IL-4 inhibits TNF-α-mediated osteoclast formation by inhibition of RANKL expression in TNF-α-activated stromal cells and direct inhibition of TNF-α-activated osteoclast precursors via a T-cell-independent mechanism in vivo

被引:55
|
作者
Fujii, Toshiya [1 ]
Kitaura, Hideki [1 ]
Kimura, Keisuke [1 ]
Hakami, Zaki Weli [1 ]
Takano-Yamamoto, Teruko [1 ]
机构
[1] Tohoku Univ, Grad Sch Dent, Div Orthodont & Dentofacial Orthoped, Aoba Ku, Sendai, Miyagi 9808575, Japan
关键词
TNF-alpha; Osteoclast; IL-4; In vivo; TUMOR-NECROSIS-FACTOR; BONE-MARROW MACROPHAGES; PROTEIN-KINASE; INFLAMMATORY OSTEOLYSIS; SELECTIVE INHIBITOR; THERAPEUTIC TARGET; INDUCED ARTHRITIS; INTERLEUKIN-4; DISEASE; LIGAND;
D O I
10.1016/j.bone.2012.06.024
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
It has been reported that osteoclastogenesis is induced by tumor necrosis factor (TNF)-alpha. Interleukin (IL)-4 is the most important cytokine involved in humoral immunity. However, no studies have investigated the effect of IL-4 on TNF-alpha-mediated osteoclast formation in vivo. In this study, we investigated the effect of IL-4 on TNF-alpha-mediated osteoclast formation in vivo. TNF-alpha was administered with and without IL-4 into the supracalvariae of mice. The number of osteoclasts and the levels of mRNA for cathepsin K and tartrate-resistant acid phosphate, both osteoclast markers, in mice administered TNF-alpha and IL-4 were lower than those in mice administered TNF-alpha. alone. The level of tartrate-resistant acid phosphatase form 5b (TRACP5b) as a marker of bone resorption in mice administered both TNF-alpha and IL-4 was also lower. We showed that IL-4 inhibited TNF-alpha-mediated osteoclast formation in osteoclast precursors in vitro. Expression of receptor activator of NF-kappa B ligand (RANKL) in TNF-alpha-activated stromal cells was also inhibited. Furthermore, we investigated whether IL-4 had effects on both stromal cells and osteoclast precursors in TNF-alpha-mediated osteoclast formation in vivo. Using mice whose stromal cells and osteoclast precursors were chimeric for the presence of TNF receptors, IL-4 inhibited TNF-alpha-mediated osteoclast formation in the presence of TNF-alpha-responsive stromal cells, and TNF-alpha-responsive osteoclast precursors in vivo. IL-4 also inhibited TNF-alpha-induced RANKL expression in the presence of TNF-alpha-responsive stromal cells in vivo. This event is dependent on p38 inhibition in vitro. Additionally, IL-4 inhibited TNF-alpha-mediated osteoclast formation in T cell-depleted mice. In summary, we conclude that IL-4 inhibited TNF-alpha-mediated osteoclast formation by inhibiting expression of RANKL in TNF-alpha-activated stromal cells, and directly inhibited TNF-alpha-activated osteoclast precursors in vivo via a T cell-independent mechanism. (C) 2012 Elsevier Inc. All rights reserved.
引用
收藏
页码:771 / 780
页数:10
相关论文
共 50 条
  • [21] IL-4 and IL-13 downregulate rolling adhesion of leukocytes to IL-1 or TNF-α-activated endothelial cells by limiting the interval of E-selectin expression
    Etter, H
    Althaus, R
    Eugster, HP
    Santamaria-Babi, LF
    Weber, L
    Moser, R
    CYTOKINE, 1998, 10 (06) : 395 - 403
  • [22] Activated human B cells stimulate COX-2 expression in follicular dendritic cell-like cells via TNF-α
    Kim, Jini
    Lee, Seungkoo
    Jeoung, Dooil
    Kim, Young-Myeong
    Choe, Jongseon
    MOLECULAR IMMUNOLOGY, 2018, 94 : 1 - 6
  • [23] Norepinephrine-mediated inhibition of antitumor cytotoxic T lymphocyte generation involves a β-adrenergic receptor mechanism and decreased TNF-α gene expression
    Kalinichenko, VV
    Mokyr, MB
    Graf, LH
    Cohen, RL
    Chambers, DA
    JOURNAL OF IMMUNOLOGY, 1999, 163 (05): : 2492 - 2499
  • [24] Glycyrrhetinic acid inhibits ICAM-1 expression via blocking JNK and NF-κB pathways in TNF-α-activated endothelial cells
    Ying-ling Chang
    Chien-lin Chen
    Chao-Lin Kuo
    Bor-chyuan Chen
    Jyh-sheng You
    Acta Pharmacologica Sinica, 2010, 31 : 546 - 553
  • [25] Glycyrrhetinic acid inhibits ICAM-1 expression via blocking JNK and NF-κB pathways in TNF-α-activated endothelial cells
    Chang, Ying-ling
    Chen, Chien-lin
    Kuo, Chao-lin
    Chen, Bor-chyuan
    You, Jyh-sheng
    ACTA PHARMACOLOGICA SINICA, 2010, 31 (05) : 546 - 553
  • [26] TNF-α and IL-4 synergistically increase vascular cell adhesion molecule-1 expression in cultured vascular smooth muscle cells
    Barks, JL
    McQuillan, JJ
    Iademarco, MF
    JOURNAL OF IMMUNOLOGY, 1997, 159 (09): : 4532 - 4538
  • [27] mTOR inhibition potentiates cytotoxicity of Vγ4 γδ T cells via up-regulating NKG2D and TNF-α
    Cao, Guangchao
    Wang, Qian
    Li, Guangqiang
    Meng, Ziyu
    Liu, Hui
    Tong, Jiyu
    Huang, Wanjun
    Liu, Zonghua
    Jia, Yanqiong
    Wei, Jun
    Chi, Hongbo
    Yang, Hengwen
    Zhao, Liqing
    Wu, Zhenzhou
    Hao, Jianlei
    Yin, Zhinan
    JOURNAL OF LEUKOCYTE BIOLOGY, 2016, 100 (05) : 1181 - 1189
  • [28] Structural requirements of flavonoids for inhibition of antigen-induced degranulation, TNF-α and IL-4 production from RBL-2H3 cells
    Mastuda, H
    Morikawa, T
    Ueda, K
    Managi, H
    Yoshikawa, M
    BIOORGANIC & MEDICINAL CHEMISTRY, 2002, 10 (10) : 3123 - 3128
  • [29] Complementary targeting of liposomes to IL-1α and TNF-α activated endothelial cells via the transient expression of VCAM1 and E-selectin
    Gunawan, Rico C.
    Almeda, Dariela
    Auguste, Debra T.
    BIOMATERIALS, 2011, 32 (36) : 9848 - 9853
  • [30] TNF-α and IL-1β-activated human mesenchymal stromal cells increase airway epithelial wound healing in vitro via activation of the epidermal growth factor receptor
    Broekman, Winifred
    Amatngalim, Gimano D.
    De Mooij-Eijk, Yvonne
    Oostendorp, Jaap
    Roelofs, Helene
    Taube, Christian
    Stolk, Jan
    Hiemstra, Pieter S.
    RESPIRATORY RESEARCH, 2016, 17