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Published in: Inflammation 1/2016

01-02-2016 | Original Article

Anti-Inflammatory Activity of Tanshinone IIA in LPS-Stimulated RAW264.7 Macrophages via miRNAs and TLR4–NF-κB Pathway

Authors: Guanwei Fan, Xiaorui Jiang, Xiaoyan Wu, Patrick Asare Fordjour, Lin Miao, Han Zhang, Yan Zhu, Xiumei Gao

Published in: Inflammation | Issue 1/2016

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Abstract

Inflammation is a physiological response to infection or injury and involves the innate and adaptive immune system. Tanshinone IIA (Tan IIA) is a well-known flavonoid that elicits an important therapeutic effect by inhibiting inflammatory response. In this study, we examined whether Tan IIA exerts anti-inflammatory activity and investigated the possible mechanisms, including Toll-like receptor 4 (TLR4)–MyD88–nuclear factor kappa B (NF-κB) signaling pathway and microRNA expression in lipopolysaccharide (LPS)-induced RAW264.7 cells. Tan IIA could attenuate the inflammatory reaction via decreasing cytokine, chemokine, and acute-phase protein production, including GM-CSF, sICAM-1, cxcl-1, MIP-1α, and tumor necrosis factor alpha (TNF-α), analyzed by Proteome profile array in LPS-induced RAW264.7 cells. Concurrently, the messenger RNA (mRNA) expressions of IL-1β, TNF-α, and COX-2 were also significantly reduced by Tan IIA. Additionally, Tan IIA decreased LPS-induced NF-κB activation and downregulated TLR4 and MyD88 protein expression levels. We also observed reduced microRNA-155, miR-147, miR-184, miR-29b, and miR-34c expression levels, while LPS-induced microRNA-105, miR-145a, miR-194, miR-383, miR-132, and miR-451a expression levels were upregulated using microRNA (miRNA) qPCR array. Our results indicate that Tan IIA could exert an anti-inflammatory effect on LPS-induced RAW264.7 cells by decreasing TLR4–MyD88–NF-κB signaling pathway and regulating a series of cytokine production and miRNA expression.
Literature
1.
go back to reference Zheng, S., Z. Ren, Y. Zhang, and Y. Qiao. 2014. Anti-inflammatory mechanism research of tanshinone IIA by module-based network analysis. Biomed Mater Eng. 24: 3815–3824.PubMed Zheng, S., Z. Ren, Y. Zhang, and Y. Qiao. 2014. Anti-inflammatory mechanism research of tanshinone IIA by module-based network analysis. Biomed Mater Eng. 24: 3815–3824.PubMed
2.
go back to reference You, Z., Y. Xin, Y. Liu, B. Han, L. Zhang, Y. Chen, Y. Chen, L. Gu, H. Gao, and Y. Xuan. 2012. Protective effect of Salvia miltiorrhizae injection on N (G)-nitro-D-arginine induced nitric oxide deficient and oxidative damage in rat kidney. Exp Toxicol Pathol. 64: 453–458.CrossRefPubMed You, Z., Y. Xin, Y. Liu, B. Han, L. Zhang, Y. Chen, Y. Chen, L. Gu, H. Gao, and Y. Xuan. 2012. Protective effect of Salvia miltiorrhizae injection on N (G)-nitro-D-arginine induced nitric oxide deficient and oxidative damage in rat kidney. Exp Toxicol Pathol. 64: 453–458.CrossRefPubMed
3.
go back to reference Li, Y., Y. Guo, Y. Chen, Y. Wang, Y. You, Q. Yang, X. Weng, Q. Li, X. Zhu, B. Zhou, X. Liu, Z. Gong, and R. Zhang. 2015. Establishment of an interleukin-1β-induced inflammation-activated endothelial cell-smooth muscle cell-mononuclear cell co-culture model and evaluation of the anti-inflammatory effects of tanshinone IIA on atherosclerosis. Mol Med Rep 12: 1665–1676.PubMedCentralPubMed Li, Y., Y. Guo, Y. Chen, Y. Wang, Y. You, Q. Yang, X. Weng, Q. Li, X. Zhu, B. Zhou, X. Liu, Z. Gong, and R. Zhang. 2015. Establishment of an interleukin-1β-induced inflammation-activated endothelial cell-smooth muscle cell-mononuclear cell co-culture model and evaluation of the anti-inflammatory effects of tanshinone IIA on atherosclerosis. Mol Med Rep 12: 1665–1676.PubMedCentralPubMed
4.
go back to reference Tang, C., H. Xue, C. Bai, R. Fu, and A. Wu. 2010. The effects of Tanshinone IIA on blood-brain barrier and brain edema after transient middle cerebral artery occlusion in rats. Phytomedicine. 17: 1145–1149.CrossRefPubMed Tang, C., H. Xue, C. Bai, R. Fu, and A. Wu. 2010. The effects of Tanshinone IIA on blood-brain barrier and brain edema after transient middle cerebral artery occlusion in rats. Phytomedicine. 17: 1145–1149.CrossRefPubMed
5.
go back to reference Chen, Y., X. Wu, S. Yu, X. Lin, J. Wu, L. Li, J. Zhao, and Y. Zhao. 2012. Neuroprotection of Tanshinone IIA against cerebral ischemia/reperfusion injury through inhibition of macrophage migration inhibitory factor in rats. PLoS ONE 7: e40165.PubMedCentralCrossRefPubMed Chen, Y., X. Wu, S. Yu, X. Lin, J. Wu, L. Li, J. Zhao, and Y. Zhao. 2012. Neuroprotection of Tanshinone IIA against cerebral ischemia/reperfusion injury through inhibition of macrophage migration inhibitory factor in rats. PLoS ONE 7: e40165.PubMedCentralCrossRefPubMed
6.
go back to reference He, H., H. Tang, L. Gao, Y. Wu, Z. Feng, H. Lin, and T. Wu. 2015. Tanshinone IIA attenuates bleomycin-induced pulmonary fibrosis in rats. Mol Med Rep. 11: 4190–4196.PubMedCentralPubMed He, H., H. Tang, L. Gao, Y. Wu, Z. Feng, H. Lin, and T. Wu. 2015. Tanshinone IIA attenuates bleomycin-induced pulmonary fibrosis in rats. Mol Med Rep. 11: 4190–4196.PubMedCentralPubMed
7.
go back to reference Xu, M., F.L. Cao, Y.F. Zhang, L. Shan, X.L. Jiang, X.J. An, W. Xu, X.Z. Liu, and X.Y. Wang. 2015. Tanshinone IIA therapeutically reduces LPS-induced acute lung injury by inhibiting inflammation and apoptosis in mice. Acta Pharmacol Sin 36: 179–187.PubMedCentralCrossRefPubMed Xu, M., F.L. Cao, Y.F. Zhang, L. Shan, X.L. Jiang, X.J. An, W. Xu, X.Z. Liu, and X.Y. Wang. 2015. Tanshinone IIA therapeutically reduces LPS-induced acute lung injury by inhibiting inflammation and apoptosis in mice. Acta Pharmacol Sin 36: 179–187.PubMedCentralCrossRefPubMed
8.
go back to reference Takeuchi, O., and S. Akira. 2010. Pattern recognition receptors and inflammation. Cell. 140: 805–820.CrossRefPubMed Takeuchi, O., and S. Akira. 2010. Pattern recognition receptors and inflammation. Cell. 140: 805–820.CrossRefPubMed
9.
10.
go back to reference O'Connell, R.M., D.S. Rao, A.A. Chaudhuri, and D. Baltimore. 2010. Physiological and pathological roles for microRNAs in the immune system. Nat Rev Immunol. 10: 111–122.CrossRefPubMed O'Connell, R.M., D.S. Rao, A.A. Chaudhuri, and D. Baltimore. 2010. Physiological and pathological roles for microRNAs in the immune system. Nat Rev Immunol. 10: 111–122.CrossRefPubMed
11.
go back to reference Huffaker, T.B., R. Hu, M.C. Runtsch, E. Bake, X. Chen, J. Zhao, J.L. Round, D. Baltimore, and R.M. O'Connell. 2012. Epistasis between microRNAs 155 and 146a during T cell-mediated antitumor immunity. Cell Rep 2: 1697–1709.PubMedCentralCrossRefPubMed Huffaker, T.B., R. Hu, M.C. Runtsch, E. Bake, X. Chen, J. Zhao, J.L. Round, D. Baltimore, and R.M. O'Connell. 2012. Epistasis between microRNAs 155 and 146a during T cell-mediated antitumor immunity. Cell Rep 2: 1697–1709.PubMedCentralCrossRefPubMed
12.
go back to reference Zhang, Y., R. Yan, and Y. Hu. 2015. Oxymatrine inhibits lipopolysaccharide-induced inflammation by down-regulating Toll-like receptor 4/nuclear factor-kappa B in macrophages. Can J Physiol Pharmacol 93: 253–260.CrossRefPubMed Zhang, Y., R. Yan, and Y. Hu. 2015. Oxymatrine inhibits lipopolysaccharide-induced inflammation by down-regulating Toll-like receptor 4/nuclear factor-kappa B in macrophages. Can J Physiol Pharmacol 93: 253–260.CrossRefPubMed
13.
go back to reference Colotta, F., P. Allavena, A. Sica, C. Garlanda, and A. Mantovani. 2009. Cancer-related inflammation, the seventh hallmark of cancer: links to genetic instability. Carcinogenesis 30: 1073–1081.CrossRefPubMed Colotta, F., P. Allavena, A. Sica, C. Garlanda, and A. Mantovani. 2009. Cancer-related inflammation, the seventh hallmark of cancer: links to genetic instability. Carcinogenesis 30: 1073–1081.CrossRefPubMed
14.
go back to reference Tu, J., Y. Xing, Y. Guo, F. Tang, L. Guo, and T. Xi. 2012. TanshinoneIIA ameliorates inflammatory microenvironment of colon cancer cells via repression of microRNA-155. Int Immunopharmacol. 14: 353–361.CrossRefPubMed Tu, J., Y. Xing, Y. Guo, F. Tang, L. Guo, and T. Xi. 2012. TanshinoneIIA ameliorates inflammatory microenvironment of colon cancer cells via repression of microRNA-155. Int Immunopharmacol. 14: 353–361.CrossRefPubMed
15.
go back to reference Aviram, M. 2000. Review of human studies on oxidative damage and antioxidant protection related to cardiovascular diseases. Free Radic Res. 33: S85–S97.PubMed Aviram, M. 2000. Review of human studies on oxidative damage and antioxidant protection related to cardiovascular diseases. Free Radic Res. 33: S85–S97.PubMed
16.
go back to reference Fan, G.W., X.M. Gao, H. Wang, Y. Zhu, J. Zhang, L.M. Hu, Y.F. Su, L.Y. Kang, and B.L. Zhang. 2009. The anti-inflammatory activities of Tanshinone IIA, an active component of TCM, are mediated by estrogen receptor activation and inhibition of iNOS. J Steroid Biochem Mol Biol. 113: 275–280.CrossRefPubMed Fan, G.W., X.M. Gao, H. Wang, Y. Zhu, J. Zhang, L.M. Hu, Y.F. Su, L.Y. Kang, and B.L. Zhang. 2009. The anti-inflammatory activities of Tanshinone IIA, an active component of TCM, are mediated by estrogen receptor activation and inhibition of iNOS. J Steroid Biochem Mol Biol. 113: 275–280.CrossRefPubMed
17.
go back to reference Xu, Y., D. Feng, Y. Wang, S. Lin, and L. Xu. 2008. Sodium Tanshinone IIA sulfonate protects mice from ConA-induced hepatitis via inhibiting NF-kappaB and IFN-gamma/STAT1pathways. J Clin Immunol. 28: 512–519.CrossRefPubMed Xu, Y., D. Feng, Y. Wang, S. Lin, and L. Xu. 2008. Sodium Tanshinone IIA sulfonate protects mice from ConA-induced hepatitis via inhibiting NF-kappaB and IFN-gamma/STAT1pathways. J Clin Immunol. 28: 512–519.CrossRefPubMed
18.
go back to reference Murray, P.J., and T.A. Wynn. 2001. Protective and pathogenic functions of macrophage subsets. Nat Rev Immunol. 11: 723–737.CrossRef Murray, P.J., and T.A. Wynn. 2001. Protective and pathogenic functions of macrophage subsets. Nat Rev Immunol. 11: 723–737.CrossRef
19.
go back to reference Pascual, G., A.L. Fong, S. Ogawa, A. Gamliel, A.C. Li, V. Perissi, D.W. Rose, T.M. Willson, M.G. Rosenfeld, and C.K. Glass. 2005. A SUMOylation-dependent pathway mediates transrepression of inflammatory response genes by PPAR-gamma. Nature. 437: 759–763.PubMedCentralCrossRefPubMed Pascual, G., A.L. Fong, S. Ogawa, A. Gamliel, A.C. Li, V. Perissi, D.W. Rose, T.M. Willson, M.G. Rosenfeld, and C.K. Glass. 2005. A SUMOylation-dependent pathway mediates transrepression of inflammatory response genes by PPAR-gamma. Nature. 437: 759–763.PubMedCentralCrossRefPubMed
20.
go back to reference Yuan, Z., M.A. Syed, D. Panchal, D. Rogers, M. Joo, and R.T. Sadikot. 2012. Curcumin mediated epigenetic modulation inhibits TREM-1 expression in response to lipopolysaccharide. Int J Biochem Cell Biol. 44: 2032–2043.CrossRefPubMed Yuan, Z., M.A. Syed, D. Panchal, D. Rogers, M. Joo, and R.T. Sadikot. 2012. Curcumin mediated epigenetic modulation inhibits TREM-1 expression in response to lipopolysaccharide. Int J Biochem Cell Biol. 44: 2032–2043.CrossRefPubMed
21.
go back to reference Zhang, X., G. Wang, E.C. Gurley, and H. Zhou. 2014. Flavonoid apigenin inhibits lipopolysaccharide-induced inflammatory response through multiple mechanisms in macrophages. PLoS One. 9: e107072.PubMedCentralCrossRefPubMed Zhang, X., G. Wang, E.C. Gurley, and H. Zhou. 2014. Flavonoid apigenin inhibits lipopolysaccharide-induced inflammatory response through multiple mechanisms in macrophages. PLoS One. 9: e107072.PubMedCentralCrossRefPubMed
22.
go back to reference Asirvatham, A.J., C.J. Gregorie, Z. Hu, W.J. Magner, and T.B. Tomasi. 2008. MicroRNA targets in immune genes and the Dicer/argonaute and ARE machinery components. Mol. Immunol. 145: 1995–2006.CrossRef Asirvatham, A.J., C.J. Gregorie, Z. Hu, W.J. Magner, and T.B. Tomasi. 2008. MicroRNA targets in immune genes and the Dicer/argonaute and ARE machinery components. Mol. Immunol. 145: 1995–2006.CrossRef
23.
go back to reference Martinez, R.T., F. Louafi, P.S. Friedmann, and T. Sanchez. 2009. MicroRNA-155 modulates the pathogen binding ability of dendritic cells (DCs) by down-regulation of DC-specific intercellular adhesion molecule-3 grabbing non-integrin (DC-SIGN). J Biol Chem. 284: 16334–16342.CrossRef Martinez, R.T., F. Louafi, P.S. Friedmann, and T. Sanchez. 2009. MicroRNA-155 modulates the pathogen binding ability of dendritic cells (DCs) by down-regulation of DC-specific intercellular adhesion molecule-3 grabbing non-integrin (DC-SIGN). J Biol Chem. 284: 16334–16342.CrossRef
24.
go back to reference Yang, L.L., J.Q. Liu, X.Z. Bai, L. Fan, F. Han, W.B. Jia, L.L. Su, J.H. Shi, C.W. Tang, and D.H. Hu. 2014. Acute downregulation of miR-155 at wound sites leads to a reduced fibrosis through attenuating inflammatory response. Biochem Biophys Res Commun 453: 153–159.CrossRefPubMed Yang, L.L., J.Q. Liu, X.Z. Bai, L. Fan, F. Han, W.B. Jia, L.L. Su, J.H. Shi, C.W. Tang, and D.H. Hu. 2014. Acute downregulation of miR-155 at wound sites leads to a reduced fibrosis through attenuating inflammatory response. Biochem Biophys Res Commun 453: 153–159.CrossRefPubMed
25.
go back to reference Zheng, Y., S. Xiong, P. Jiang, R. Liu, X. Liu, J. Qian, X. Zheng, and Y. Chu. 2012. Glucocorticoids inhibit lipopolysaccharide-mediated inflammatory response by downregulating microRNA-155: a novel anti-inflammation mechanism. Free Radic Biol Med 52: 1307–1317.CrossRefPubMed Zheng, Y., S. Xiong, P. Jiang, R. Liu, X. Liu, J. Qian, X. Zheng, and Y. Chu. 2012. Glucocorticoids inhibit lipopolysaccharide-mediated inflammatory response by downregulating microRNA-155: a novel anti-inflammation mechanism. Free Radic Biol Med 52: 1307–1317.CrossRefPubMed
26.
go back to reference Fu, Y., B. Liu, N. Zhang, Z. Liu, D. Liang, F. Li, Y. Cao, X. Feng, X. Zhang, and Z. Yang. 2013. Magnolol inhibits lipopolysaccharide-induced inflammatory response by interfering with TLR4 mediated NF-κB and MAPKs signaling pathways. J Ethnopharmacol. 145: 193–199.CrossRefPubMed Fu, Y., B. Liu, N. Zhang, Z. Liu, D. Liang, F. Li, Y. Cao, X. Feng, X. Zhang, and Z. Yang. 2013. Magnolol inhibits lipopolysaccharide-induced inflammatory response by interfering with TLR4 mediated NF-κB and MAPKs signaling pathways. J Ethnopharmacol. 145: 193–199.CrossRefPubMed
27.
go back to reference Murata, T., S. Kohno, C. Ito, M. Itoigawa, A. Sugiura, K. Hikita, and N. Kaneda. 2013. Inhibitory effect of carbazolequinone derivatives on lipopolysaccharide and interferon-γ-induced nitric oxide production in mouse macrophage RAW264.7 cells. J Pharm Pharmacol 65: 1204–1213.CrossRefPubMed Murata, T., S. Kohno, C. Ito, M. Itoigawa, A. Sugiura, K. Hikita, and N. Kaneda. 2013. Inhibitory effect of carbazolequinone derivatives on lipopolysaccharide and interferon-γ-induced nitric oxide production in mouse macrophage RAW264.7 cells. J Pharm Pharmacol 65: 1204–1213.CrossRefPubMed
28.
go back to reference Saccani, S., S. Pantano, and G. Natoli. 2011. Two waves of nuclear factor kappaB recruitment to target promoters. J Exp Med 193: 1351–1360.CrossRef Saccani, S., S. Pantano, and G. Natoli. 2011. Two waves of nuclear factor kappaB recruitment to target promoters. J Exp Med 193: 1351–1360.CrossRef
30.
go back to reference Taganov KD, Boldin MP, Chang KJ, Baltimore D.2006.Proc Natl Acad Sci USA .103:12481–12486 Taganov KD, Boldin MP, Chang KJ, Baltimore D.2006.Proc Natl Acad Sci USA .103:12481–12486
31.
go back to reference O'Connell, R.M., K.D. Taganov, M.P. Boldin, G. Cheng, and D. Baltimore. 2007. MicroRNA-155 is induced during the macrophage inflammatory response. Proc Natl Acad Sci USA 104: 1604–1609.PubMedCentralCrossRefPubMed O'Connell, R.M., K.D. Taganov, M.P. Boldin, G. Cheng, and D. Baltimore. 2007. MicroRNA-155 is induced during the macrophage inflammatory response. Proc Natl Acad Sci USA 104: 1604–1609.PubMedCentralCrossRefPubMed
32.
go back to reference Bandyopadhyay, S., M.E. Long, and L.A. Allen. 2014. Differential expression of microRNAs in Francisella tularensis-infected human macrophages: miR-155-dependent downregulation of MyD88 inhibits the inflammatory response. PLoS One 9: e109525.PubMedCentralCrossRefPubMed Bandyopadhyay, S., M.E. Long, and L.A. Allen. 2014. Differential expression of microRNAs in Francisella tularensis-infected human macrophages: miR-155-dependent downregulation of MyD88 inhibits the inflammatory response. PLoS One 9: e109525.PubMedCentralCrossRefPubMed
Metadata
Title
Anti-Inflammatory Activity of Tanshinone IIA in LPS-Stimulated RAW264.7 Macrophages via miRNAs and TLR4–NF-κB Pathway
Authors
Guanwei Fan
Xiaorui Jiang
Xiaoyan Wu
Patrick Asare Fordjour
Lin Miao
Han Zhang
Yan Zhu
Xiumei Gao
Publication date
01-02-2016
Publisher
Springer US
Published in
Inflammation / Issue 1/2016
Print ISSN: 0360-3997
Electronic ISSN: 1573-2576
DOI
https://doi.org/10.1007/s10753-015-0259-1

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