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CD4+ T cells induce rejection of urothelial tumors after immune checkpoint blockade
Yuji Sato, Jennifer K. Bolzenius, Abdallah M. Eteleeb, Xinming Su, Christopher A. Maher, Jennifer K. Sehn, Vivek K. Arora
Yuji Sato, Jennifer K. Bolzenius, Abdallah M. Eteleeb, Xinming Su, Christopher A. Maher, Jennifer K. Sehn, Vivek K. Arora
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Research Article Immunology Oncology

CD4+ T cells induce rejection of urothelial tumors after immune checkpoint blockade

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Abstract

Immune checkpoint blockade (ICB) provides clinical benefit to a minority of patients with urothelial carcinoma (UC). The role of CD4+ T cells in ICB-induced antitumor activity is not well defined; however, CD4+ T cells are speculated to play a supportive role in the development of CD8+ T cells that kill tumor cells after recognition of tumor antigens presented by MHC class I. To investigate the mechanisms of ICB-induced activity against UC, we developed mouse organoid-based transplantable models that have histologic and genetic similarity to human bladder cancer. We found that ICB can induce tumor rejection and protective immunity with these systems in a manner dependent on CD4+ T cells but not reliant on CD8+ T cells. Evaluation of tumor infiltrates and draining lymph nodes after ICB revealed expansion of IFN-γ–producing CD4+ T cells. Tumor cells in this system express MHC class I, MHC class II, and the IFN-γ receptor (Ifngr1), but none were necessary for ICB-induced tumor rejection. IFN-γ neutralization blocked ICB activity, and, in mice depleted of CD4+ T cells, IFN-γ ectopically expressed in the tumor microenvironment was sufficient to inhibit growth of tumors in which the epithelial compartment lacked Ifngr1. Our findings suggest unappreciated CD4+ T cell–dependent mechanisms of ICB activity, principally mediated through IFN-γ effects on the microenvironment.

Authors

Yuji Sato, Jennifer K. Bolzenius, Abdallah M. Eteleeb, Xinming Su, Christopher A. Maher, Jennifer K. Sehn, Vivek K. Arora

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Figure 4

Immune checkpoint blockade–induced rejection of MCB6C tumors is not dependent on expression of MHC I/II or Infgr1 on tumor cells.

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Immune checkpoint blockade–induced rejection of MCB6C tumors is not depe...
(A) In vivo MHC class I, MHC class II, and PD-L1 expression on MCB6C tumor cells 14 days after injection. (B) B2m expression, as shown by Western blot, of MCB6C using B2m-KO clones grown in vitro. (C) Flow cytometric evaluation of Ifngr1 expression on MCB6C Ifngr1-KO clones in vitro. (D) Flow cytometric evaluation of MHC II on MCB6C MHC II–KO clones in vitro, with and without IFN-γ stimulation. (E) Flow cytometric evaluation of MHC I on MCB6C B2m-KO clones in vitro, with and without IFN-γ stimulation. (F) Flow cytometric evaluation of MHC I, MHC II, and PD-L1 on MCB6C Ifngr1-KO clones in vitro, with and without IFN-γ stimulation. (G) In vivo tumor growth of B2m-, MHC II–, or Ifngr1-KO MCB6C lines with and without combination ICB starting 9 days after tumor injection. Data are shown as mean ± SEM. n = 5 per organoid line per treatment. (H) Flow cytometric evaluation of MHC I, MHC II, and PD-L1 on MCB6C Ifngr1-KO clones from MCB6C tumor cells grown in vivo and harvested on day 11.

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