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Current Advances in Checkpoint Inhibitors: Lessons from Non-Central Nervous System Cancers and Potential for
Natasha Lakin1, Robert Rulach2, Stefan Nowicki2
1Brain Tumour Research Group, Institute of Clinical Neurosciences, Level 1, Learning and Research Building, Southmead Hospital, University of Bristol, Bristol, United Kingdom.
Abstract:
The adaptive immune system depends on the sequence of antigen presentation, activation, and then inhibition to mount a proportionate response to a threat. Tumors evade the immune response partly by suppressing T-cell activity using immune checkpoints. The use of cytotoxic T-lymphocyte-associated protein 4 (CTLA-4), programmed cell death 1 (PD-1), and programmed cell death ligand 1 (PD-L1) antibodies counteract this suppression, thereby enhancing the antitumor activity of the immune system. This approach has proven efficacy in melanoma, renal cancer, and lung cancer. There is growing evidence that the central nervous system is accessible to the immune system in the diseased state. Moreover, glioblastomas (GBMs) attract CTLA-4-expressing T-cells and express PD-L1, which inhibit activation and continuation of a cytotoxic T-cell response, respectively. This may contribute to the evasion of the host immune response by GBM. Trials are in progress to determine if checkpoint inhibitors will be of benefit in GBM. Radiotherapy could also be helpful in promoting inflammation, enhancing the immunogenicity of tumors, disrupting the blood-brain barrier and creating greater antigen release. The combination of radiotherapy and checkpoint inhibitors has been promising in preclinical trials but is yet to show efficacy in humans. In this review, we summarize the mechanism and current evidence for checkpoint inhibitors in gliomas and other solid tumors, examine the rationale of combining radiotherapy with checkpoint inhibitors, and discuss the potential benefits and pitfalls of this approach.
Insights
Immune checkpoint inhibitors, like CTLA-4 and PD-1/PD-L1 antibodies, boost antitumor responses. Combining these with radiotherapy shows promise for brain tumors like glioblastoma, though human trials are ongoing.
Area of Science:
- Immunology
- Oncology
- Neuro-oncology
Background:
- Tumors evade immune responses via T-cell suppression using immune checkpoints.
- Cytotoxic T-lymphocyte-associated protein 4 (CTLA-4), programmed cell death 1 (PD-1), and programmed cell death ligand 1 (PD-L1) antibodies enhance antitumor activity.
- Glioblastomas (GBMs) express PD-L1 and attract CTLA-4 T-cells, contributing to immune evasion.
Purpose of the Study:
- To review checkpoint inhibitors in gliomas and solid tumors.
- To examine the rationale for combining radiotherapy with checkpoint inhibitors.
- To discuss the potential benefits and pitfalls of this combined approach.
Main Methods:
- Review of current evidence on checkpoint inhibitors in gliomas and other solid tumors.
- Analysis of preclinical data on combining radiotherapy with checkpoint inhibitors.
- Discussion of the immunological mechanisms involved.
Main Results:
- Checkpoint inhibitors have shown efficacy in melanoma, renal, and lung cancers.
- Radiotherapy may enhance tumor immunogenicity and antigen release.
- Preclinical trials suggest promise for combining radiotherapy and checkpoint inhibitors, but human data is pending.
Conclusions:
- Checkpoint inhibitors are a key strategy in cancer immunotherapy.
- Combining radiotherapy with checkpoint inhibitors is a potential therapeutic avenue for GBM.
- Further clinical trials are needed to establish the efficacy and safety of combined treatments in humans.
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