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Published on: May 3, 2024
Molecular mechanisms of ATP secretion during immunogenic cell death
11] INSERM, U848, F-94805 Villejuif, France [2] Institut Gustave Roussy, F-94805 Villejuif, France [3] Université Paris Sud/Paris XI, F-94270 Le Kremlin Bicêtre, France.
Abstract:
The immunogenic demise of cancer cells can be induced by various chemotherapeutics, such as anthracyclines and oxaliplatin, and provokes an immune response against tumor-associated antigens. Thus, immunogenic cell death (ICD)-inducing antineoplastic agents stimulate a tumor-specific immune response that determines the long-term success of therapy. The release of ATP from dying cells constitutes one of the three major hallmarks of ICD and occurs independently of the two others, namely, the pre-apoptotic exposure of calreticulin on the cell surface and the postmortem release of high-mobility group box 1 (HMBG1) into the extracellular space. Pre-mortem autophagy is known to be required for the ICD-associated secretion of ATP, implying that autophagy-deficient cancer cells fail to elicit therapy-relevant immune responses in vivo. However, the precise molecular mechanisms whereby ATP is actively secreted in the course of ICD remain elusive. Using a combination of pharmacological screens, silencing experiments and techniques to monitor the subcellular localization of ATP, we show here that, in response to ICD inducers, ATP redistributes from lysosomes to autolysosomes and is secreted by a mechanism that requires the lysosomal protein LAMP1, which translocates to the plasma membrane in a strictly caspase-dependent manner. The secretion of ATP additionally involves the caspase-dependent activation of Rho-associated, coiled-coil containing protein kinase 1 (ROCK1)-mediated, myosin II-dependent cellular blebbing, as well as the opening of pannexin 1 (PANX1) channels, which is also triggered by caspases. Of note, although autophagy and LAMP1 fail to influence PANX1 channel opening, PANX1 is required for the ICD-associated translocation of LAMP1 to the plasma membrane. Altogether, these findings suggest that caspase- and PANX1-dependent lysosomal exocytosis has an essential role in ATP release as triggered by immunogenic chemotherapy.
Insights
Chemotherapy-induced cancer cell death releases ATP via lysosomal exocytosis, a process dependent on LAMP1 and pannexin-1 channels. This mechanism is crucial for triggering anti-tumor immune responses, enhancing cancer therapy effectiveness.
Area of Science:
- Immunology
- Cell Biology
- Oncology
Background:
- Chemotherapy can induce immunogenic cell death (ICD) in cancer cells, stimulating anti-tumor immune responses.
- ATP release is a key hallmark of ICD, essential for therapeutic success.
- The molecular mechanisms of ATP secretion during ICD are not fully understood.
Purpose of the Study:
- To elucidate the molecular mechanisms of ATP secretion during chemotherapy-induced immunogenic cell death.
- To identify key proteins and pathways involved in ATP release.
Main Methods:
- Pharmacological screens
- Gene silencing experiments
- Subcellular ATP localization monitoring
- Analysis of protein translocation and channel activity
Main Results:
- ATP redistributes from lysosomes to autolysosomes and is secreted via lysosomal exocytosis.
- Lysosomal protein LAMP1 translocates to the plasma membrane in a caspase-dependent manner.
- Caspase activation triggers ROCK1-mediated blebbing and pannexin-1 (PANX1) channel opening.
- PANX1 is required for LAMP1 translocation, and both are essential for ATP release.
Conclusions:
- Caspase- and PANX1-dependent lysosomal exocytosis is essential for ATP release during ICD.
- This pathway is critical for initiating therapy-relevant immune responses against tumors.
- Understanding these mechanisms may lead to improved cancer immunotherapies.
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