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Author Spotlight: Decoding DNA Repair by Extrachromosomal NHEJ Assay and HR Assays
Published on: February 2, 2024
DNA Repair and Signaling in Immune-Related Cancer Therapy
Sangeeta Kakoti1,2, Hiro Sato2, Siddhartha Laskar3
1Signal Transduction Program, Gunma University Initiative for Advanced Research (GIAR), Maebashi, Japan.
Abstract:
Cancer therapy using immune checkpoint inhibitors (ICIs) is a promising clinical strategy for patients with multiple types of cancer. The expression of programmed cell death ligand-1 (PD-L1), an immune-suppressor ligand, in cancer cells is a factor that influences the efficacy of ICI therapy, particularly in the anti-programmed cell death protein-1 (PD-1)/PD-L1 antibody therapy. PD-L1 expression in cancer cells are associated with tumor mutation burden including microsatellite instability because the accumulation of mutations in the cancer genome can produce abnormal proteins via mutant mRNAs, resulting in neoantigen production and HLA-neoantigen complex presentation in cancer cells. HLA-neoantigen presentation promotes immune activity within tumor environment; therefore, known as hot tumor. Thus, as the fidelity of DNA repair affects the generation of genomic mutations, the status of DNA repair and signaling in cancer cells can be considered prior to ICI therapy. The Cancer Genome Atlas (TCGA) and The Cancer Immunome Atlas (TCIA) database analysis showed that tumor samples harboring mutations in any non-homologous end joining, homologous recombination, or DNA damage signaling genes exhibit high neoantigen levels. Alternatively, an urgent task is to understand how the DNA damage-associated cancer treatments change the status of immune activity in patients because multiple clinical trials on combination therapy are ongoing. Recent studies demonstrated that multiple pathways regulate PD-L1 expression in cancer cells. Here, we summarize the regulation of the immune response to ICI therapy, including PD-L1 expression, and also discuss the potential strategies to improve the efficacy of ICI therapy for poor responders from the viewpoint of DNA damage response before or after DNA damage-associated cancer treatment.
Insights
Immune checkpoint inhibitors (ICIs) show promise in cancer therapy. DNA repair gene mutations in cancer cells correlate with higher neoantigen levels, potentially improving ICI treatment response.
Area of Science:
- Oncology
- Immunology
- Genetics
Background:
- Immune checkpoint inhibitors (ICIs) represent a significant advancement in cancer therapy.
- Programmed cell death ligand-1 (PD-L1) expression on cancer cells impacts ICI efficacy, especially anti-PD-1/PD-L1 therapies.
- PD-L1 expression is linked to tumor mutation burden and neoantigen production, influencing anti-tumor immune responses.
Purpose of the Study:
- To summarize the regulation of immune response to ICI therapy, focusing on PD-L1 expression.
- To explore strategies for enhancing ICI efficacy in non-responders.
- To examine the role of DNA damage response (DDR) in ICI therapy.
Main Methods:
- Analysis of The Cancer Genome Atlas (TCGA) and The Cancer Immunome Atlas (TCIA) databases.
- Review of recent studies on PD-L1 regulation and DNA damage response pathways.
- Synthesis of information on DNA damage-associated cancer treatments and immune activity.
Main Results:
- Mutations in DNA repair genes (non-homologous end joining, homologous recombination, DNA damage signaling) are associated with elevated neoantigen levels.
- High neoantigen levels are characteristic of 'hot tumors' with increased immune activity.
- Multiple pathways regulate PD-L1 expression, offering potential therapeutic targets.
Conclusions:
- The status of DNA repair and signaling in cancer cells is a critical factor to consider before initiating ICI therapy.
- Understanding how DNA damage treatments affect immune activity is crucial for ongoing combination therapy trials.
- Targeting DNA damage response pathways may offer strategies to improve ICI efficacy for patients with poor responses.
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