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IL-1R/TLR2 Through MyD88 Divergently Modulates Osteoclastogenesis Through Regulation of Nuclear Factor of Activated T Cells C1 (NFATc1) and B Lymphocyte-induced Maturation Protein-1 (Blimp1)

Overview
Journal J Biol Chem
Specialty Biochemistry
Date 2015 Oct 21
PMID 26483549
Citations 21
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Abstract

Toll-like receptors (TLR) and the receptor for interleukin-1 (IL-1R) signaling play an important role in bacteria-mediated bone loss diseases including periodontitis, rheumatoid arthritis, and osteomyelitis. Recent studies have shown that TLR ligands inhibit the receptor activator of NF-κB ligand (RANKL)-induced osteoclast differentiation from un-committed osteoclast precursors, whereas IL-1 potentiates RANKL-induced osteoclast formation. However, IL-1R and TLR belong to the same IL-1R/TLR superfamily, and activate similar intracellular signaling pathways. Here, we investigate the molecular mechanisms underlying the distinct effects of IL-1 and Porphyromonas gingivalis lipopolysaccharide (LPS-PG) on RANKL-induced osteoclast formation. Our results show that LPS-PG and IL-1 differentially regulate RANKL-induced activation of osteoclast genes encoding Car2, Ctsk, MMP9, and TRAP, as well as expression of NFATc1, a master transcription factor of osteoclastogenesis. Regulation of osteoclast genes and NFATc1 by LPS-PG and IL-1 is dependent on MyD88, an important signaling adaptor for both TLR and IL-1R family members. Furthermore, LPS-PG and IL-1 differentially regulate RANKL-costimulatory receptor OSCAR (osteoclast-associated receptor) expression and Ca(2+) oscillations induced by RANKL. Moreover, LPS-PG completely abrogates RANKL-induced gene expression of B lymphocyte-induced maturation protein-1 (Blimp1), a global transcriptional repressor of anti-osteoclastogenic genes encoding Bcl6, IRF8, and MafB. However, IL-1 enhances RANKL-induced blimp1 gene expression but suppresses the gene expression of bcl6, irf8, and mafb. Our study reveals the involvement of multiple signaling molecules in the differential regulation of RANKL-induced osteoclastogenesis by TLR2 and IL-1 signaling. Understanding the signaling cross-talk among TLR, IL-1R, and RANK is critical for identifying therapeutic strategies to control bacteria-mediated bone loss.

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References
1.
Li S, Miller C, Giannopoulou E, Hu X, Ivashkiv L, Zhao B . RBP-J imposes a requirement for ITAM-mediated costimulation of osteoclastogenesis. J Clin Invest. 2014; 124(11):5057-73. PMC: 4347236. DOI: 10.1172/JCI71882. View

2.
Cappellen D, Luong-Nguyen N, Bongiovanni S, Grenet O, Wanke C, Susa M . Transcriptional program of mouse osteoclast differentiation governed by the macrophage colony-stimulating factor and the ligand for the receptor activator of NFkappa B. J Biol Chem. 2002; 277(24):21971-82. DOI: 10.1074/jbc.M200434200. View

3.
Cella M, Buonsanti C, Strader C, Kondo T, Salmaggi A, Colonna M . Impaired differentiation of osteoclasts in TREM-2-deficient individuals. J Exp Med. 2003; 198(4):645-51. PMC: 2194167. DOI: 10.1084/jem.20022220. View

4.
Klesney-Tait J, Turnbull I, Colonna M . The TREM receptor family and signal integration. Nat Immunol. 2006; 7(12):1266-73. DOI: 10.1038/ni1411. View

5.
Seo T, Cha S, Kim T, Lee J, Woo K . Porphyromonas gingivalis-derived lipopolysaccharide-mediated activation of MAPK signaling regulates inflammatory response and differentiation in human periodontal ligament fibroblasts. J Microbiol. 2012; 50(2):311-9. DOI: 10.1007/s12275-012-2146-x. View