Lentinula Edodes Mycelia extract regulates the function of antigen-presenting cells to activate immune cells and prevent tumor-induced deterioration of immune function

被引:0
作者
Shota Kajiyama
Takahiro Nagatake
Satoru Ishikawa
Koji Hosomi
Yuki Shimada
Yasunori Matsui
Jun Kunisawa
机构
[1] National Institutes of Biomedical Innovation,Laboratory of Vaccine Materials and Laboratory of Gut Environmental System, Microbial Research Center for Health and Medicine
[2] Health and Nutrition (NIBIOHN),Graduate School of Pharmaceutical Sciences
[3] Osaka University,Central R & D Laboratory
[4] Kobayashi Pharmaceutical Co.,Laboratory of Functional Anatomy, Department of Life Sciences, School of Agriculture
[5] Ltd,Department of Microbiology and Immunology
[6] Meiji University,International Vaccine Design Center, The Institute of Medical Science
[7] Kobe University Graduate School of Medicine,Graduate School of Medicine, Graduate School of Dentistry, Graduate School of Science
[8] The University of Tokyo,undefined
[9] Osaka University,undefined
来源
BMC Complementary Medicine and Therapies | / 23卷
关键词
Dendritic cells; Macrophages; Antigen-presenting cells; Immunotherapy;
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摘要
Immune cell activation is essential for cancer rejection; however, the tumor microenvironment leads to deterioration of immune function, which enables cancer cells to survive and proliferate. We previously reported that oral ingestion of Lentinula Edodes Mycelia (L.E.M.) extract enhances the tumor antigen-specific T-cell response and exerts an antitumor effect in a tumor-bearing mouse model. In this study, we focused on antigen-presenting cells (APCs) located upstream of the immune system, induced a T-cell response, then examined the impact of L.E.M. extract on the APCs. L.E.M. extract enhanced the expression of MHC-I, MHC-II, CD86, CD80, and CD40 in bone marrow-derived dendritic cells (DCs) and strongly induced the production of IL-12. L.E.M.-stimulated DCs enhanced IFN-γ production from CD8+ T cells and induced their differentiation into effector cells. Furthermore, L.E.M. extract promoted IL-12 production and suppressed the production of IL-10 and TGF-β by transforming bone marrow-derived macrophages into M1-like macrophages. Furthermore, in a B16F10 melanoma inoculation model, DCs in the spleen were decreased and their activation was suppressed by the presence of cancer; however, ingestion of L.E.M. extract prevented this functional deterioration of DCs. In the spleen of cancer-bearing mice, the number of CD11b− F4/80+ macrophages in a hypoactivated state was also increased, whereas L.E.M. extract suppressed the increase of such macrophages. These findings suggest that L.E.M. extract may exhibit an antitumor immune response by regulating the function of APCs to induce cytotoxic T lymphocytes, as well as by suppressing the decline in antigen-presenting cell activity caused by the presence of cancer.
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  • [1] Parkin J(2001)An overview of the immune system Lancet 357 1777-89
  • [2] Cohen B(2002)Cancer immunoediting: from immunosurveillance to tumor escape Nat Immunol 3 991-8
  • [3] Dunn GP(2013)Oncology meets immunology: the cancer-immunity cycle Immunity 39 1-10
  • [4] Bruce AT(2018)Mechanisms by which dendritic cells present tumor microparticle antigens to CD8(+) t cells Cancer Immunol Res 6 1057-68
  • [5] Ikeda H(2017)Regulation of CCR7-dependent cell migration through CCR7 homodimer formation Sci Rep 7 8536-6
  • [6] Old LJ(2001)Regulation of T cell immunity by dendritic cells Cell 106 263-428
  • [7] Schreiber RD(1984)Antigen-presenting function of the macrophage Annu Rev Immunol 2 395-3
  • [8] Chen DS(2007)Antigen presentation the macrophage way Cell 131 641-70
  • [9] Mellman I(2011)Cancer immunoediting: integrating immunity’s roles in cancer suppression and promotion Science 331 1565-67
  • [10] Ma J(2019)Cancer immunoediting and resistance to T cell-based immunotherapy Nat Rev Clin Oncol 16 151-18