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Diacylglycerol kinases in cancer
Isabel Mérida1, Pedro Torres-Ayuso1, Antonia Ávila-Flores1
1Department of Immunology and Oncology, Centro Nacional de Biotecnología (CNB-CSIC), E-28049, Madrid, Spain.
Abstract:
Diacylglycerol kinases (DGK) are a family of enzymes that catalyze the transformation of diacylglycerol into phosphatidic acid. In T lymphocytes, DGKα and ζ limit the activation of the PLCγ/Ras/ERK axis, providing a critical checkpoint to inhibit T cell responses. Upregulation of these isoforms limits Ras activation, leading to hypo-responsive, anergic states similar to those caused by tumors. Recent studies have identified DGKα upregulation in tumor lymphocyte infiltrates, and cells from DGKα and ζ deficient mice show enhanced antitumor activity, suggesting that limitation of DAG based signals by DGK is used by tumors to evade immune attack. DGKα expression is low or even absent in other healthy cells like melanocytes, hepatocytes or neurons. Expression of this isoform, nevertheless is upregulated in melanoma, hepatocarcinoma and glioblastoma where DGKα contributes to the acquisition of tumor metastatic traits. A model thus emerges where tumor milieu fosters DGKα expression in tumors as well as in tumor infiltrating lymphocytes with opposite consequences. Here we review the mechanisms and targets that facilitate tumor "addiction" to DGKα, and discuss its relevance in the more advanced forms of cancer for tumor immune evasion. A better knowledge of this function offers a new perspective in the search of novel approaches to prevent inhibition of immune attack in cancer. Part of the failure in clinical progress may be attributed to the complexity of the tumor/T lymphocyte interaction. As they develop, tumors use a number of mechanisms to drive endogenous, tumor reactive T cells to a general state of hyporesponsiveness or anergy. A better knowledge of the molecular mechanisms that tumors use to trigger T cell anergic states will greatly help in the advance of immunotherapy research.
Insights
Diacylglycerol kinases (DGK) enzymes, particularly DGKα, are upregulated in tumors, promoting immune evasion and cancer metastasis. Inhibiting DGKα may enhance antitumor immunity and overcome T cell anergy in advanced cancers.
Area of Science:
- Immunology
- Molecular Biology
- Oncology
Background:
- Diacylglycerol kinases (DGK) regulate T cell activation by converting diacylglycerol to phosphatidic acid.
- DGKα and DGKζ isoforms are critical checkpoints that inhibit T cell responses by limiting the PLCγ/Ras/ERK pathway.
- Tumors exploit DGKα to induce T cell hyporesponsiveness and evade immune attack.
Purpose of the Study:
- To review the mechanisms by which tumors utilize DGKα for immune evasion.
- To discuss the role of DGKα in promoting tumor metastasis and T cell anergy.
- To highlight the therapeutic potential of targeting DGKα in cancer immunotherapy.
Main Methods:
- Literature review of studies on DGKα function in T cells and cancer.
- Analysis of DGKα expression patterns in healthy tissues versus various cancers.
- Examination of molecular pathways affected by DGKα in tumor-infiltrating lymphocytes.
Main Results:
- DGKα is upregulated in tumor-infiltrating lymphocytes and cancer cells (melanoma, hepatocarcinoma, glioblastoma), contrasting with its low expression in healthy cells.
- Tumor-associated DGKα limits Ras activation, inducing anergic T cells and contributing to metastatic traits.
- DGKα deficiency in mice enhances antitumor activity, suggesting its role in tumor immune evasion.
Conclusions:
- Tumors leverage DGKα to foster anergic T cells and promote metastasis, contributing to immune evasion.
- Targeting DGKα offers a novel strategy to counteract tumor-induced immune suppression.
- Understanding DGKα's role is crucial for advancing cancer immunotherapy and overcoming treatment failures.
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