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Combination immunotherapy with TLR agonists and checkpoint inhibitors suppresses head and neck cancer
Fumi Sato-Kaneko, Shiyin Yao, Alast Ahmadi, Shannon S. Zhang, Tadashi Hosoya, Megan M. Kaneda, Judith A. Varner, Minya Pu, Karen S. Messer, Cristiana Guiducci, Robert L. Coffman, Kazutaka Kitaura, Takaji Matsutani, Ryuji Suzuki, Dennis A. Carson, Tomoko Hayashi, Ezra E.W. Cohen
Fumi Sato-Kaneko, Shiyin Yao, Alast Ahmadi, Shannon S. Zhang, Tadashi Hosoya, Megan M. Kaneda, Judith A. Varner, Minya Pu, Karen S. Messer, Cristiana Guiducci, Robert L. Coffman, Kazutaka Kitaura, Takaji Matsutani, Ryuji Suzuki, Dennis A. Carson, Tomoko Hayashi, Ezra E.W. Cohen
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Research Article Immunology

Combination immunotherapy with TLR agonists and checkpoint inhibitors suppresses head and neck cancer

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Abstract

Checkpoint inhibitors have demonstrated efficacy in patients with recurrent or metastatic head and neck squamous cell carcinoma (HNSCC). However, the majority of patients do not benefit from these agents. To improve the efficacy of checkpoint inhibitors, intratumoral (i.t.) injection with innate immune activators, TLR7 and TLR9 agonists, were tested along with programmed death-1 receptor (PD-1) blockade. The combination therapy suppressed tumor growth at the primary injected and distant sites in human papillomavirus–negative (HPV-negative) SCC7 and MOC1, and HPV-positive MEER syngeneic mouse models. Abscopal effects and suppression of secondary challenged tumor suggest that local treatment with TLR agonists in combination with anti–PD-1 provided systemic adaptive immunity. I.t. treatment with a TLR7 agonist increased the ratio of M1 to M2 tumor-associated macrophages (TAMs) and promoted the infiltration of tumor-specific IFNγ-producing CD8+ T cells. Anti–PD-1 treatment increased T cell receptor (TCR) clonality of CD8+ T cells in tumors and spleens of treated mice. Collectively, these experiments demonstrate that combination therapy with i.t. delivery of TLR agonists and PD-1 blockade activates TAMs and induces tumor-specific adaptive immune responses, leading to suppression of primary tumor growth and prevention of metastasis in HNSCC models.

Authors

Fumi Sato-Kaneko, Shiyin Yao, Alast Ahmadi, Shannon S. Zhang, Tadashi Hosoya, Megan M. Kaneda, Judith A. Varner, Minya Pu, Karen S. Messer, Cristiana Guiducci, Robert L. Coffman, Kazutaka Kitaura, Takaji Matsutani, Ryuji Suzuki, Dennis A. Carson, Tomoko Hayashi, Ezra E.W. Cohen

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Figure 6

Absence of CD8+ cells abrogated antitumor effects of the combination therapy on primary, distant, and secondary-challenged tumors.

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Absence of CD8+ cells abrogated antitumor effects of the combination the...
(A) Effect of CD8+ cell depletion on the primary tumor growth. Anti-CD8/Lyt2.1 mAb or mouse IgG2a were injected on days –1 and 14. SCC7-bearing mice (n = 6–10/group) were treated with the combination therapy. (B) Tumor volumes on day 18 were compared between vehicle and the combination therapy on injected primary and distant sites. **P < 0.01 (Kruskal-Wallis test with Dunn’s post hoc test). (C) Effects of CD8+ cell depletion on growth of the secondary challenged tumors. SCC7-bearing mice (n = 7–10/group) were treated with the combination therapy. Anti-CD8/Lyt2.1 mAb was i.p. injected on days 28 and 42. The secondary tumors were implanted on day 29. (D) Growth curves of the secondary challenged tumors (left) and Kaplan-Meier survival curves (right). Data represent mean ± SEM. ***P <0.001 (two-way repeated measures ANOVA with Bonferroni post hoc test).

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