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Updated: May 14, 2026

In Vivo Immunogenicity Screening of Tumor-Derived Extracellular Vesicles by Flow Cytometry of Splenic T Cells
Published on: September 23, 2021
Cell-death-associated molecular patterns as determinants of cancer immunogenicity
Sylvain Ladoire1, Dalil Hannani, Marie Vetizou
11 Institut National de la Santé et de la Recherche Médicale , Villejuif, France .
Significance:
Accumulating evidence indicates that the success of some anticancer treatments (select chemotherapies or radiotherapy or trastuzumab) could be related to the stimulation of an anticancer immune response through the induction of an immunogenic tumor cell death (ICD).
Recent Advances:
Preclinical data revealed that dying tumor cells can emit a series of danger signals (so-called "cell-death-associated molecular patterns" (CDAMP)) that will dictate the recruitment and activation of specific inflammatory phagocytes. Hence, tumor cells succumbing to ICD are characterized by specific metabolic and molecular changes that will trigger a hierarchy of polarizing cytokine-producing cells, culminating in the recruitment and reactivation of antitumor interferon-γ-producing effector T cells which contribute to the success of cytotoxic treatments.
Critical Issues:
In this review, we summarize the molecular and cellular bases of this ICD, underscoring the crucial role of high mobility group box 1 protein (HMGB1) and adenosine tri-phosphate, both of which are released from dying tumor cells during ICD and are implicated in the chemotherapy-elicited anticancer immune response.
Future Directions:
We discuss here how such CDAMP could serve as predictive biomarkers that could discriminate immunogenic from nonimmunogenic anti-cancer compounds, and, in case of deficiency, could be compensated by surrogate products to ameliorate the success rate of conventional anticancer treatment modalities.
Insights
Anticancer treatments can enhance immune responses by inducing immunogenic tumor cell death (ICD). Key signals like HMGB1 and ATP released during ICD are crucial for this immune stimulation and treatment success.
Area of Science:
- Immunology
- Oncology
- Molecular Biology
Background:
- Dying tumor cells release danger signals (cell-death-associated molecular patterns, CDAMPs) that recruit and activate inflammatory phagocytes.
- Immunogenic tumor cell death (ICD) involves specific cellular changes that promote antitumor immunity.
- ICD culminates in the recruitment and reactivation of effector T cells, enhancing treatment efficacy.
Purpose of the Study:
- To review the molecular and cellular mechanisms underlying ICD.
- To highlight the role of specific molecules released during ICD.
- To explore the potential of CDAMPs as predictive biomarkers and therapeutic targets.
Main Methods:
- Review of preclinical data on tumor cell death and immune response.
- Summary of molecular and cellular bases of ICD.
- Discussion of the role of HMGB1 and ATP in ICD.
Main Results:
- High mobility group box 1 protein (HMGB1) and adenosine tri-phosphate (ATP) are crucial molecules released during ICD.
- These molecules contribute to the chemotherapy-elicited anticancer immune response.
- ICD involves metabolic and molecular changes that polarize cytokine-producing cells.
Conclusions:
- The success of certain anticancer treatments is linked to ICD-induced immune responses.
- CDAMPs released during ICD can serve as predictive biomarkers for anticancer compounds.
- Surrogate products may compensate for deficiencies in CDAMPs to improve treatment outcomes.
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