The complementarity of DDR, nucleic acids and anti-tumour immunity

Anand V R Kornepati1, Cody M Rogers2, Patrick Sung1,2,3

  • 1Graduate School of Biomedical Sciences, University of Texas Health, San Antonio, TX, USA.

Nature
|July 19, 2023
PubMed

Insights

Immune checkpoint blockade (ICB) therapy shows promise but has limited efficacy. DNA damage repair (DDR) defects can enhance ICB by increasing tumor immunogenicity through nucleic acids, offering new therapeutic strategies.

Area of Science:

  • Oncology
  • Immunology
  • Molecular Biology

Background:

  • Immune checkpoint blockade (ICB) is a key cancer therapy, but its efficacy and biomarkers are not fully understood.
  • Only a subset of cancer patients benefit from ICB, highlighting the need for improved treatment strategies.
  • DNA damage repair (DDR) defects are linked to cancer development and treatment, with implications for immunotherapy.

Approach:

  • This review synthesizes current research on the interplay between DDR, nucleic acid immunogenicity, and ICB efficacy.
  • It examines how DDR defects influence tumor neoantigen production and immune responses.
  • The review also explores how aberrant nucleic acids, generated by DNA damage or replication, can enhance anti-tumor immunity independently of neoantigens.

Key Points:

  • Faulty DDR can create immunogenic neoantigens, potentially improving ICB response.
  • Aberrant nucleic acids from DNA damage can also boost tumor immunogenicity, impacting ICB efficacy.
  • Therapeutic agents like PARP inhibitors can induce immunogenicity by generating nucleic acids.
  • Immunotherapy targets (e.g., cGAS, PD-L1) can interact with DDR pathways, affecting treatment outcomes.

Conclusions:

  • Understanding the complex interactions between DDR, nucleic acid immunogenicity, and ICB is crucial for explaining treatment failures.
  • These insights can reveal novel therapeutic vulnerabilities for cancer treatment.
  • Further research is needed to address key unanswered questions and explore new research directions in this rapidly evolving field.

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