ReviewJournal of experimental & clinical cancer research : CR2025
Reprogramming the breast tumor immune microenvironment: cold-to-hot transition for enhanced immunotherapy.
Review in Journal of experimental & clinical cancer research : CR, 2025. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 67 papers.
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Who cites it
67 citing papers in PubMed.
- Liquid biopsy reveals the immune status and protein profiles linked to CTC burden and clinical outcomes in metastatic breast cancer.Journal of experimental & clinical cancer research : CR · 2026Trial
- Article
- THBS2: the key hub linking breast cancer stroma, immunity, and therapeutic response.Clinical & experimental metastasis · 2026Review
- cGAS-STING pathway activation drives the cold-to-hot tumor transition and sensitizes immunotherapy.Cancer biology & medicine · 2026Review
- Targeting tryptophan metabolism in breast cancer immunotherapy: Recent advances and future prospects.Translational oncology · 2026Review
- Bacterial-based cancer therapy: mechanisms and therapeutic advances.Molecular biomedicine · 2026Review
- Review
- Metabolic remodeling of endometriosis microenvironment: Energy stress and immune evasion.iScience · 2026Review
- Glycosylation-related gene risk model and functional validation of OSTC and TUBA1C in lung adenocarcinoma.Respiratory research · 2026Article
- Review
- Anthraquinone-Loaded Liposomes for TAM Reprogramming in Triple-Negative Breast Cancer: Mechanistic Rationale, Delivery Logic, and Translational Challenges.Pharmaceutics · 2026Review
- Integrated pan-cancer profiling highlights OSR2 as a prognostic indicator and immune-associated biomarker.Discover oncology · 2026Article
- Article
- Vascular SMC-like CAF-derived THBS1 drives tumor-associated neutrophil recruitment to orchestrate an immunosuppressive microenvironment in gastric cancer.Cell death & disease · 2026Article
- Biomimetic nanomodulator reprograms glycolysis-driven immunosuppressive microenvironment to potentiate photothermal immunotherapy in cold tumors.Materials today. Bio · 2026Article
- Targeting tumor dormancy: the next frontier in gastrointestinal stromal tumor therapy.Neoplasia (New York, N.Y.) · 2026Review
- Breast Cancer Milieu Maneuvers Cancer-Associated Macrophages to Synergize Neoplastic Repertoires.Cancers · 2026Review
- Breast cancer immunotherapy: mechanisms of immune evasion, biomarkers, and emerging therapeutic strategies.Molecular cancer · 2026Review
- Optimizing next-generation CAR-macrophages against solid tumors: challenges and potential strategies.Journal of hematology & oncology · 2026Review
- Multidimensional single-cell analysis of the molecular characteristics and functional pathways of Regulatory T cells in the microenvironment of HR+ breast cancer.Discover oncology · 2026Article
7 more citing papers are in PubMed but not listed here.
Corrections and comments
PubMed lists nothing against this paper. Absence here is not a guarantee, only a check that was made.
Authors and funding
8 authors.
Funding
No grant is acknowledged in the PubMed record.
Abstract
This review discusses reprogramming the breast tumor immune microenvironment from an immunosuppressive cold state to an immunologically active hot state. A complex interplay is revealed, in which the accumulation of metabolic byproducts-such as lactate, reactive oxygen species (ROS), and ammonia-is shown to impair T-cell function and promote tumor immune escape. It is demonstrated that the tumor microenvironment (TME) is dominated by immunosuppressive cytokines, including interleukin-10 (IL-10), transforming growth factorβ (TGFβ), and IL-35. Notably, IL-35 is produced by regulatory T cells and breast cancer cells. The conversion of conventional T cells into IL-35-producing induced regulatory T cells, along with the inhibition of pro-inflammatory cytokine secretion, contributes to the suppression of anti-tumor immunity. It is further demonstrated that key immune checkpoint molecules-such as PD-1, PDL1, CTLA-4, TIM-3, LAG-3, and TIGIT-are upregulated within the TME, leading to Tcell exhaustion and diminished immune responses. The blockade of these checkpoints is shown to restore T-cell functionality and is proposed as a strategy to convert cold tumors into hot ones with robust effector cell infiltration. The therapeutic potential of chimeric antigen receptor (CAR)T cell therapy is also explored, and targeting specific tumor-associated antigens, such as glycoproteins and receptor tyrosine kinases, is highlighted. It is suggested that CART cell efficacy can be enhanced by combining these cells with immune checkpoint inhibitors and other immunomodulatory agents, thereby overcoming the barriers imposed by the immunosuppressive TME. Moreover, the role of the microbiome in regulating estrogen metabolism and systemic inflammation is reviewed. Alterations in the gut microbiota are shown to affect the TME, and microbiome-based interventions are proposed as an additional means to facilitate the cold-to-hot transition. It is concluded that by targeting the metabolic and immunological pathways that underpin immune suppression-through combination strategies involving checkpoint blockade, CART cell therapies, and microbiome modulation-the conversion of the breast TME from cold to hot can be achieved. This reprogramming is anticipated to enhance immune cell infiltration and function, thereby improving the overall efficacy of immunotherapies and leading to better clinical outcomes for breast cancer patients.
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