Cancer-associated fibroblast-targeted strategy enhances antitumor immune responses in dendritic cell-based vaccine

被引:90
作者
Ohshio, Yasuhiko [1 ]
Teramoto, Koji [2 ]
Hanaoka, Jun [1 ]
Tezuka, Noriaki [1 ]
Itoh, Yasushi [3 ]
Asai, Tohru [1 ]
Daigo, Yataro [2 ]
Ogasawara, Kazumasa [3 ]
机构
[1] Shiga Univ Med Sci, Dept Surg, Otsu, Shiga 5202192, Japan
[2] Shiga Univ Med Sci, Dept Med Oncol, Otsu, Shiga 5202192, Japan
[3] Shiga Univ Med Sci, Dept Pathol, Otsu, Shiga 5202192, Japan
关键词
Cancer-associated fibroblasts; dendritic cell-based vaccine immunotherapy; suppressor immune cells; tranilast; tumor microenvironment; REGULATORY T-CELLS; PROMOTE TUMOR-GROWTH; ACTIVATION PROTEIN; STROMAL FIBROBLASTS; COLLAGEN-SYNTHESIS; TRANILAST; PROLIFERATION; PROGRESSION; MICROENVIRONMENT; INHIBITION;
D O I
10.1111/cas.12584
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Given the close interaction between tumor cells and stromal cells in the tumor microenvironment (TME), TME-targeted strategies would be promising for developing integrated cancer immunotherapy. Cancer-associated fibroblasts (CAFs) are the dominant stromal component, playing critical roles in generation of the pro-tumorigenic TME. We focused on the immunosuppressive trait of CAFs, and systematically explored the alteration of tumor-associated immune responses by CAF-targeted therapy. C57BL/6 mice s.c. bearing syngeneic E.G7 lymphoma, LLC1 Lewis lung cancer, or B16F1 melanoma were treated with an anti-fibrotic agent, tranilast, to inhibit CAF function. The infiltration of immune suppressor cell types, including regulatory T cells and myeloid-derived suppressor cells, in the TME was effectively decreased through reduction of stromal cell-derived factor-1, prostaglandin E-2, and transforming growth factor-. In tumor-draining lymph nodes, these immune suppressor cell types were significantly decreased, leading to activation of tumor-associated antigen-specific CD8(+) T cells. In addition, CAF-targeted therapy synergistically enhanced multiple types of systemic antitumor immune responses such as the cytotoxic CD8(+) T cell response, natural killer activity, and antitumor humoral immunity in combination with dendritic cell-based vaccines; however, the suppressive effect on tumor growth was not observed in tumor-bearing SCID mice. These data indicate that systemic antitumor immune responses by various immunologic cell types are required to bring out the efficacy of CAF-targeted therapy, and these effects are enhanced when combined with effector-stimulatory immunotherapy such as dendritic cell-based vaccines. Our mouse model provides a novel rationale with TME-targeted strategy for the development of cell-based cancer immunotherapy.
引用
收藏
页码:134 / 142
页数:9
相关论文
共 42 条
[1]   Melanoma-associated fibroblasts modulate NK cell phenotype and antitumor cytotoxicity [J].
Balsamo, Mirna ;
Scordamaglia, Francesca ;
Pietra, Gabriella ;
Manzini, Claudia ;
Cantoni, Claudia ;
Boitano, Monica ;
Queirolo, Paola ;
Vermi, William ;
Facchetti, Fabio ;
Moretta, Alessandro ;
Moretta, Lorenzo ;
Mingari, Maria Cristina ;
Vitale, Massimo .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2009, 106 (49) :20847-20852
[2]   The role of tumour-associated macrophages in tumour progression: implications for new anticancer therapies [J].
Bingle, L ;
Brown, NJ ;
Lewis, CE .
JOURNAL OF PATHOLOGY, 2002, 196 (03) :254-265
[3]   Specific recruitment of regulatory T cells in ovarian carcinoma fosters immune privilege and predicts reduced survival [J].
Curiel, TJ ;
Coukos, G ;
Zou, LH ;
Alvarez, X ;
Cheng, P ;
Mottram, P ;
Evdemon-Hogan, M ;
Conejo-Garcia, JR ;
Zhang, L ;
Burow, M ;
Zhu, Y ;
Wei, S ;
Kryczek, I ;
Daniel, B ;
Gordon, A ;
Myers, L ;
Lackner, A ;
Disis, ML ;
Knutson, KL ;
Chen, LP ;
Zou, WP .
NATURE MEDICINE, 2004, 10 (09) :942-949
[4]   Cancer Microenvironment and Cancer Vaccine [J].
Ding, Zhen-Yu ;
Zou, Xue-Lin ;
Wei, Yu-Quan .
CANCER MICROENVIRONMENT, 2012, 5 (03) :333-344
[5]   CXCL12 Mediates Immunosuppression in the Lymphoma Microenvironment after Allogeneic Transplantation of Hematopoietic Cells [J].
Duerr, Christoph ;
Pfeifer, Dietmar ;
Claus, Rainer ;
Schmitt-Graeff, Annette ;
Gerlach, Ulrike V. ;
Graeser, Ralph ;
Krueger, Sophie ;
Gerbitz, Armin ;
Negrin, Robert S. ;
Finke, Juergen ;
Zeiser, Robert .
CANCER RESEARCH, 2010, 70 (24) :10170-10181
[6]   Inhibition of Transforming Growth Factor-β-Mediated Immunosuppression in Tumor-Draining Lymph Nodes Augments Antitumor Responses by Various Immunologic Cell Types [J].
Fujita, Takuya ;
Teramoto, Koji ;
Ozaki, Yoshitomo ;
Hanaoka, Jun ;
Tezuka, Noriaki ;
Itoh, Yasushi ;
Asai, Tohru ;
Fujino, Shozo ;
Kontani, Keiichi ;
Ogasawara, Kazumasa .
CANCER RESEARCH, 2009, 69 (12) :5142-5150
[7]   Regulation of the anti-tumour immune response by cancer-associated fibroblasts [J].
Harper, James ;
Sainson, Richard C. A. .
SEMINARS IN CANCER BIOLOGY, 2014, 25 :69-77
[8]   Inhibition by tranilast of nifedipine-induced proliferation of cultured human gingival fibroblasts [J].
Hattori, T ;
Wang, PL .
EUROPEAN JOURNAL OF PHARMACOLOGY, 2004, 498 (1-3) :79-81
[9]   A new population of myeloid-derived suppressor cells in hepatocellular carcinoma patients induces CD4+CD25+Foxp3+ T cells [J].
Hoechst, Bastian ;
Ormandy, Lars A. ;
Ballmaier, Matthias ;
Lehner, Frank ;
Krueger, Christine ;
Manns, Michael P. ;
Greten, Tim F. ;
Korangy, Firouzeh .
GASTROENTEROLOGY, 2008, 135 (01) :234-243
[10]   Inhibitory effects of tranilast on the proliferation and functions of human pterygium-derived fibroblasts [J].
Isaji, M ;
Kikuchi, S ;
Miyata, H ;
Ajisawa, Y ;
Araki-Inazawa, K ;
Tsukamoto, Y ;
Amano, Y .
CORNEA, 2000, 19 (03) :364-368