Furthermore, patient treatment with antigen-specific T cells can in some cases overcome deficient priming and cause tumor regression supporting the notion that low numbers of T cells permits tumor outgrowth. However, tumor-induced suppression of antitumor immune response is now recognized as a significant factor contributing to cancer growth and reversal of the inhibitory influences within the tumor microenvironment is a major research objective. Multiple cell types and factors can inhibit T cell functions in tumors and may be grouped in two general classes: T cell intrinsic and T cell extrinsic. T cell intrinsic factors are exemplified by T cell expression of cell surface inhibitory signaling receptors that, after contact with cells expressing a cognate ligand, inactivate proximal T Cell Receptor-mediated signal transduction therein rendering T cells dysfunctional. T cell extrinsic factors are more diverse in nature and are produced by tumors and various non-tumor cells in the tumor microenvironment. These include proteins secreted by tumor or stromal cells, highly reactive soluble oxygen and nitrogen species, cytokines, chemokines, gangliosides, and toxic metabolites. These factors may restrict T cell entrance into the tumor parenchyma, cause inactivation of effector phase T cell functions, or induce T cell apoptosis ultimately causing diminished cancer elimination. Here, we review the contributions of inhibitory factors to tumor T cell dysfunction leading to tumor escape.
Insights
Cancer grows despite immune response due to insufficient antitumor T cells and suppression. Overcoming these inhibitory factors is key to enhancing cancer immunity and treatment effectiveness.
Area of Science:
- Immunology
- Oncology
- Cancer Biology
Background:
- The immune system recognizes tumor antigens, leading to T cell accumulation in tumors.
- Despite immune responses, cancers often progress, indicating insufficient priming or immune suppression.
- Antigen-specific T cell therapy can cause tumor regression, highlighting the importance of T cell numbers.
Purpose of the Study:
- To review the mechanisms of T cell dysfunction in the tumor microenvironment.
- To discuss intrinsic and extrinsic factors that inhibit anti-tumor T cell responses.
- To explore how these inhibitory factors contribute to tumor immune escape.
Main Methods:
- Literature review of studies on T cell function and tumor microenvironment.
- Analysis of intrinsic T cell inhibitory mechanisms (e.g., inhibitory receptors).
- Categorization of extrinsic inhibitory factors (e.g., secreted molecules, metabolites).
Main Results:
- T cell dysfunction arises from both intrinsic (e.g., inhibitory receptors) and extrinsic factors.
- Extrinsic factors include secreted proteins, cytokines, metabolites, and reactive oxygen/nitrogen species.
- These factors impede T cell infiltration, function, and survival, promoting tumor growth.
Conclusions:
- Tumor-induced suppression is a significant barrier to effective anti-cancer immunity.
- Reversing inhibitory influences in the tumor microenvironment is a critical therapeutic objective.
- Understanding these inhibitory factors is essential for developing novel cancer immunotherapies.
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