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Inhibiting autophagy enhanced mitotic catastrophe-mediated anticancer immune responses by regulating the cGAS-STING
Zhaoshi Bai1, Yaling Peng2, Xue'er Xia2
1Jiangsu Cancer Hospital & Jiangsu Institute of Cancer Research & the Affiliated Cancer Hospital of Nanjing Medical University, Nanjing, Jiangsu, 210009, China.
Abstract:
Given the limitations of the response rate and efficacy of immune checkpoint inhibitors (ICIs) in clinical applications, exploring new therapeutic strategies for cancer immunotherapy is necessary. We found that 5-(3,4,5-trimethoxybenzoyl)-4-methyl-2-(p-tolyl)imidazole (BZML), a microtubule-targeting agent, exhibited potent anticancer activity by inducing mitotic catastrophe in A549/Taxol and L929 cells. Nuclear membrane disruption and nuclease reduction provided favorable conditions for cGAS-STING pathway activation in cells with mitotic catastrophe. Similar results were obtained in paclitaxel-, docetaxel- and doxorubicin-induced mitotic catastrophe in various cancer cells. Notably, the surface localization of CALR and MHC-I and the release of HMGB1 were also significantly increased in cells with mitotic catastrophe, but not in apoptotic cells, suggesting that mitotic catastrophe is an immunogenic cell death. Furthermore, activated CD8+T cells enhanced the anticancer effects originating from mitotic catastrophe induced by BZML. Inhibiting the cGAS-STING pathway failed to affect BZML-induced mitotic catastrophe but could inhibit mitotic catastrophe-mediated anticancer immune effects. Interestingly, the expression of p-TBK1 first increased and then declined; however, autophagy inhibition reversed the decrease in p-TBK1 expression and enhanced mitotic catastrophe-mediated anticancer immune effects. Collectively, the inhibition of autophagy can potentiate mitotic catastrophe-mediated anticancer immune effects by regulating the cGAS-STING pathway, which explains why the anticancer immune effects induced by chemotherapeutics have not fully exerted their therapeutic efficacy in some patients and opens a new area of research in cancer immunotherapy.
Insights
A novel microtubule-targeting agent, BZML, induces immunogenic cell death via mitotic catastrophe, enhancing cancer immunotherapy. Inhibiting autophagy potentiates these effects by regulating the cGAS-STING pathway.
Area of Science:
- Oncology
- Immunology
- Cell Biology
Background:
- Immune checkpoint inhibitors (ICIs) have limitations in cancer treatment.
- New therapeutic strategies for cancer immunotherapy are needed.
Purpose of the Study:
- To investigate the anticancer activity of BZML, a microtubule-targeting agent.
- To explore the role of mitotic catastrophe and the cGAS-STING pathway in BZML-induced cancer cell death and immune response.
Main Methods:
- Treatment of cancer cells (A549/Taxol, L929) with BZML and other chemotherapeutics (paclitaxel, docetaxel, doxorubicin).
- Assessment of mitotic catastrophe, nuclear membrane integrity, nuclease activity, and cGAS-STING pathway activation.
- Analysis of cell surface markers (CALR, MHC-I) and HMGB1 release.
- Evaluation of CD8+ T cell-mediated anticancer effects.
- Investigation of autophagy inhibition and its impact on the cGAS-STING pathway and immune response.
Main Results:
- BZML induced potent anticancer activity by causing mitotic catastrophe in cancer cells.
- Mitotic catastrophe, not apoptosis, triggered cGAS-STING pathway activation and immunogenic cell death markers (CALR, MHC-I, HMGB1).
- Activated CD8+ T cells enhanced BZML's anticancer effects, mediated by mitotic catastrophe.
- Inhibition of the cGAS-STING pathway impaired mitotic catastrophe-mediated immune effects, but not mitotic catastrophe itself.
- Autophagy inhibition reversed p-TBK1 decline and boosted mitotic catastrophe-mediated anticancer immune effects.
Conclusions:
- BZML is a promising agent for cancer immunotherapy by inducing immunogenic cell death.
- Mitotic catastrophe is a key mechanism for activating anticancer immune responses.
- Inhibiting autophagy potentiates chemotherapy-induced anticancer immunity by modulating the cGAS-STING pathway.
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