Targeting Cytosolic Nucleic Acid-Sensing Pathways for Cancer Immunotherapies

Sandra Iurescia1, Daniela Fioretti1, Monica Rinaldi1

  • 1Department of Biomedical Sciences, Institute of Translational Pharmacology, National Research Council, Rome, Italy.

Insights

The innate immune system, using pattern recognition receptors (PRRs), detects danger signals from cancer cells. Targeting these nucleic acid-sensing pathways shows promise for novel cancer immunotherapies.

Area of Science:

  • Immunology
  • Oncology
  • Molecular Biology

Background:

  • The innate immune system, utilizing pattern recognition receptors (PRRs), acts as a first defense against pathogens and in cancer immunosurveillance.
  • Cytosolic PRRs detect damage-associated molecular patterns (DAMPs), such as nucleic acids (NA) from dying or cancerous cells, initiating immune responses.
  • These DAMPs are crucial for shaping adaptive immunity, influencing cancer immunosurveillance and tumor rejection.

Purpose of the Study:

  • To review the targeting of cytosolic nucleic acid-sensing pathways, specifically cGAS-STING and RIG-I-MAVS, for cancer treatment.
  • To highlight the role of these pathways in responding to nucleic acids released by cancer cells.
  • To discuss preclinical and clinical applications of targeting these pathways in oncology.

Main Methods:

  • Review of preclinical translational research on targeting cGAS-STING and RIG-I-MAVS pathways in cancer.
  • Analysis of recent clinical trials involving agonists of cytosolic NA-sensing pathways.
  • Discussion of how PRRs recognize nucleic acids as DAMPs in cancer biology and vaccination.

Main Results:

  • Nucleic acid-sensing pathways are involved in anti-tumor responses and are attractive drug targets.
  • Agonists of these pathways can induce cancer cell death and recruit immune cells to the tumor microenvironment.
  • Clinical trials are actively exploring these pathways for cancer treatment applications.

Conclusions:

  • Targeting cytosolic nucleic acid-sensing pathways represents a promising strategy for cancer immunotherapy.
  • The cGAS-STING and RIG-I-MAVS pathways are key targets in ongoing preclinical and clinical research.
  • Modulating innate immune responses through NA-sensing pathways holds potential for enhancing anti-tumor immunity and tumor rejection.

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