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Targeting Immune Regulatory Networks to Counteract Immune Suppression in Cancer
Chiara Camisaschi1, Viviana Vallacchi2, Elisabetta Vergani3
1Unit of Immunotherapy of Human Tumors, Fondazione IRCCS Istituto Nazionale dei Tumori, 20133 Milan, Italy. chiara.camisaschi@istitutotumori.mi.it.
Abstract:
The onset of cancer is unavoidably accompanied by suppression of antitumor immunity. This occurs through mechanisms ranging from the progressive accumulation of regulatory immune cells associated with chronic immune stimulation and inflammation, to the expression of immunosuppressive molecules. Some of them are being successfully exploited as therapeutic targets, with impressive clinical results achieved in patients, as in the case of immune checkpoint inhibitors. To limit immune attack, tumor cells exploit specific pathways to render the tumor microenvironment hostile for antitumor effector cells. Local acidification might, in fact, anergize activated T cells and facilitate the accumulation of immune suppressive cells. Moreover, the release of extracellular vesicles by tumor cells can condition distant immune sites contributing to the onset of systemic immune suppression. Understanding which mechanisms may be prevalent in specific cancers or disease stages, and identifying possible strategies to counterbalance would majorly contribute to improving clinical efficacy of cancer immunotherapy. Here, we intend to highlight these mechanisms, how they could be targeted and the tools that might be available in the near future to achieve this goal.
Insights
Cancer triggers immune suppression through various mechanisms, including regulatory cells and immunosuppressive molecules. Targeting these pathways, like with immune checkpoint inhibitors, offers therapeutic potential for enhancing antitumor immunity.
Area of Science:
- Oncology
- Immunology
- Cancer Biology
Background:
- Cancer onset is intrinsically linked to the suppression of antitumor immunity.
- Tumor cells employ diverse strategies to create an immunosuppressive tumor microenvironment.
- Existing therapies like immune checkpoint inhibitors target some of these immunosuppressive mechanisms.
Approach:
- This review highlights key mechanisms of immune suppression in cancer.
- It explores how tumor cells manipulate the microenvironment to evade immune attack.
- The role of local acidification and extracellular vesicles in immune suppression is discussed.
Key Points:
- Accumulation of regulatory immune cells and expression of immunosuppressive molecules contribute to immune evasion.
- Tumor cells induce local acidification and release extracellular vesicles to suppress antitumor responses.
- Understanding these mechanisms is crucial for developing effective cancer immunotherapies.
Conclusions:
- Targeting tumor-induced immune suppression can significantly improve cancer immunotherapy efficacy.
- Future strategies may involve counteracting local acidification and extracellular vesicle-mediated suppression.
- Further research into cancer-specific immune evasion mechanisms will guide novel therapeutic development.
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