ArticleBreast cancer research : BCR2024
Autophagy is required for mammary tumor recurrence by promoting dormant tumor cell survival following therapy.
Article in Breast cancer research : BCR, 2024. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 15 papers.
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Who cites it
15 citing papers in PubMed.
- Targeting dormant tumor cells to prevent recurrent breast cancer: a randomized phase 2 trial.Nature medicine · 2025Trial
- The sleeping threat: targeting cancer dormancy to transform metastasis therapy.Nature reviews. Cancer · 2026Review
- Targeting tumor dormancy: the next frontier in gastrointestinal stromal tumor therapy.Neoplasia (New York, N.Y.) · 2026Review
- Regulating the dormancy of cancer stem cells: a novel approach to preventing cancer relapse.Cell death & disease · 2026Review
- Targeting dormant cancer cells: ferroptosis as a precision therapeutic strategy.Cellular & molecular biology letters · 2026Review
- The enigmatic role of tumor dormancy cells in gynecologic cancers.Frontiers in immunology · 2026Review
- Intervening on dormancy to prevent breast cancer recurrence.Nature reviews. Clinical oncology · 2026Article
- DTC-Flow: a flow cytometry-based detection platform for characterizing bone marrow disseminated tumor cells in breast cancer.NPJ breast cancer · 2025Article
- Review
- Understanding Tumor Dormancy: from Experimental Models to Mechanisms and Therapeutic Strategies.Biomolecules & therapeutics · 2025Review
- Collagen hydroxylation couples NAD+/NADH dynamics to tumor dormancy and reactivation.Research square · 2025Article
- Bridging the Gap in Breast Cancer Dormancy: Models, Mechanisms, and Translational Challenges.Pharmaceuticals (Basel, Switzerland) · 2025Review
- Targeting the Dependence on PIK3C3-mTORC1 Signaling in Dormancy-Prone Breast Cancer Cells Blunts Metastasis Initiation.Cancer research · 2025Article
- CD44 Marks Dormant Tumor Cells After HER2 Inhibition in Breast Cancer Cells.International journal of molecular sciences · 2025Article
- Sleepyhead, deadly awakening: the dynamics of metastatic organotropism, tumor dormancy and therapeutic implications.Frontiers in oncology · 2025Review
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5 authors.
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Abstract
backgroundMortality from breast cancer is principally due to tumor recurrence. Recurrent breast cancers arise from the pool of residual tumor cells, termed minimal residual disease, that survive treatment and may exist in a dormant state for 20 years or more following treatment of the primary tumor. As recurrent breast cancer is typically incurable, understanding the mechanisms underlying dormant tumor cell survival is a critical priority in breast cancer research. The importance of this goal is further underscored by emerging evidence suggesting that targeting dormant residual tumor cells in early-stage breast cancer patients may be a means to prevent tumor recurrence and its associated mortality. In this regard, the role of autophagy in dormant tumor cell survival and recurrence remains unresolved, with conflicting reports of both pro-survival/recurrence-promoting and pro-death/recurrence-suppressing effects of autophagy inhibition in dormant tumor cells. Resolving this question has important clinical implications.
methodsWe used genetically engineered mouse models that faithfully recapitulate key features of human breast cancer progression, including minimal residual disease, tumor dormancy, and recurrence. We used genetic and pharmacological approaches to inhibit autophagy, including treatment with chloroquine, genetic knockdown of ATG5 or ATG7, or deletion of BECN and determined their effects on dormant tumor cell survival and recurrence.
resultsWe demonstrate that the survival and recurrence of dormant mammary tumor cells following therapy is dependent upon autophagy. We find that autophagy is induced in vivo following HER2 downregulation and remains activated in dormant residual tumor cells. Using genetic and pharmacological approaches we show that inhibiting autophagy by chloroquine administration, ATG5 or ATG7 knockdown, or deletion of a single allele of the tumor suppressor Beclin 1 is sufficient to inhibit mammary tumor recurrence, and that autophagy inhibition results in the death of dormant mammary tumor cells in vivo.
conclusionsOur findings demonstrate a pro-tumorigenic role for autophagy in tumor dormancy and recurrence following therapy, reveal that dormant tumor cells are uniquely reliant upon autophagy for their survival, and indicate that targeting dormant residual tumor cells by inhibiting autophagy impairs tumor recurrence. These studies identify a pharmacological target for a cellular state that is resistant to commonly used anti-neoplastic agents and suggest autophagy inhibition as an approach to reduce dormant minimal residual disease in order to prevent lethal tumor recurrence.
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