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Published on: August 1, 2018
Signatures associated with rejection or recurrence in HER-2/neu-positive mammary tumors
Andrea Worschech1, Maciej Kmieciak, Keith L Knutson
1Department of Microbiology and Immunology, Virginia Commonwealth University School of Medicine, Massey Cancer Center, Richmond, VA 23298, USA.
Abstract:
We have previously shown T-cell-mediated rejection of the neu-overexpressing mammary carcinoma cells (MMC) in wild-type FVB mice. However, following rejection of primary tumors, a fraction of animals experienced a recurrence of a neu antigen-negative variant (ANV) of MMC (tumor evasion model) after a long latency period. In the present study, we determined that T cells derived from wild-type FVB mice can specifically recognize MMC by secreting IFN-gamma and can induce apoptosis of MMC in vitro. Neu transgenic (FVBN202) mice develop spontaneous tumors and cannot reject it (tumor tolerance model). To dissect the mechanisms associated with rejection or tolerance of MMC tumors, we compared transcriptional patterns within the tumor microenvironment of MMC undergoing rejection with those that resisted it either because of tumor evasion/antigen loss recurrence (ANV tumors) or because of intrinsic tolerance mechanisms displayed by the transgenic mice. Gene profiling confirmed that immune rejection is primarily mediated through activation of IFN-stimulated genes and T-cell effector mechanisms. The tumor evasion model showed combined activation of Th1 and Th2 with a deviation toward Th2 and humoral immune responses that failed to achieve rejection likely because of lack of target antigen. Interestingly, the tumor tolerance model instead displayed immune suppression pathways through activation of regulatory mechanisms that included in particular the overexpression of interleukin-10 (IL-10), IL-10 receptor, and suppressor of cytokine signaling (SOCS)-1 and SOCS-3. These data provide a road map for the identification of novel biomarkers of immune responsiveness in clinical trials.
Insights
Tumor rejection in mice involves T-cell responses. Some tumors evade rejection by losing antigens, while others are tolerated via immune suppression, highlighting distinct immune evasion and tolerance mechanisms.
Area of Science:
- Immunology
- Oncology
- Genetics
Background:
- T-cell-mediated rejection of neu-overexpressing mammary carcinoma cells (MMC) was previously established in wild-type mice.
- Tumor recurrence, specifically neu antigen-negative variants (ANV), was observed after primary tumor rejection, indicating tumor evasion.
- Neu transgenic mice exhibit tumor tolerance, failing to reject spontaneous MMC.
Purpose of the Study:
- To dissect the mechanisms underlying tumor rejection versus tolerance of MMC.
- To compare transcriptional patterns in the tumor microenvironment of rejected, evaded, and tolerated tumors.
- To identify biomarkers for immune responsiveness in clinical trials.
Main Methods:
- Comparison of transcriptional patterns in the tumor microenvironment.
- Analysis of gene expression in MMC undergoing rejection, ANV recurrence (evasion model), and spontaneous tumors (tolerance model).
- In vitro assessment of T-cell recognition of MMC via IFN-gamma secretion and apoptosis induction.
Main Results:
- Immune rejection is associated with interferon-stimulated genes and T-cell effector mechanisms.
- Tumor evasion (ANV) involves combined Th1/Th2 activation with a Th2 deviation, failing rejection due to antigen loss.
- Tumor tolerance involves immune suppression pathways, including overexpression of IL-10, IL-10 receptor, SOCS-1, and SOCS-3.
Conclusions:
- Distinct transcriptional profiles characterize tumor rejection, evasion, and tolerance.
- Immune evasion involves antigen loss and skewed immune responses.
- Immune tolerance is mediated by specific immune suppression pathways, offering potential biomarker targets.
