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TTK inhibitor OSU13 promotes immunotherapy responses by activating tumor STING
Vijaya Bharti, Amrendra Kumar, Yinchong Wang, Nikhil Roychowdhury, Daniel de Lima Bellan, Beimnet B. Kassaye, Reese Watkins, Marina Capece, Catherine G. Chung, Gerard Hilinski, Anna E. Vilgelm
Vijaya Bharti, Amrendra Kumar, Yinchong Wang, Nikhil Roychowdhury, Daniel de Lima Bellan, Beimnet B. Kassaye, Reese Watkins, Marina Capece, Catherine G. Chung, Gerard Hilinski, Anna E. Vilgelm
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Research Article Oncology

TTK inhibitor OSU13 promotes immunotherapy responses by activating tumor STING

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Abstract

TTK spindle assembly checkpoint kinase is an emerging cancer target. This preclinical study explored the antitumor mechanism of TTK inhibitor OSU13 to define a strategy for clinical development. We observed prominent antitumor activity of OSU13 in melanoma, colon and breast cancer cells, organoids derived from patients with melanoma, and mice bearing colon tumors associated with G2 cell cycle arrest, senescence, and apoptosis. OSU13-treated cells displayed DNA damage and micronuclei that triggered the cytosolic DNA-sensing cGAS/STING pathway. STING was required for the induction of several proteins involved in T cell recruitment and activity. Tumors from OSU13-treated mice showed an increased proportion of T and NK cells and evidence of PD-1/PD-L1 immune checkpoint activation. Combining a low-toxicity dose of OSU13 with anti–PD-1 checkpoint blockade resulted in prominent STING- and CD8+ T cell–dependent tumor inhibition and improved survival. These findings provide a rationale for utilizing TTK inhibitors in combination with immunotherapy in STING-proficient tumors.

Authors

Vijaya Bharti, Amrendra Kumar, Yinchong Wang, Nikhil Roychowdhury, Daniel de Lima Bellan, Beimnet B. Kassaye, Reese Watkins, Marina Capece, Catherine G. Chung, Gerard Hilinski, Anna E. Vilgelm

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Figure 5

OSU13 inhibits tumor growth and increases tumor immune infiltrate.

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OSU13 inhibits tumor growth and increases tumor immune infiltrate.
(A) G...
(A) Growth of MC38 tumors in mice treated with 10 mg/kg OSU13 or vehicle 5 days a week (5 days on/2 days off). Statistical analysis using mixed model. N = 20. (B) Final weight of the tumors from the experiment shown in A. (C) Growth of individual tumors from the experiment shown in A. (D) Dimension reduction analysis of the spectral cytometry data from tumors shown in A. Only CD45+ cells were used for UMAP construction. Red labels indicate the suggested identity of select cell populations based on marker expression shown in E. (E) Expression of indicated immune markers on CD45+ cells from tumors in A. (F and G) Percentages of NK1.1+ cells, CD8+ T cells, and FoxP3+/CD4+ Tregs in total CD45+ tumor infiltrate based on manual gating. (H) Tumor growth in NK cell–depleted (anti-NK1.1), CD8+ T cell–depleted (anti-CD8), or nondepleted (ISO) mice treated with vehicle or 10 mg/kg OSU13 5 days a week. N = 12–13 mice per group. Statistics using mixed model. (I) Expression and gating of indicated phenotype markers in CD8+ T cells from tumors shown in A. (J) Expression and gating of PD-L1 in CD45+ cells from tumors shown in A. (K) Summary of spectral cytometry data showing expression of indicated phenotype markers on CD8+ T cells and total CD45+ cells from tumors in A. *P < 0.05; **P < 0.01; ****P < 0.0001.

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