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Inducible Co-Stimulator (ICOS) as a potential therapeutic target for anti-cancer therapy
Florent Amatore1, Laurent Gorvel1, Daniel Olive1
1a Centre de recherche en Cancérologie de Marseille, INSERM U1068, CNRS U7258 , Aix Marseille Université, Institut Paoli - Calmettes , Marseille , France.
Introduction:
The recent success of checkpoint-inhibitors in cancer treatment paved the way for the development of new strategies of agonist and antagonist agents against B7 superfamily members. Inducible Co-Stimulator (ICOS), a co-stimulatory receptor for T-cell enhancement, arouses interest. Areas covered: We performed an extensive literature search with PUBMED using the keywords 'ICOS' and 'cancer' to discuss its involvement in oncogenesis, its expression in different malignancies, and its targeting in relevant preclinical studies. We also searched the Clinicaltrials.gov database for recent updates on early phase clinical trials. Expert opinion: ICOS/ICOSL axis has a dual effect and might participate in anti-tumour T cell response as well as a pro-tumour response due to its connection with regulatory T-cells (Tregs) suppressive activity. Therefore, both antagonist and agonist antibodies might be of interest in the targeting ICOS/ICOSL pathway for cancer treatment. In preclinical studies, ICOS agonist monoclonal antibodies (mAbs) have shown to potentiate the effect of inhibitory checkpoint blockade. In contrast, antagonistic anti-ICOS mAbs could not only inhibit lymphoid tumour cells expressing ICOS, but also dampen immunosuppressive Tregs. Two agonist and one antagonist mAbs are evaluated in phase I/II trials. Efficacy, safety, and combination strategies with anti-ICOS agonist or antagonist have yet to be specified.
Insights
The Inducible Co-Stimulator (ICOS) pathway shows dual effects in cancer, potentially aiding anti-tumor responses or promoting tumor growth via regulatory T-cells. Targeting this pathway with ICOS agonists or antagonists offers promising cancer treatment strategies.
Area of Science:
- Immunology
- Oncology
- Cancer Therapeutics
Background:
- Checkpoint inhibitors have advanced cancer treatment, leading to interest in targeting B7 superfamily members.
- Inducible Co-Stimulator (ICOS) is a co-stimulatory receptor crucial for T-cell enhancement.
Purpose of the Study:
- To review the role of ICOS in oncogenesis and its expression in various malignancies.
- To discuss preclinical and clinical studies targeting the ICOS/ICOSL pathway for cancer therapy.
Main Methods:
- Extensive literature search using PUBMED with keywords 'ICOS' and 'cancer'.
- Searched Clinicaltrials.gov for early-phase clinical trial updates.
- Reviewed preclinical studies on ICOS targeting agents.
Main Results:
- The ICOS/ICOSL axis exhibits dual effects, potentially supporting anti-tumor immunity or promoting immunosuppression via regulatory T-cells (Tregs).
- Preclinical studies show ICOS agonist monoclonal antibodies (mAbs) enhance checkpoint blockade efficacy.
- Antagonist anti-ICOS mAbs demonstrated inhibition of ICOS-expressing lymphoid tumors and suppression of Tregs.
Conclusions:
- Both ICOS agonist and antagonist antibodies warrant investigation for cancer treatment.
- Two agonist and one antagonist anti-ICOS mAbs are currently in Phase I/II trials.
- Further research is needed to define the efficacy, safety, and optimal combination strategies for anti-ICOS therapies.
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