The Exonuclease TREX1 Constitutes an Innate Immune Checkpoint Limiting cGAS/STING-Mediated Antitumor Immunity

Author:

Lim Junghyun1ORCID,Rodriguez Ryan1ORCID,Williams Katherine1ORCID,Silva John1ORCID,Gutierrez Alan G.1ORCID,Tyler Paul1ORCID,Baharom Faezzah1ORCID,Sun Tao1ORCID,Lin Eva1ORCID,Martin Scott1ORCID,Kayser Brandon D.1ORCID,Johnston Robert J.1ORCID,Mellman Ira1ORCID,Delamarre Lélia1ORCID,West Nathaniel R.1ORCID,Müller Sören1ORCID,Qu Yan1ORCID,Heger Klaus1ORCID

Affiliation:

1. 1Genentech Inc., South San Francisco, California.

Abstract

Abstract The DNA exonuclease three-prime repair exonuclease 1 (TREX1) is critical for preventing autoimmunity in mice and humans by degrading endogenous cytosolic DNA, which otherwise triggers activation of the innate cGAS/STING pathway leading to the production of type I IFNs. As tumor cells are prone to aberrant cytosolic DNA accumulation, we hypothesized that they are critically dependent on TREX1 activity to limit their immunogenicity. Here, we show that in tumor cells, TREX1 restricts spontaneous activation of the cGAS/STING pathway, and the subsequent induction of a type I IFN response. As a result, TREX1 deficiency compromised in vivo tumor growth in mice. This delay in tumor growth depended on a functional immune system, systemic type I IFN signaling, and tumor-intrinsic cGAS expression. Mechanistically, we show that tumor TREX1 loss drove activation of CD8+ T cells and NK cells, prevented CD8+ T-cell exhaustion, and remodeled an immunosuppressive myeloid compartment. Consequently, TREX1 deficiency combined with T-cell–directed immune checkpoint blockade. Collectively, we conclude that TREX1 is essential to limit tumor immunogenicity, and that targeting this innate immune checkpoint remodels the tumor microenvironment and enhances antitumor immunity by itself and in combination with T-cell–targeted therapies. See related article by Toufektchan et al., p. 673

Funder

Genentech

Publisher

American Association for Cancer Research (AACR)

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