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Adenosinergic Pathway: A Hope in the Immunotherapy of Glioblastoma
Ketao Jin1, Chunsen Mao1, Lin Chen1,2
1Department of Colorectal Surgery, Affiliated Jinhua Hospital, Zhejiang University School of Medicine, No. 365, Renmin Eastern Road, Jinhua 321000, Zhejiang, China.
Abstract:
Brain tumors comprise different types of malignancies, most of which are originated from glial cells. Glioblastoma multiforme (GBM) is the most aggressive type of brain tumor with a poor response to conventional therapies and dismal survival rates (15 months) despite multimodal therapies. The development of immunotherapeutic strategies seems to be necessary to enhance the overall survival of GBM patients. So far, the immunotherapies applied in GBM had promising results in the primary phases of clinical trials but failed to continue their beneficial effects in later phases. GBM-microenvironment (GME) is a heterogenic and rigorously immunosuppressive milieu wrapping by an impenetrable blood-brain barrier. Hence, in-depth knowledge about the dominant immunosuppressive mechanisms in the GME could foster GBM immunotherapy. Recently, the adenosinergic pathway (AP) is found to be a major player in the suppression of antitumor immune responses in the GME. Tumor cells evolve to metabolize pro-inflammatory ATP to anti-inflammatory adenosine. Adenosine can suppress immune responses through the signaling of adenosine receptors on immune cells. The preclinical results targeting AP in GBM showed promising results in reinvigorating antitumor responses, overriding chemoresistance, and increasing survival. We reviewed the current GBM immunotherapies and elaborated on the role of AP in the immunopathogenesis, treatment, and even prognosis of GBM. We suggest that future clinical studies should consider this pathway in their combination therapies along with other immunotherapeutic approaches.
Insights
Targeting the adenosinergic pathway (AP) in glioblastoma multiforme (GBM) shows promise for overcoming immune suppression and improving survival. Future immunotherapies should incorporate AP inhibition for better treatment outcomes in brain tumors.
Area of Science:
- Neuro-oncology
- Immunology
- Cancer Biology
Background:
- Glioblastoma multiforme (GBM) is an aggressive brain tumor with poor prognosis.
- Current immunotherapies for GBM face challenges due to the immunosuppressive tumor microenvironment (GME).
Purpose of the Study:
- To review current GBM immunotherapies.
- To elaborate on the role of the adenosinergic pathway (AP) in GBM immunopathogenesis, treatment, and prognosis.
Main Methods:
- Literature review of GBM immunotherapies.
- Analysis of the adenosinergic pathway's role in GBM immune suppression.
- Evaluation of preclinical data targeting the AP in GBM.
Main Results:
- The adenosinergic pathway (AP) is a key immunosuppressive mechanism in the GBM microenvironment (GME).
- Targeting the AP in preclinical GBM models has shown potential in enhancing antitumor responses and survival.
- Adenosine signaling via adenosine receptors suppresses immune cells within the GME.
Conclusions:
- The adenosinergic pathway (AP) is a critical target for improving GBM immunotherapy.
- Future clinical trials should consider combination therapies involving AP inhibition for GBM treatment.
- Understanding GME immunosuppressive mechanisms is crucial for advancing GBM immunotherapy.
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