CTLA4-Ig Directly Inhibits Osteoclastogenesis by Interfering With Intracellular Calcium Oscillations in Bone Marrow Macrophages
JOURNAL OF BONE AND MINERAL RESEARCH
Authors: Okada, Hiroyuki; Kajiya, Hiroshi; Omata, Yasunori; Matsumoto, Takumi; Sato, Yuiko; Kobayashi, Tami; Nakamura, Satoshi; Kaneko, Yosuke; Nakamura, Shinya; Koyama, Takuma; Sudo, Shunichi; Shin, Masashi; Okamoto, Fujio; Watanabe, Hisato; Tachibana, Naohiro; Hirose, Jun; Saito, Taku; Takai, Toshiyuki; Matsumoto, Morio; Nakamura, Masaya; Okabe, Koji; Miyamoto, Takeshi; Tanaka, Sakae
Abstract
CTLA4-Ig (cytotoxic T-lymphocyte antigen 4-immunoglobulin; Abatacept) is a biologic drug for rheumatoid arthritis. CTLA4 binds to the CD80/86 complex of antigen-presenting cells and blocks the activation of T cells. Although previous reports showed that CTLA4-Ig directly inhibited osteoclast differentiation, the whole inhibitory mechanism of CTLA4-Ig for osteoclast differentiation is unclear. Bone marrow macrophages (BMMs) from WT mice were cultured with M-CSF and RANKL with or without the recombinant mouse chimera CTLA4-Ig. Intracellular calcium oscillations of BMMs with RANKL were detected by staining with calcium indicator fura-2 immediately after administration of CTLA4-Ig or after one day of treatment. Calcium oscillations were analyzed using Fc receptor gamma- (FcR gamma-) deficient BMMs. CTLA4-Ig inhibited osteoclast differentiation and reduced the expression of the nuclear factor of activated T cells NFATc1 in BMMs in vitro. Calcium oscillations in BMMs were suppressed by CTLA4-Ig both immediately after administration and after one day of treatment. CTLA4-Ig did not affect osteoclastogenesis and did not cause remarkable changes in calcium oscillations in FcR gamma-deficient BMMs. Finally, to analyze the effect of CTLA4-Ig in vivo, we used an LPS-induced osteolysis model. CTLA4-Ig suppressed LPS-induced bone resorption in WT mice, not in FcR gamma-deficient mice. In conclusion, CTLA4-Ig inhibits intracellular calcium oscillations depending on FcR gamma and downregulates NFATc1 expression in BMMs. (c) 2019 American Society for Bone and Mineral Research.
Human monocytic myeloid-derived suppressor cells impair B-cell phenotype and function in vitro
EUROPEAN JOURNAL OF IMMUNOLOGY
Authors: Jaufmann, Jennifer; Lelis, Felipe J. N.; Teschner, Annkathrin C.; Fromm, Katja; Rieber, Nikolaus; Hartl, Dominik; Beer-Hammer, Sandra
Abstract
Myeloid-derived suppressor cells (MDSCs) are key regulators of immunity that initially have been defined by their ability to potently suppress T-cell responses. Recent studies collectively demonstrate that the suppressive activity of MDSCs is not limited to T cells, but rather affects a broad range of immune cell subsets. However, relatively few studies have assessed the impact of MDSCs on B cells, particularly in the human context. Here, we report that human monocytic MDSCs (M-MDSCs) significantly interfere with human B-cell proliferation and function in vitro. We further show that the inhibition occurs independent of direct cell-contact and involves the expression of suppressive mediators such as indoleamine 2, 3-dioxygenase (IDO), arginase-1 (Arg1), and nitric oxide (NO). In addition, our studies demonstrate that the suppression of B cells by M-MDSCs is paralleled by a skewing in B-cell phenotype and gene expression signatures. M-MDSCs induced the downregulation of key surface markers on activated B cells, including IgM, HLA-DR, CD80, CD86, TACI, and CD95. Concurrently, M-MDSCs but not conventional monocytes elicited alterations in the transcription of genes involved in apoptosis induction, class-switch regulation, and B-cell differentiation and function. In summary, this study expands our understanding of the regulatory role of M-MDSCs for human B-cell responses.