Skip to main content
Erschienen in: Inflammation 5/2018

08.05.2018 | ORIGINAL ARTICLE

Cyclic Tensile Strain Upregulates Pro-Inflammatory Cytokine Expression Via FAK-MAPK Signaling in Chondrocytes

verfasst von: Makoto Yanoshita, Naoto Hirose, Yuki Okamoto, Chikako Sumi, Mami Takano, Sayuri Nishiyama, Yuki Asakawa-Tanne, Kayo Horie, Azusa Onishi, Yuka Yamauchi, Tomomi Mitsuyoshi, Ryo Kunimatsu, Kotaro Tanimoto

Erschienen in: Inflammation | Ausgabe 5/2018

Einloggen, um Zugang zu erhalten

Abstract

Excessive mechanical stimulation is considered an important factor in the destruction of chondrocytes. Focal adhesion kinase (FAK) is non-receptor tyrosine kinase related to a number of different signaling proteins. Little is known about the function of FAK in chondrocytes under mechanical stimulation. In the present study, we investigated the function of FAK in mechanical signal transduction and the mechanism through which cyclic tensile strain (CTS) induces expression of inflammation-related factors. Mouse ATDC5 chondrogenic cells were subjected to CTS of 0.5 Hz to 10% cell elongation with an FAK inhibitor. The expression of genes encoding COX-2, IL-1β, and TNF-α was examined using real-time RT-PCR after CTS application with FAK inhibitor. Phosphorylation of p-38, ERK, and JNK was analyzed by Western blotting. Differences in COX-2 expression following pretreatment with FAK, p-38, ERK, and JNK inhibitors were compared by Western blotting. We found that CTS increased the expression of genes encoding COX-2, IL-1β, and TNF-α and activated the phosphorylation of FAK, p-38, ERK, and JNK. Pretreatment with an FAK inhibitor for 2 h reduced the expression of genes encoding COX-2, IL-1β, and TNF-α induced by CTS-associated inflammation and decreased phosphorylation of FAK, p-38, ERK, and JNK. Pretreatment with FAK, p-38, ERK, and JNK inhibitors markedly suppressed COX-2 and IL-1β protein expression. In conclusion, FAK appears to regulate inflammation in chondrocytes under CTS via MAPK pathways.
Anhänge
Nur mit Berechtigung zugänglich
Literatur
1.
Zurück zum Zitat Tanaka, S., C. Hamanishi, H. Kikuchi, and K. Fukuda. 1998. Factors related to degradation of articular cartilage in osteoarthritis: A review. Seminars in Arthritis and Rheumatism 27 (6): 392–399.CrossRefPubMed Tanaka, S., C. Hamanishi, H. Kikuchi, and K. Fukuda. 1998. Factors related to degradation of articular cartilage in osteoarthritis: A review. Seminars in Arthritis and Rheumatism 27 (6): 392–399.CrossRefPubMed
2.
Zurück zum Zitat Su, S.C., K. Tanimoto, Y. Tanne, et al. 2014. Celecoxib exerts protective effects on extracellular matrix metabolism of mandibular condylar chondrocytes under excessive mechanical stress. Osteoarthritis and Cartilage 22 (6): 845–851.CrossRefPubMed Su, S.C., K. Tanimoto, Y. Tanne, et al. 2014. Celecoxib exerts protective effects on extracellular matrix metabolism of mandibular condylar chondrocytes under excessive mechanical stress. Osteoarthritis and Cartilage 22 (6): 845–851.CrossRefPubMed
3.
Zurück zum Zitat Zheng, W., Z. Tao, C. Chen, C. Zhang, H. Zhang, X. Ying, and H. Chen. 2017. Plumbagin prevents IL-1beta-induced inflammatory response in human osteoarthritis chondrocytes and prevents the progression of osteoarthritis in mice. Inflammation 40 (3): 849–860.CrossRefPubMed Zheng, W., Z. Tao, C. Chen, C. Zhang, H. Zhang, X. Ying, and H. Chen. 2017. Plumbagin prevents IL-1beta-induced inflammatory response in human osteoarthritis chondrocytes and prevents the progression of osteoarthritis in mice. Inflammation 40 (3): 849–860.CrossRefPubMed
4.
Zurück zum Zitat Benito, M.J., D.J. Veale, O. FitzGerald, W. van den Berg, and B. Bresnihan. 2005. Synovial tissue inflammation in early and late osteoarthritis. Annals of the Rheumatic Diseases 64 (9): 1263–1267.CrossRefPubMedPubMedCentral Benito, M.J., D.J. Veale, O. FitzGerald, W. van den Berg, and B. Bresnihan. 2005. Synovial tissue inflammation in early and late osteoarthritis. Annals of the Rheumatic Diseases 64 (9): 1263–1267.CrossRefPubMedPubMedCentral
5.
Zurück zum Zitat Campbell, I.D., and M.J. Humphries. 2011. Integrin structure, activation, and interactions. Cold Spring Harbor Perspectives in Biology 3 (3). Campbell, I.D., and M.J. Humphries. 2011. Integrin structure, activation, and interactions. Cold Spring Harbor Perspectives in Biology 3 (3).
6.
Zurück zum Zitat Luo, D.Y., R. Wazir, Y. Tian, X. Yue, T.Q. Wei, and K.J. Wang. 2013. Integrin alphav mediates contractility whereas integrin alpha4 regulates proliferation of human bladder smooth muscle cells via FAK pathway under physiological stretch. The Journal of Urology 190 (4): 1421–1429.CrossRefPubMed Luo, D.Y., R. Wazir, Y. Tian, X. Yue, T.Q. Wei, and K.J. Wang. 2013. Integrin alphav mediates contractility whereas integrin alpha4 regulates proliferation of human bladder smooth muscle cells via FAK pathway under physiological stretch. The Journal of Urology 190 (4): 1421–1429.CrossRefPubMed
7.
Zurück zum Zitat Luu, N.T., K.E. Glen, S. Egginton, et al. 2013. Integrin-substrate interactions underlying shear-induced inhibition of the inflammatory response of endothelial cells. Thrombosis and Haemostasis 109 (2): 298–308.CrossRefPubMed Luu, N.T., K.E. Glen, S. Egginton, et al. 2013. Integrin-substrate interactions underlying shear-induced inhibition of the inflammatory response of endothelial cells. Thrombosis and Haemostasis 109 (2): 298–308.CrossRefPubMed
8.
Zurück zum Zitat Parsons, J.T. 2003. Focal adhesion kinase: The first ten years. Journal of Cell Science 116 (8): 1409–1416.CrossRefPubMed Parsons, J.T. 2003. Focal adhesion kinase: The first ten years. Journal of Cell Science 116 (8): 1409–1416.CrossRefPubMed
9.
Zurück zum Zitat Bursell, L., A. Woods, C.G. James, D. Pala, A. Leask, and F. Beier. 2007. Src kinase inhibition promotes the chondrocyte phenotype. Arthritis Research & Therapy 9 (5): R105.CrossRef Bursell, L., A. Woods, C.G. James, D. Pala, A. Leask, and F. Beier. 2007. Src kinase inhibition promotes the chondrocyte phenotype. Arthritis Research & Therapy 9 (5): R105.CrossRef
10.
Zurück zum Zitat Hou, C., Z. Zhang, Z. Zhang, et al. 2015. Presence and function of microRNA-92a in chondrogenic ATDC5 and adipose-derived mesenchymal stem cells. Molecular Medicine Reports 12 (4): 4877–4886.CrossRefPubMedPubMedCentral Hou, C., Z. Zhang, Z. Zhang, et al. 2015. Presence and function of microRNA-92a in chondrogenic ATDC5 and adipose-derived mesenchymal stem cells. Molecular Medicine Reports 12 (4): 4877–4886.CrossRefPubMedPubMedCentral
11.
Zurück zum Zitat Schlaepfer, D.D., C.R. Hauck, and D.J. Sieg. 1999. Signaling through focal adhesion kinase. Progress in Biophysics and Molecular Biology 71 (3–4): 435–478.CrossRefPubMed Schlaepfer, D.D., C.R. Hauck, and D.J. Sieg. 1999. Signaling through focal adhesion kinase. Progress in Biophysics and Molecular Biology 71 (3–4): 435–478.CrossRefPubMed
12.
Zurück zum Zitat Yang, M., L.W. Xiao, E.Y. Liao, Q.J. Wang, B.B. Wang, and J.X. Lei. 2014. The role of integrin-β/FAK in cyclic mechanical stimulation in MG-63 cells. International Journal of Clinical and Experimental Pathology 7 (11): 7451–7459.PubMedPubMedCentral Yang, M., L.W. Xiao, E.Y. Liao, Q.J. Wang, B.B. Wang, and J.X. Lei. 2014. The role of integrin-β/FAK in cyclic mechanical stimulation in MG-63 cells. International Journal of Clinical and Experimental Pathology 7 (11): 7451–7459.PubMedPubMedCentral
13.
Zurück zum Zitat Planas-Rigol, E., N. Terrades-Garcia, M. Corbera-Bellalta, E. Lozano, M.A. Alba, M. Segarra, G. Espígol-Frigolé, S. Prieto-González, J. Hernández-Rodríguez, S. Preciado, R. Lavilla, and M.C. Cid. 2017. Endothelin-1 promotes vascular smooth muscle cell migration across the artery wall: A mechanism contributing to vascular remodelling and intimal hyperplasia in giant-cell arteritis. Annals of the Rheumatic Diseases 76 (9): 1624–1634.CrossRefPubMed Planas-Rigol, E., N. Terrades-Garcia, M. Corbera-Bellalta, E. Lozano, M.A. Alba, M. Segarra, G. Espígol-Frigolé, S. Prieto-González, J. Hernández-Rodríguez, S. Preciado, R. Lavilla, and M.C. Cid. 2017. Endothelin-1 promotes vascular smooth muscle cell migration across the artery wall: A mechanism contributing to vascular remodelling and intimal hyperplasia in giant-cell arteritis. Annals of the Rheumatic Diseases 76 (9): 1624–1634.CrossRefPubMed
14.
Zurück zum Zitat Shi, Z.D., H. Wang, and J.M. Tarbell. 2011. Heparan sulfate proteoglycans mediate interstitial flow mechanotransduction regulating MMP-13 expression and cell motility via FAK-ERK in 3D collagen. PLoS One 6 (1): e15956.CrossRefPubMedPubMedCentral Shi, Z.D., H. Wang, and J.M. Tarbell. 2011. Heparan sulfate proteoglycans mediate interstitial flow mechanotransduction regulating MMP-13 expression and cell motility via FAK-ERK in 3D collagen. PLoS One 6 (1): e15956.CrossRefPubMedPubMedCentral
15.
Zurück zum Zitat Zhou, J., W. Lin, H. Chen, Y. Fan, and C. Yang. 2016. TRESK contributes to pain threshold changes by mediating apoptosis via MAPK pathway in the spinal cord. Neuroscience 339: 622–633.CrossRefPubMed Zhou, J., W. Lin, H. Chen, Y. Fan, and C. Yang. 2016. TRESK contributes to pain threshold changes by mediating apoptosis via MAPK pathway in the spinal cord. Neuroscience 339: 622–633.CrossRefPubMed
16.
Zurück zum Zitat Johnson, G.L., and R. Lapadat. 2002. Mitogen-activated protein kinase pathways mediated by ERK, JNK, and p38 protein kinases. Science 298 (5600): 1911–1912.CrossRefPubMed Johnson, G.L., and R. Lapadat. 2002. Mitogen-activated protein kinase pathways mediated by ERK, JNK, and p38 protein kinases. Science 298 (5600): 1911–1912.CrossRefPubMed
17.
Zurück zum Zitat Nayak, P.S., Y. Wang, T. Najrana, L.M. Priolo, M. Rios, S.K. Shaw, and J. Sanchez-Esteban. 2015. Mechanotransduction via TRPV4 regulates inflammation and differentiation in fetal mouse distal lung epithelial cells. Respiratory Research 16: 60.CrossRefPubMedPubMedCentral Nayak, P.S., Y. Wang, T. Najrana, L.M. Priolo, M. Rios, S.K. Shaw, and J. Sanchez-Esteban. 2015. Mechanotransduction via TRPV4 regulates inflammation and differentiation in fetal mouse distal lung epithelial cells. Respiratory Research 16: 60.CrossRefPubMedPubMedCentral
18.
Zurück zum Zitat Kaneko, K., M. Ito, Y. Naoe, A. Lacy-Hulbert, and K. Ikeda. 2014. Integrin alphav in the mechanical response of osteoblast lineage cells. Biochemical and Biophysical Research Communications 447 (2): 352–357.CrossRefPubMedPubMedCentral Kaneko, K., M. Ito, Y. Naoe, A. Lacy-Hulbert, and K. Ikeda. 2014. Integrin alphav in the mechanical response of osteoblast lineage cells. Biochemical and Biophysical Research Communications 447 (2): 352–357.CrossRefPubMedPubMedCentral
19.
Zurück zum Zitat Men, Y.T., Y.L. Jiang, L. Chen, C.Q. Zhang, and J.D. Ye. 2017. On mechanical mechanism of damage evolution in articular cartilage. Materials Science & Engineering. C, Materials for Biological Applications 78: 79–87.CrossRef Men, Y.T., Y.L. Jiang, L. Chen, C.Q. Zhang, and J.D. Ye. 2017. On mechanical mechanism of damage evolution in articular cartilage. Materials Science & Engineering. C, Materials for Biological Applications 78: 79–87.CrossRef
20.
Zurück zum Zitat Tanaka, E., M.S. Detamore, and L.G. Mercuri. 2008. Degenerative disorders of the temporomandibular joint: Etiology, diagnosis, and treatment. Journal of Dental Research 87 (4): 296–307.CrossRefPubMed Tanaka, E., M.S. Detamore, and L.G. Mercuri. 2008. Degenerative disorders of the temporomandibular joint: Etiology, diagnosis, and treatment. Journal of Dental Research 87 (4): 296–307.CrossRefPubMed
21.
Zurück zum Zitat Huang, J., L.R. Ballou, and K.A. Hasty. 2007. Cyclic equibiaxial tensile strain induces both anabolic and catabolic responses in articular chondrocytes. Gene 404 (1–2): 101–109.CrossRefPubMed Huang, J., L.R. Ballou, and K.A. Hasty. 2007. Cyclic equibiaxial tensile strain induces both anabolic and catabolic responses in articular chondrocytes. Gene 404 (1–2): 101–109.CrossRefPubMed
22.
Zurück zum Zitat Harada, T., K. Yoshimura, O. Yamashita, K. Ueda, N. Morikage, Y. Sawada, and K. Hamano. 2017. Focal adhesion kinase promotes the progression of aortic aneurysm by modulating macrophage behavior. Arteriosclerosis, Thrombosis, and Vascular Biology 37 (1): 156–165.CrossRefPubMed Harada, T., K. Yoshimura, O. Yamashita, K. Ueda, N. Morikage, Y. Sawada, and K. Hamano. 2017. Focal adhesion kinase promotes the progression of aortic aneurysm by modulating macrophage behavior. Arteriosclerosis, Thrombosis, and Vascular Biology 37 (1): 156–165.CrossRefPubMed
23.
Zurück zum Zitat Wong, V.W., K.C. Rustad, S. Akaishi, M. Sorkin, J.P. Glotzbach, M. Januszyk, E.R. Nelson, K. Levi, J. Paterno, I.N. Vial, A.A. Kuang, M.T. Longaker, and G.C. Gurtner. 2011. Focal adhesion kinase links mechanical force to skin fibrosis via inflammatory signaling. Nature Medicine 18 (1): 148–152.CrossRefPubMedPubMedCentral Wong, V.W., K.C. Rustad, S. Akaishi, M. Sorkin, J.P. Glotzbach, M. Januszyk, E.R. Nelson, K. Levi, J. Paterno, I.N. Vial, A.A. Kuang, M.T. Longaker, and G.C. Gurtner. 2011. Focal adhesion kinase links mechanical force to skin fibrosis via inflammatory signaling. Nature Medicine 18 (1): 148–152.CrossRefPubMedPubMedCentral
24.
Zurück zum Zitat O’Conor, C.J., N. Case, and F. Guilak. 2013. Mechanical regulation of chondrogenesis. Stem Cell Research & Therapy 4 (4): 61.CrossRef O’Conor, C.J., N. Case, and F. Guilak. 2013. Mechanical regulation of chondrogenesis. Stem Cell Research & Therapy 4 (4): 61.CrossRef
25.
Zurück zum Zitat Yang, X., Y. Guan, S. Tian, Y. Wang, K. Sun, and Q. Chen. 2016. Mechanical and IL-1beta responsive miR-365 contributes to osteoarthritis development by targeting histone deacetylase 4. International Journal of Molecular Sciences 17 (4): 436.CrossRefPubMedPubMedCentral Yang, X., Y. Guan, S. Tian, Y. Wang, K. Sun, and Q. Chen. 2016. Mechanical and IL-1beta responsive miR-365 contributes to osteoarthritis development by targeting histone deacetylase 4. International Journal of Molecular Sciences 17 (4): 436.CrossRefPubMedPubMedCentral
26.
Zurück zum Zitat Wang, C.L., H. Wang, F. Xiao, C.D. Wang, G.L. Hu, J.F. Zhu, C. Shen, B. Zuo, Y.M. Cui, D. Li, Yuan-Gao, X.L. Zhang, and X.D. Chen. 2017. Cyclic compressive stress-induced scinderin regulates progress of developmental dysplasia of the hip. Biochemical and Biophysical Research Communications 485 (2): 400–408.CrossRefPubMed Wang, C.L., H. Wang, F. Xiao, C.D. Wang, G.L. Hu, J.F. Zhu, C. Shen, B. Zuo, Y.M. Cui, D. Li, Yuan-Gao, X.L. Zhang, and X.D. Chen. 2017. Cyclic compressive stress-induced scinderin regulates progress of developmental dysplasia of the hip. Biochemical and Biophysical Research Communications 485 (2): 400–408.CrossRefPubMed
27.
Zurück zum Zitat Honda, K., S. Ohno, K. Tanimoto, C. Ijuin, N. Tanaka, T. Doi, Y. Kato, and K. Tanne. 2000. The effects of high magnitude cyclic tensile load on cartilage matrix metabolism in cultured chondrocytes. European Journal of Cell Biology 79 (9): 601–609.CrossRefPubMed Honda, K., S. Ohno, K. Tanimoto, C. Ijuin, N. Tanaka, T. Doi, Y. Kato, and K. Tanne. 2000. The effects of high magnitude cyclic tensile load on cartilage matrix metabolism in cultured chondrocytes. European Journal of Cell Biology 79 (9): 601–609.CrossRefPubMed
28.
Zurück zum Zitat Liu, Q., X. Hu, X. Zhang, X. Duan, P. Yang, F. Zhao, and Y. Ao. 2016. Effects of mechanical stress on chondrocyte phenotype and chondrocyte extracellular matrix expression. Scientific Reports 6: 37268.CrossRefPubMedPubMedCentral Liu, Q., X. Hu, X. Zhang, X. Duan, P. Yang, F. Zhao, and Y. Ao. 2016. Effects of mechanical stress on chondrocyte phenotype and chondrocyte extracellular matrix expression. Scientific Reports 6: 37268.CrossRefPubMedPubMedCentral
29.
Zurück zum Zitat Zhu, H.F., Y.J. Liu, L.X. Chu, and W. Feng. 2011. Effects of mechanical stimulation on expression of integrin subunits in chondrocyte. Zhongguo Gu Shang 24 (3): 266–268.PubMed Zhu, H.F., Y.J. Liu, L.X. Chu, and W. Feng. 2011. Effects of mechanical stimulation on expression of integrin subunits in chondrocyte. Zhongguo Gu Shang 24 (3): 266–268.PubMed
30.
Zurück zum Zitat Kim, S.J., K.H. Park, Y.G. Park, S.W. Lee, and Y.G. Kang. 2013. Compressive stress induced the up-regulation of M-CSF, RANKL, TNF-alpha expression and the down-regulation of OPG expression in PDL cells via the integrin-FAK pathway. Archives of Oral Biology 58 (6): 707–716.CrossRefPubMed Kim, S.J., K.H. Park, Y.G. Park, S.W. Lee, and Y.G. Kang. 2013. Compressive stress induced the up-regulation of M-CSF, RANKL, TNF-alpha expression and the down-regulation of OPG expression in PDL cells via the integrin-FAK pathway. Archives of Oral Biology 58 (6): 707–716.CrossRefPubMed
31.
Zurück zum Zitat Yamashita, O., K. Yoshimura, A. Nagasawa, K. Ueda, N. Morikage, Y. Ikeda, and K. Hamano. 2013. Periostin links mechanical strain to inflammation in abdominal aortic aneurysm. PLoS One 8 (11): e79753.CrossRefPubMedPubMedCentral Yamashita, O., K. Yoshimura, A. Nagasawa, K. Ueda, N. Morikage, Y. Ikeda, and K. Hamano. 2013. Periostin links mechanical strain to inflammation in abdominal aortic aneurysm. PLoS One 8 (11): e79753.CrossRefPubMedPubMedCentral
32.
Zurück zum Zitat Russell-Puleri, S., N.G. Dela Paz, D. Adams, et al. 2017. Fluid shear stress induces upregulation of COX-2 and PGI2 release in endothelial cells via a pathway involving PECAM-1, PI3K, FAK, and p38. American Journal of Physiology. Heart and Circulatory Physiology 312 (3): H485–H500.CrossRefPubMed Russell-Puleri, S., N.G. Dela Paz, D. Adams, et al. 2017. Fluid shear stress induces upregulation of COX-2 and PGI2 release in endothelial cells via a pathway involving PECAM-1, PI3K, FAK, and p38. American Journal of Physiology. Heart and Circulatory Physiology 312 (3): H485–H500.CrossRefPubMed
33.
Zurück zum Zitat Lin, S., and K. Mequanint. 2012. The role of Ras-ERK-IL-1beta signaling pathway in upregulation of elastin expression by human coronary artery smooth muscle cells cultured in 3D scaffolds. Biomaterials 33 (29): 7047–7056.CrossRefPubMed Lin, S., and K. Mequanint. 2012. The role of Ras-ERK-IL-1beta signaling pathway in upregulation of elastin expression by human coronary artery smooth muscle cells cultured in 3D scaffolds. Biomaterials 33 (29): 7047–7056.CrossRefPubMed
34.
Zurück zum Zitat Mon, N.N., H. Hasegawa, A.A. Thant, P. Huang, Y. Tanimura, T. Senga, and M. Hamaguchi. 2006. A role for focal adhesion kinase signaling in tumor necrosis factor-alpha-dependent matrix metalloproteinase-9 production in a cholangiocarcinoma cell line, CCKS1. Cancer Research 66 (13): 6778–6784.CrossRefPubMed Mon, N.N., H. Hasegawa, A.A. Thant, P. Huang, Y. Tanimura, T. Senga, and M. Hamaguchi. 2006. A role for focal adhesion kinase signaling in tumor necrosis factor-alpha-dependent matrix metalloproteinase-9 production in a cholangiocarcinoma cell line, CCKS1. Cancer Research 66 (13): 6778–6784.CrossRefPubMed
35.
Zurück zum Zitat Zhang, P., Y.J. Li, L.Y. Guo, G.F. Wang, K. Lu, and E.L. Yue. 2015. Focal adhesion kinase activation is required for TNF-alpha-induced production of matrix metalloproteinase-2 and proinflammatory cytokines in cultured human periodontal ligament fibroblasts. European Journal of Oral Sciences 123 (4): 249–253.CrossRefPubMed Zhang, P., Y.J. Li, L.Y. Guo, G.F. Wang, K. Lu, and E.L. Yue. 2015. Focal adhesion kinase activation is required for TNF-alpha-induced production of matrix metalloproteinase-2 and proinflammatory cytokines in cultured human periodontal ligament fibroblasts. European Journal of Oral Sciences 123 (4): 249–253.CrossRefPubMed
36.
Zurück zum Zitat Liu, X.H., L.L. Pan, Y.L. Jia, D. Wu, Q.H. Xiong, Y. Wang, and Y.Z. Zhu. 2013. A novel compound DSC suppresses lipopolysaccharide-induced inflammatory responses by inhibition of Akt/NF-kappaB signalling in macrophages. European Journal of Pharmacology 708 (1–3): 8–13.CrossRefPubMed Liu, X.H., L.L. Pan, Y.L. Jia, D. Wu, Q.H. Xiong, Y. Wang, and Y.Z. Zhu. 2013. A novel compound DSC suppresses lipopolysaccharide-induced inflammatory responses by inhibition of Akt/NF-kappaB signalling in macrophages. European Journal of Pharmacology 708 (1–3): 8–13.CrossRefPubMed
37.
Zurück zum Zitat Binion, D.G., M.F. Otterson, and P. Rafiee. 2008. Curcumin inhibits VEGF-mediated angiogenesis in human intestinal microvascular endothelial cells through COX-2 and MAPK inhibition. Gut 57 (11): 1509–1517.CrossRefPubMedPubMedCentral Binion, D.G., M.F. Otterson, and P. Rafiee. 2008. Curcumin inhibits VEGF-mediated angiogenesis in human intestinal microvascular endothelial cells through COX-2 and MAPK inhibition. Gut 57 (11): 1509–1517.CrossRefPubMedPubMedCentral
38.
Zurück zum Zitat Li, S., M. Kim, Y.L. Hu, et al. 1997. Fluid shear stress activation of focal adhesion kinase. Linking to mitogen-activated protein kinases. The Journal of Biological Chemistry 272 (48): 30455–30462.CrossRefPubMed Li, S., M. Kim, Y.L. Hu, et al. 1997. Fluid shear stress activation of focal adhesion kinase. Linking to mitogen-activated protein kinases. The Journal of Biological Chemistry 272 (48): 30455–30462.CrossRefPubMed
39.
Zurück zum Zitat Norata, G.D., E. Callegari, H. Inoue, et al. 2004. HDL3 induces cyclooxygenase-2 expression and prostacyclin release in human endothelial cells via a p38 MAPK/CRE-dependent pathway: Effects on COX-2/PGI-synthase coupling. Arteriosclerosis, Thrombosis, and Vascular Biology 24 (5): 871–877.CrossRefPubMed Norata, G.D., E. Callegari, H. Inoue, et al. 2004. HDL3 induces cyclooxygenase-2 expression and prostacyclin release in human endothelial cells via a p38 MAPK/CRE-dependent pathway: Effects on COX-2/PGI-synthase coupling. Arteriosclerosis, Thrombosis, and Vascular Biology 24 (5): 871–877.CrossRefPubMed
40.
Zurück zum Zitat Zaric, J., and C. Ruegg. 2005. Integrin-mediated adhesion and soluble ligand binding stabilize COX-2 protein levels in endothelial cells by inducing expression and preventing degradation. The Journal of Biological Chemistry 280 (2): 1077–1085.CrossRefPubMed Zaric, J., and C. Ruegg. 2005. Integrin-mediated adhesion and soluble ligand binding stabilize COX-2 protein levels in endothelial cells by inducing expression and preventing degradation. The Journal of Biological Chemistry 280 (2): 1077–1085.CrossRefPubMed
41.
Zurück zum Zitat Garonna, E., K.M. Botham, G.M. Birdsey, A.M. Randi, R.R. Gonzalez-Perez, and C.P.D. Wheeler-Jones. 2011. Vascular endothelial growth factor receptor-2 couples cyclo-oxygenase-2 with pro-angiogenic actions of leptin on human endothelial cells. PLoS One 6 (4): e18823.CrossRefPubMedPubMedCentral Garonna, E., K.M. Botham, G.M. Birdsey, A.M. Randi, R.R. Gonzalez-Perez, and C.P.D. Wheeler-Jones. 2011. Vascular endothelial growth factor receptor-2 couples cyclo-oxygenase-2 with pro-angiogenic actions of leptin on human endothelial cells. PLoS One 6 (4): e18823.CrossRefPubMedPubMedCentral
42.
Zurück zum Zitat Su, Y.P., C.N. Chen, H.I. Chang, et al. 2017. Low shear stress attenuates COX-2 expression induced by Resistin in human osteoarthritic chondrocytes. Journal of Cellular Physiology 232 (6): 1448–1457.CrossRefPubMed Su, Y.P., C.N. Chen, H.I. Chang, et al. 2017. Low shear stress attenuates COX-2 expression induced by Resistin in human osteoarthritic chondrocytes. Journal of Cellular Physiology 232 (6): 1448–1457.CrossRefPubMed
43.
Zurück zum Zitat Cheng, K., P. Xia, Q. Lin, S. Shen, M. Gao, S. Ren, and X. Li. 2014. Effects of low-intensity pulsed ultrasound on integrin-FAK-PI3K/Akt mechanochemical transduction in rabbit osteoarthritis chondrocytes. Ultrasound in Medicine & Biology 40 (7): 1609–1618.CrossRef Cheng, K., P. Xia, Q. Lin, S. Shen, M. Gao, S. Ren, and X. Li. 2014. Effects of low-intensity pulsed ultrasound on integrin-FAK-PI3K/Akt mechanochemical transduction in rabbit osteoarthritis chondrocytes. Ultrasound in Medicine & Biology 40 (7): 1609–1618.CrossRef
Metadaten
Titel
Cyclic Tensile Strain Upregulates Pro-Inflammatory Cytokine Expression Via FAK-MAPK Signaling in Chondrocytes
verfasst von
Makoto Yanoshita
Naoto Hirose
Yuki Okamoto
Chikako Sumi
Mami Takano
Sayuri Nishiyama
Yuki Asakawa-Tanne
Kayo Horie
Azusa Onishi
Yuka Yamauchi
Tomomi Mitsuyoshi
Ryo Kunimatsu
Kotaro Tanimoto
Publikationsdatum
08.05.2018
Verlag
Springer US
Erschienen in
Inflammation / Ausgabe 5/2018
Print ISSN: 0360-3997
Elektronische ISSN: 1573-2576
DOI
https://doi.org/10.1007/s10753-018-0805-8

Weitere Artikel der Ausgabe 5/2018

Inflammation 5/2018 Zur Ausgabe

Leitlinien kompakt für die Innere Medizin

Mit medbee Pocketcards sicher entscheiden.

Seit 2022 gehört die medbee GmbH zum Springer Medizin Verlag

Update Innere Medizin

Bestellen Sie unseren Fach-Newsletter und bleiben Sie gut informiert.