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Adenosine receptors on the immuno-oncology expressway: TIME, perspectives, and translation
Biswanath Majumder1, Santanu Datta1
1Bugworks Research India Pvt. Ltd., Centre for Cellular & Molecular Platforms, National Centre for Biological Sciences, Bangalore, India.
Abstract:
A decade since immune checkpoint inhibitors made a stride in the clinical landscape of oncology, there has been a substantial focus on understanding the response heterogeneity following these therapies. Insights gained from clinical data identified the primary and secondary resistance mechanisms that escape the upfront therapy pressure. Beyond PD-1 and CTLA-4, new checkpoints averting this pressure are under clinical development. Adenosinergic pathways are actively engaged in oncogenic signaling. The main protagonists, CD73, A2AR, and A2BR, span diverse immune subsets of lymphoid and myeloid lineages and have emerged as alternative checkpoints. This review discusses the latest update on immune regulation dynamics of adenosine receptor signaling and their complex interplay with hypoxia in a heterogeneous tumor immune microenvironment (TIME). In this spectrum, we also review the plasticity of A2AR and A2BR in designing new drug candidates, tracing their complex metabolic roots in inducing immune dysfunction. Beyond the existing modalities, the ENT1 and MTAP-loss-MTA axis shows scope for alternative perturbations. The CD39-CD73-A2AR axis plays a central role in the terminal exhaustion of T cells. We highlight the interventions that disrupt the mechanistic context of A2AR and its cooperativity with other suppressors to restore anti-tumor immune functions following inhibition of their multilayered signaling. We capture the ongoing clinical trials and predictive biomarker landscape, along with novel delivery methods, to illustrate the evolving trends in this field. From these perspectives, we discuss how the adenosine axis can widen this new therapeutic avenue and boost the efficacy of CAR-T therapies. Therapeutic cancer vaccines are a new modality in this premise. Finally, an integrated overview of this pathway, along with TIME dynamics, illustrates the barriers and opportunities of combining adenosine signaling inhibitors in clinical trials.
Insights
This review explores the adenosine axis, including CD73, A2AR, and A2BR, as novel immune checkpoints. Targeting these pathways offers new strategies to overcome resistance and enhance cancer immunotherapy efficacy.
Area of Science:
- Oncology
- Immunology
- Pharmacology
Background:
- Immune checkpoint inhibitors (ICIs) have revolutionized cancer treatment, but response heterogeneity and resistance remain significant challenges.
- The adenosine pathway, involving CD73, Adenosine A2A receptor (A2AR), and Adenosine A2B receptor (A2BR), is increasingly recognized as a key regulator of the tumor immune microenvironment (TIME).
- Dysregulation of adenosine signaling contributes to immune suppression and resistance to existing therapies.
Purpose of the Study:
- To review the current understanding of adenosine receptor signaling in regulating anti-tumor immunity.
- To explore the role of the adenosine axis in mediating resistance to cancer therapies.
- To discuss novel therapeutic strategies targeting the adenosine pathway to enhance immunotherapy efficacy.
Main Methods:
- Literature review of preclinical and clinical studies on adenosine signaling in cancer.
- Analysis of immune regulation dynamics and interplay with hypoxia in the TIME.
- Examination of drug candidates targeting adenosine receptors and related pathways.
Main Results:
- The CD39-CD73-A2AR axis is crucial for T cell exhaustion and immune suppression.
- Adenosine receptor signaling, particularly A2AR and A2BR, plays a complex role in immune dysfunction and therapeutic resistance.
- Emerging targets like ENT1 and the MTAP-loss-MTA axis present alternative intervention points.
Conclusions:
- Inhibiting the adenosine axis can restore anti-tumor immune functions and overcome resistance to ICIs.
- Targeting adenosine signaling holds promise for improving the efficacy of CAR-T cell therapies and cancer vaccines.
- Combination strategies involving adenosine signaling inhibitors may represent a significant advancement in cancer immunotherapy.
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