Anti-tumor immunity by transcriptional synergy between TLR9 and STING activation

Burcu Temizoz1,2, Kou Hioki1,2, Shingo Kobari3,4

  • 1Division of Vaccine Science, Department of Microbiology and Immunology, The Institute of Medical Science, The University of Tokyo (IMSUT), Tokyo, Japan.

Insights

Combining TLR9 and STING agonists locally enhances anti-tumor immunity by boosting IFNγ and T cell responses. This synergistic approach shows promise for cancer immunotherapy and vaccine adjuvants.

Area of Science:

  • Immunology
  • Cancer Biology
  • Innate Immunity

Background:

  • Toll-like receptor 9 (TLR9) and stimulator of interferon genes (STING) agonists have therapeutic potential but face limitations.
  • TLR9 agonists are weak interferon (IFN) inducers, and STING agonists can promote undesirable type 2 immunity.

Purpose of the Study:

  • To investigate the immunological mechanisms underlying the synergistic effects of combined TLR9 and STING agonists.
  • To explore their efficacy as a monotherapeutic agent for cancer immunotherapy and as a type 1 adjuvant.

Main Methods:

  • Utilized a Pan02 peritoneal dissemination model of pancreatic cancer in mice.
  • Administered TLR9 and STING agonists locally.
  • Analyzed immune cell involvement (CD4 and CD8 T cells) and cytokine production (IL-12, type I IFNs).
  • Conducted re-challenge studies to assess memory responses.

Main Results:

  • Local co-administration of TLR9 and STING agonists synergistically induced potent anti-tumor immunity.
  • Immunity involved CD4 and CD8 T cells, with cooperative action of IL-12 and type I IFNs.
  • Synergism enhanced IL-12p40 production at multiple levels (protein, mRNA, promoter activation).
  • Re-challenge studies indicated protection against secondary tumor challenge via memory responses.

Conclusions:

  • Combined TLR9 and STING agonists offer a promising strategy for cancer immunotherapy by inducing robust type 1 immunity and suppressing type 2 immunity.
  • Local administration and synergistic induction of IL-12 and type I IFNs are critical for anti-tumor efficacy.
  • This dual agonism strategy provides insights into host immune regulation and potential therapeutic applications.

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