Skip to main content
Top
Published in: Inflammation 2/2019

01-04-2019 | ORIGINAL ARTICLE

Gasdermin-d Played a Critical Role in the Cyclic Stretch–Induced Inflammatory Reaction in Human Periodontal Ligament Cells

Authors: Jiabao Zhuang, Yingying Wang, Fang Qu, Yaqin Wu, Dan Zhao, Chun Xu

Published in: Inflammation | Issue 2/2019

Login to get access

Abstract

It has been shown that cyclic stretch could induce inflammatory response such as pyroptosis and the release of IL-1β in human periodontal ligament cells, through activating inflammasome and related caspases. Though gasdermin-d (GSDMD) has been reported to be present in some inflammatory diseases and function as a crucial executioner of pyroptosis, the role of GSDMD in the stretch-induced inflammatory response in human periodontal ligament cells (HPDLCs) has not been well clarified. In this study, it was found that GSDMD was activated by cyclic stretch, and its activation affected the pyroptotic rate in HPDLCs, leading to the maturation and secretion of IL-1β and IL-18 ultimately. In addition, GSDMD was found to be regulated by caspase-1 directly. Nevertheless, the exact relationship between inflammasomes and GSDMD in the stretch-induced inflammatory response still needs to be further elucidated.
Literature
1.
go back to reference McCulloch, C.A., P. Lekic, and M.D. McKee. 2000. Role of physical forces in regulating the form and function of the periodontal ligament. Periodontol 2000 (24): 56–72.CrossRef McCulloch, C.A., P. Lekic, and M.D. McKee. 2000. Role of physical forces in regulating the form and function of the periodontal ligament. Periodontol 2000 (24): 56–72.CrossRef
2.
go back to reference Kim, J.H., M.S. Kang, M. Eltohamy, T.H. Kim, and H.W. Kim. 2016. Dynamic mechanical and nanofibrous topological combinatory cues designed for periodontal ligament engineering. PLoS One 11 (3): e0149967.CrossRefPubMedPubMedCentral Kim, J.H., M.S. Kang, M. Eltohamy, T.H. Kim, and H.W. Kim. 2016. Dynamic mechanical and nanofibrous topological combinatory cues designed for periodontal ligament engineering. PLoS One 11 (3): e0149967.CrossRefPubMedPubMedCentral
3.
go back to reference Matsuda, N., K. Yokoyama, S. Takeshita, and M. Watanabe. 1998. Role of epidermal growth factor and its receptor in mechanical stress-induced differentiation of human periodontal ligament cells in vitro. Archives of Oral Biology 43 (12): 987–997.CrossRefPubMed Matsuda, N., K. Yokoyama, S. Takeshita, and M. Watanabe. 1998. Role of epidermal growth factor and its receptor in mechanical stress-induced differentiation of human periodontal ligament cells in vitro. Archives of Oral Biology 43 (12): 987–997.CrossRefPubMed
4.
go back to reference Yang, Y., F.M.V. Rossi, and E.E. Putnins. 2010. Periodontal regeneration using engineered bone marrow mesenchymal stromal cells. Biomaterials 31: 8574–8582.CrossRefPubMed Yang, Y., F.M.V. Rossi, and E.E. Putnins. 2010. Periodontal regeneration using engineered bone marrow mesenchymal stromal cells. Biomaterials 31: 8574–8582.CrossRefPubMed
5.
go back to reference Kaneko, S., K. Ohashi, K. Soma, and M. Yanagishita. 2001. Occlusal hypofunction causes changes of proteoglycan content in the rat periodontal ligament. Journal of Periodontal Research 36 (1): 9–17.CrossRefPubMed Kaneko, S., K. Ohashi, K. Soma, and M. Yanagishita. 2001. Occlusal hypofunction causes changes of proteoglycan content in the rat periodontal ligament. Journal of Periodontal Research 36 (1): 9–17.CrossRefPubMed
6.
go back to reference Kaku, M., K. Uoshima, Y. Yamashita, and H. Miura. 2005. Investigation of periodontal ligament reaction upon excessive occlusal load—osteopontin induction among periodontal ligament cells. Journal of Periodontal Research 40 (1): 59–66.CrossRefPubMed Kaku, M., K. Uoshima, Y. Yamashita, and H. Miura. 2005. Investigation of periodontal ligament reaction upon excessive occlusal load—osteopontin induction among periodontal ligament cells. Journal of Periodontal Research 40 (1): 59–66.CrossRefPubMed
7.
go back to reference Jin, L.J., and C.F. Cao. 1992. Clinical diagnosis of trauma from occlusion and its relation with severity of periodontitis. Journal of Clinical Periodontology 19 (2): 92–97.CrossRefPubMed Jin, L.J., and C.F. Cao. 1992. Clinical diagnosis of trauma from occlusion and its relation with severity of periodontitis. Journal of Clinical Periodontology 19 (2): 92–97.CrossRefPubMed
8.
go back to reference Harrel, S.K. 2003. Occlusal forces as a risk factor for periodontal disease. Periodontol 2000 (32): 111–117.CrossRef Harrel, S.K. 2003. Occlusal forces as a risk factor for periodontal disease. Periodontol 2000 (32): 111–117.CrossRef
9.
go back to reference Feller, L., R.A. Khammissa, I. Schechter, G. Thomadakis, J. Fourie, and J. Lemmer. 2015. Biological events periodontal ligament and alveolar bone associated with application of orthodontic forces. ScientificWorldJournal 2015: 876509. Feller, L., R.A. Khammissa, I. Schechter, G. Thomadakis, J. Fourie, and J. Lemmer. 2015. Biological events periodontal ligament and alveolar bone associated with application of orthodontic forces. ScientificWorldJournal 2015: 876509.
10.
go back to reference Chowdhury, B., A.L. David, C. Thrasivoulou, D.L. Becker, D.L. Bader, and T.T. Chowdhury. 2014. Tense strain increased COX-2 expression and PGE2 release leading to weaking of the human amniotic membrane. Placenta 35: 1057–1064.CrossRefPubMed Chowdhury, B., A.L. David, C. Thrasivoulou, D.L. Becker, D.L. Bader, and T.T. Chowdhury. 2014. Tense strain increased COX-2 expression and PGE2 release leading to weaking of the human amniotic membrane. Placenta 35: 1057–1064.CrossRefPubMed
11.
go back to reference Karadottir, H., N.N. Kulkarni, T. Gudjonsson, S. Karason, and G.H. Gudmundsson. 2015. Cyclic stretch down-regulates cathelicidin antimicrobial peptide expression and activates a pro-inflammatory response in human bronchial epithelial cells. PeerJ 3: 31483.CrossRef Karadottir, H., N.N. Kulkarni, T. Gudjonsson, S. Karason, and G.H. Gudmundsson. 2015. Cyclic stretch down-regulates cathelicidin antimicrobial peptide expression and activates a pro-inflammatory response in human bronchial epithelial cells. PeerJ 3: 31483.CrossRef
12.
go back to reference Lin, Y.M., F. Li, and X.Z. Shi. 2014. Mechanical stress is a pro-inflammatory stimulus in the gut: in vitro, in vivo and ex vivo evidence. PLoS One 9: e106242.CrossRefPubMedPubMedCentral Lin, Y.M., F. Li, and X.Z. Shi. 2014. Mechanical stress is a pro-inflammatory stimulus in the gut: in vitro, in vivo and ex vivo evidence. PLoS One 9: e106242.CrossRefPubMedPubMedCentral
13.
go back to reference Jacobs, C., C. Walter, T. Ziebart, S. Grimm, D. Meila, E. Krieger, and H. Wehtbein. 2014. Induction of IL-6 and MMP-8 in human periodontal fibroblasts by static tensile strain. Clinical Oral Investigations 18: 901–908.CrossRefPubMed Jacobs, C., C. Walter, T. Ziebart, S. Grimm, D. Meila, E. Krieger, and H. Wehtbein. 2014. Induction of IL-6 and MMP-8 in human periodontal fibroblasts by static tensile strain. Clinical Oral Investigations 18: 901–908.CrossRefPubMed
14.
go back to reference Bletsa, A., E. Berggreen, and P. Brudvik. 2006. Interleukin-1 alpha and tumor necrosis factor-alpha expression during the early phases of orthodontic tooth movement in rats. European Journal of Oral Sciences 114: 423–429.CrossRefPubMed Bletsa, A., E. Berggreen, and P. Brudvik. 2006. Interleukin-1 alpha and tumor necrosis factor-alpha expression during the early phases of orthodontic tooth movement in rats. European Journal of Oral Sciences 114: 423–429.CrossRefPubMed
15.
go back to reference Maeda, A., K. Soejima, K. Bandow, K. Kuroe, K. Kakimoto, S. Miyawaki, A. Okamoto, and T. Matsuguchi. 2007. Force-induced IL-8 from periodontal ligament cells requires IL-1beta. Journal of Dental Research 86: 629–634.CrossRefPubMed Maeda, A., K. Soejima, K. Bandow, K. Kuroe, K. Kakimoto, S. Miyawaki, A. Okamoto, and T. Matsuguchi. 2007. Force-induced IL-8 from periodontal ligament cells requires IL-1beta. Journal of Dental Research 86: 629–634.CrossRefPubMed
16.
go back to reference Ren, Y., and A. Vissink. 2008. Cytokines in crevicular fluid and orthodontic tooth movement. European Journal of Oral Sciences 116: 89–97.CrossRefPubMed Ren, Y., and A. Vissink. 2008. Cytokines in crevicular fluid and orthodontic tooth movement. European Journal of Oral Sciences 116: 89–97.CrossRefPubMed
17.
go back to reference Uematsu, S., M. Mogi, and T. Deguchi. 1996. Interleukin (IL)-1 beta, IL-6, tumor necrosis factor-alpha, epidermal growth factor, and beta 2-microglobulin levels are elevated in gingival crevicular fluid during human orthodontic tooth movement. Journal of Dental Research 75: 562–567.CrossRefPubMed Uematsu, S., M. Mogi, and T. Deguchi. 1996. Interleukin (IL)-1 beta, IL-6, tumor necrosis factor-alpha, epidermal growth factor, and beta 2-microglobulin levels are elevated in gingival crevicular fluid during human orthodontic tooth movement. Journal of Dental Research 75: 562–567.CrossRefPubMed
18.
go back to reference Zhao, D., Y. Wu, J. Zhuang, C. Xu, and F. Zhang. 2016. Activation of NLRP1 and NLRP3 inflammasomes contributed to cyclic stretch-induced pyroptosis and release of IL-1β in human periodontal ligament cells. Oncotarget 7 (42): 292–302.CrossRef Zhao, D., Y. Wu, J. Zhuang, C. Xu, and F. Zhang. 2016. Activation of NLRP1 and NLRP3 inflammasomes contributed to cyclic stretch-induced pyroptosis and release of IL-1β in human periodontal ligament cells. Oncotarget 7 (42): 292–302.CrossRef
19.
20.
go back to reference Van de veerdonk, F.L., M.G. Netea, C.A. Dinarello, and L.A. Joosten. 2011. Inflammasome activation of IL-1beta and IL-18 processing during infection. Trends in Immunology 32: 110–116.CrossRefPubMed Van de veerdonk, F.L., M.G. Netea, C.A. Dinarello, and L.A. Joosten. 2011. Inflammasome activation of IL-1beta and IL-18 processing during infection. Trends in Immunology 32: 110–116.CrossRefPubMed
21.
go back to reference Cookson, B.T., and M.A. Brennan. 2001. Pro-inflammatory programmed cell death. Trends Microbial. 9: 113–114.CrossRef Cookson, B.T., and M.A. Brennan. 2001. Pro-inflammatory programmed cell death. Trends Microbial. 9: 113–114.CrossRef
22.
go back to reference Kuipers, M.T., H. Aslami, J.R. Janczy, K.F. van der Sluijs, A.P. Vlaar, E.K. Wolthuis, G. Choi, J.J. Roelofs, R.A. Flavell, F.S. Sutterwala, P. Bresser, J.C. Leemans, T. van der Poll, M.J. Schultz, and C.W. Wieland. 2012. Ventilator-induced lung injury is mediated by the NLRP3 inflammasome. Anesthesiology 116: 1104–1115.CrossRefPubMed Kuipers, M.T., H. Aslami, J.R. Janczy, K.F. van der Sluijs, A.P. Vlaar, E.K. Wolthuis, G. Choi, J.J. Roelofs, R.A. Flavell, F.S. Sutterwala, P. Bresser, J.C. Leemans, T. van der Poll, M.J. Schultz, and C.W. Wieland. 2012. Ventilator-induced lung injury is mediated by the NLRP3 inflammasome. Anesthesiology 116: 1104–1115.CrossRefPubMed
23.
go back to reference Taabazuing, C.Y., M.C. Okondo, and D.A. Bachovchin. 2017. Pyroptosis and apoptosis pathways engage in bidirectional crosstalk in monocytes and macrophages. Cell Chemical Biology 24 (4): 507–514.CrossRefPubMedPubMedCentral Taabazuing, C.Y., M.C. Okondo, and D.A. Bachovchin. 2017. Pyroptosis and apoptosis pathways engage in bidirectional crosstalk in monocytes and macrophages. Cell Chemical Biology 24 (4): 507–514.CrossRefPubMedPubMedCentral
24.
go back to reference de Vasconcelos, N.M., N. Van Opdenbosch, H. Van Gorp, E. Parthoens, and M. Lamkanfi. 2018. Single-cell analysis of pyroptosis dynamics reveals conserved GSDMD-mediated subcellular events that precede plasma membrane rupture. Cell Death and Differentiation. https://doi.org/10.1038/s41418-018-0106-7. de Vasconcelos, N.M., N. Van Opdenbosch, H. Van Gorp, E. Parthoens, and M. Lamkanfi. 2018. Single-cell analysis of pyroptosis dynamics reveals conserved GSDMD-mediated subcellular events that precede plasma membrane rupture. Cell Death and Differentiation. https://​doi.​org/​10.​1038/​s41418-018-0106-7.
25.
go back to reference Aglietti, R.A., A. Estevez, A. Gupta, M.G. Ramirez, P.S. Liu, N. Kayagaki, C. Ciferri, V.M. Dixit, and E.C. Dueber. 2016. GSDMD p30 elicited by caspase-11 during pyroptosis forms pores in membrane. Proceedings of the National Academy of Sciences of the United States of America 113: 7858–7863.CrossRefPubMedPubMedCentral Aglietti, R.A., A. Estevez, A. Gupta, M.G. Ramirez, P.S. Liu, N. Kayagaki, C. Ciferri, V.M. Dixit, and E.C. Dueber. 2016. GSDMD p30 elicited by caspase-11 during pyroptosis forms pores in membrane. Proceedings of the National Academy of Sciences of the United States of America 113: 7858–7863.CrossRefPubMedPubMedCentral
26.
go back to reference Chen, X., W.T. He, L. Hu, J. Li, Y. Fang, X. Wang, X. Xu, Z. Wang, K. Huang, and J. Han. 2016. Pyroptosis is driven by non-selective gasdermin-D pore and its morphology is different from MLKL channel-mediated necroptosis. Cell Research 26: 1007–1020.CrossRefPubMedPubMedCentral Chen, X., W.T. He, L. Hu, J. Li, Y. Fang, X. Wang, X. Xu, Z. Wang, K. Huang, and J. Han. 2016. Pyroptosis is driven by non-selective gasdermin-D pore and its morphology is different from MLKL channel-mediated necroptosis. Cell Research 26: 1007–1020.CrossRefPubMedPubMedCentral
27.
go back to reference Ding, J., K. Wang, W. Liu, Y. She, Q. Sun, J. Shi, H. Sun, D.C. Wang, and F. Shao. 2016. Pore-forming activity and structural autoinhibition of the gasdermin family. Nature 535: 111–116.CrossRef Ding, J., K. Wang, W. Liu, Y. She, Q. Sun, J. Shi, H. Sun, D.C. Wang, and F. Shao. 2016. Pore-forming activity and structural autoinhibition of the gasdermin family. Nature 535: 111–116.CrossRef
28.
go back to reference He, W.T., H. Wan, L. Hu, P. Chen, X. Wang, Z. Huang, Z.H. Yang, C.Q. Zhong, and J. Han. 2015. Gasdermin D is an executor of pyroptosis and required for interlrukin-1β secretion. Cell Research 25: 1285–1298.CrossRefPubMedPubMedCentral He, W.T., H. Wan, L. Hu, P. Chen, X. Wang, Z. Huang, Z.H. Yang, C.Q. Zhong, and J. Han. 2015. Gasdermin D is an executor of pyroptosis and required for interlrukin-1β secretion. Cell Research 25: 1285–1298.CrossRefPubMedPubMedCentral
29.
go back to reference Yamaguchi, M., N. Shimizu, Y. Shibata, and Y. Abiko. 1996. Effects of different magnitudes of tension-force on alkaline phosphatase activity in periodontal ligament cells. Journal of Dental Research 75 (3): 889–894.CrossRefPubMed Yamaguchi, M., N. Shimizu, Y. Shibata, and Y. Abiko. 1996. Effects of different magnitudes of tension-force on alkaline phosphatase activity in periodontal ligament cells. Journal of Dental Research 75 (3): 889–894.CrossRefPubMed
30.
go back to reference Zhong, W., C. Xu, F. Zhang, X. Zhang, X. Jiang, and D. Ye. 2008. Cyclic stretching force-induced early apoptosis in human periodontal ligament cells. Oral Diseases 14 (3): 270–276.CrossRefPubMed Zhong, W., C. Xu, F. Zhang, X. Zhang, X. Jiang, and D. Ye. 2008. Cyclic stretching force-induced early apoptosis in human periodontal ligament cells. Oral Diseases 14 (3): 270–276.CrossRefPubMed
31.
go back to reference Hao, Y., C. Xu, S. Sun, and F. Zhang. 2009. Cyclic stretching force induces apoptosis in human periodontal ligament cells via caspase-9. Archives of Oral Biology 54 (9): 864–870.CrossRefPubMed Hao, Y., C. Xu, S. Sun, and F. Zhang. 2009. Cyclic stretching force induces apoptosis in human periodontal ligament cells via caspase-9. Archives of Oral Biology 54 (9): 864–870.CrossRefPubMed
32.
go back to reference Agarwal, S., P. Long, A. Seyedain, N. Piesco, A. Shree, and R. Gassner. 2003. A central role for the nuclear factor-kappaB pathway in anti-inflammatory and proinflammatory actions of mechanical strain. The FASEB Journal 17 (8): 899–901.CrossRefPubMed Agarwal, S., P. Long, A. Seyedain, N. Piesco, A. Shree, and R. Gassner. 2003. A central role for the nuclear factor-kappaB pathway in anti-inflammatory and proinflammatory actions of mechanical strain. The FASEB Journal 17 (8): 899–901.CrossRefPubMed
33.
go back to reference Nokhbehsaim, M., B. Deschner, J. Winter, S. Reimann, C. Bourauel, S. Jepsen, A. Jager, and J. Deschner. 2010. Contribution of orthodontic load to inflammation-mediated periodontal destruction. Journal of Orofacial Orthopedics 71 (6): 390–402.CrossRefPubMed Nokhbehsaim, M., B. Deschner, J. Winter, S. Reimann, C. Bourauel, S. Jepsen, A. Jager, and J. Deschner. 2010. Contribution of orthodontic load to inflammation-mediated periodontal destruction. Journal of Orofacial Orthopedics 71 (6): 390–402.CrossRefPubMed
34.
go back to reference Ma, J., D. Zhao, Y. Wu, C. Xu, and F. Zhang. 2015. Cyclic stretch induced gene expression of extracellular matrix and adhesion molecules in human periodontal ligament cells. Archives of Oral Biology 60 (3): 447–455.CrossRefPubMed Ma, J., D. Zhao, Y. Wu, C. Xu, and F. Zhang. 2015. Cyclic stretch induced gene expression of extracellular matrix and adhesion molecules in human periodontal ligament cells. Archives of Oral Biology 60 (3): 447–455.CrossRefPubMed
35.
go back to reference Glickman, I., and J.B. Smalow. 1962. Alteration in the pathway of gingival inflammation into the underlying tissues induced by excessive occlusal forces. Journal of Periodontology 33: 7–13. Glickman, I., and J.B. Smalow. 1962. Alteration in the pathway of gingival inflammation into the underlying tissues induced by excessive occlusal forces. Journal of Periodontology 33: 7–13.
36.
go back to reference Biancu, S., I. Ericsson, and J. Lindhe. 1995. Periodontal ligament tissue reactions to trauma and gingival inflammation. An experimental study in the beagle dog. J Clin Periodontol 22: 772–779.CrossRefPubMed Biancu, S., I. Ericsson, and J. Lindhe. 1995. Periodontal ligament tissue reactions to trauma and gingival inflammation. An experimental study in the beagle dog. J Clin Periodontol 22: 772–779.CrossRefPubMed
37.
go back to reference Bostanci, N., G. Emingil, B. Saygan, O. Turkoglu, G. Atilla, M.A. Curtis, and G.N. Belibasakis. 2009. Expression and regulation of the NALP3 inflammasome complex in periodontal diseases. Clinical and Experimental Immunology 157: 415–422.CrossRefPubMedPubMedCentral Bostanci, N., G. Emingil, B. Saygan, O. Turkoglu, G. Atilla, M.A. Curtis, and G.N. Belibasakis. 2009. Expression and regulation of the NALP3 inflammasome complex in periodontal diseases. Clinical and Experimental Immunology 157: 415–422.CrossRefPubMedPubMedCentral
39.
go back to reference Sauer, J.D., C.E. Witte, J. Zemansky, B. Hanson, P. Lauer, and D.A. Portnoy. 2010. Listeria monocytogenes triggers AIM2-mediated pyroptosis upon infrequent bacteriolysis in the macrophage cytosol. Cell Host & Microbe 7 (5): 412–419.CrossRef Sauer, J.D., C.E. Witte, J. Zemansky, B. Hanson, P. Lauer, and D.A. Portnoy. 2010. Listeria monocytogenes triggers AIM2-mediated pyroptosis upon infrequent bacteriolysis in the macrophage cytosol. Cell Host & Microbe 7 (5): 412–419.CrossRef
40.
go back to reference Cheng, R., Y. Feng, R. Zhang, W. Liu, L. Lei, and T. Hu. 2018. The extent of pyroptosis varies in different stages of apical periodontitis. Biochimica et Biophysica Acta 1864 (1): 226–237.CrossRefPubMed Cheng, R., Y. Feng, R. Zhang, W. Liu, L. Lei, and T. Hu. 2018. The extent of pyroptosis varies in different stages of apical periodontitis. Biochimica et Biophysica Acta 1864 (1): 226–237.CrossRefPubMed
41.
go back to reference Kayagaki, N., I.B. Stowe, B.L. Lee, K. O’Rourke, K. Anderson, S. Warming, T. Cuellar, B. Haley, M. Roose-Girma, Q.T. Phung, P.S. Liu, J.R. Lill, H. Li, J. Wu, S. Kummerfeld, J. Zhang, W.P. Lee, S.J. Snipas, G.S. Salvesen, L.X. Morris, L. Fitzgerald, Y. Zhang, E.M. Bertram, C.C. Goodnow, and V.M. Dixit. 2015. Caspase-11 cleaves gasdermin D for non-canonical inflammasome signaling. Nature 526: 666–671.CrossRef Kayagaki, N., I.B. Stowe, B.L. Lee, K. O’Rourke, K. Anderson, S. Warming, T. Cuellar, B. Haley, M. Roose-Girma, Q.T. Phung, P.S. Liu, J.R. Lill, H. Li, J. Wu, S. Kummerfeld, J. Zhang, W.P. Lee, S.J. Snipas, G.S. Salvesen, L.X. Morris, L. Fitzgerald, Y. Zhang, E.M. Bertram, C.C. Goodnow, and V.M. Dixit. 2015. Caspase-11 cleaves gasdermin D for non-canonical inflammasome signaling. Nature 526: 666–671.CrossRef
42.
go back to reference Shi, J., Y. Zhao, K. Wang, X. Shi, Y. Wang, H. Huang, Y. Zhuang, T. Cai, F. Wang, and F. Shao. 2016. Cleavage of GSDMD by inflammatory caspases determines pyroptotic cell death. The EMBO Journal 35: 1766–1778.CrossRef Shi, J., Y. Zhao, K. Wang, X. Shi, Y. Wang, H. Huang, Y. Zhuang, T. Cai, F. Wang, and F. Shao. 2016. Cleavage of GSDMD by inflammatory caspases determines pyroptotic cell death. The EMBO Journal 35: 1766–1778.CrossRef
43.
go back to reference Mulvihill, E., L. Sborgi, S.A. Mari, M. Pfreundschuh, S. Hiller, and D.J. Muller. 2018. Mechanism of membrane pore formation by human gasdermin-D. EMBO J: e98321. Mulvihill, E., L. Sborgi, S.A. Mari, M. Pfreundschuh, S. Hiller, and D.J. Muller. 2018. Mechanism of membrane pore formation by human gasdermin-D. EMBO J: e98321.
44.
go back to reference Kanneganti, A., R.K.S. Malireddi, P.H.V. Saavedra, L. Vande Walle, H. Van Gorp, H. Kambara, H. Tillman, P. Vogel, H.R. Luo, R.J. Xavier, H. Chi, and M. Lamkanfi. 2018. GSDMD is critical for autoinflammatory pathology in a mouse model of Familial Mediterranean Fever. The Journal of Experimental Medicine 215 (6): 1519–1529.CrossRefPubMedPubMedCentral Kanneganti, A., R.K.S. Malireddi, P.H.V. Saavedra, L. Vande Walle, H. Van Gorp, H. Kambara, H. Tillman, P. Vogel, H.R. Luo, R.J. Xavier, H. Chi, and M. Lamkanfi. 2018. GSDMD is critical for autoinflammatory pathology in a mouse model of Familial Mediterranean Fever. The Journal of Experimental Medicine 215 (6): 1519–1529.CrossRefPubMedPubMedCentral
45.
go back to reference Gao, Y.L., J.H. Zhai, and Y.F. Chai. 2018. Recent advances in the molecular mechanisms underlying pyroptosis in sepsis. Mediators of Inflammation: 5828823. Gao, Y.L., J.H. Zhai, and Y.F. Chai. 2018. Recent advances in the molecular mechanisms underlying pyroptosis in sepsis. Mediators of Inflammation: 5828823.
46.
go back to reference McKenzie, B.A., M.K. Mamik, L.B. Saito, R. Boghozian, M.C. Monaco, E.O. Major, J.Q. Lu, W.G. Branton, and C. Power. 2018. Caspase-1 inhibition prevents glial inflammasome activation and pyroptosis in models of multiple sclerosis. 115 (26): E6065–E6074. McKenzie, B.A., M.K. Mamik, L.B. Saito, R. Boghozian, M.C. Monaco, E.O. Major, J.Q. Lu, W.G. Branton, and C. Power. 2018. Caspase-1 inhibition prevents glial inflammasome activation and pyroptosis in models of multiple sclerosis. 115 (26): E6065–E6074.
47.
go back to reference Liu, X., and J. Lieberman. 2017. A mechanistic understanding of pyroptosis: the fiery death triggered by invasive infection. Advances in Immunology 135: 81–117.CrossRefPubMed Liu, X., and J. Lieberman. 2017. A mechanistic understanding of pyroptosis: the fiery death triggered by invasive infection. Advances in Immunology 135: 81–117.CrossRefPubMed
48.
go back to reference Sborgi, L., S. Ruhl, E. Mulvihill, J. Pipercevic, R. Heilig, H. Stahlberg, C.J. Farady, D.J. Muller, P. Broz, and S. Hiller. 2016. GSDMD membrane pore formation constitutes the mechanism of pyroptotic cell death. The EMBO Journal 35 (16): 1766–1778.CrossRefPubMedPubMedCentral Sborgi, L., S. Ruhl, E. Mulvihill, J. Pipercevic, R. Heilig, H. Stahlberg, C.J. Farady, D.J. Muller, P. Broz, and S. Hiller. 2016. GSDMD membrane pore formation constitutes the mechanism of pyroptotic cell death. The EMBO Journal 35 (16): 1766–1778.CrossRefPubMedPubMedCentral
Metadata
Title
Gasdermin-d Played a Critical Role in the Cyclic Stretch–Induced Inflammatory Reaction in Human Periodontal Ligament Cells
Authors
Jiabao Zhuang
Yingying Wang
Fang Qu
Yaqin Wu
Dan Zhao
Chun Xu
Publication date
01-04-2019
Publisher
Springer US
Published in
Inflammation / Issue 2/2019
Print ISSN: 0360-3997
Electronic ISSN: 1573-2576
DOI
https://doi.org/10.1007/s10753-018-0912-6

Other articles of this Issue 2/2019

Inflammation 2/2019 Go to the issue
Obesity Clinical Trial Summary

At a glance: The STEP trials

A round-up of the STEP phase 3 clinical trials evaluating semaglutide for weight loss in people with overweight or obesity.

Developed by: Springer Medicine

Highlights from the ACC 2024 Congress

Year in Review: Pediatric cardiology

Watch Dr. Anne Marie Valente present the last year's highlights in pediatric and congenital heart disease in the official ACC.24 Year in Review session.

Year in Review: Pulmonary vascular disease

The last year's highlights in pulmonary vascular disease are presented by Dr. Jane Leopold in this official video from ACC.24.

Year in Review: Valvular heart disease

Watch Prof. William Zoghbi present the last year's highlights in valvular heart disease from the official ACC.24 Year in Review session.

Year in Review: Heart failure and cardiomyopathies

Watch this official video from ACC.24. Dr. Biykem Bozkurt discusses last year's major advances in heart failure and cardiomyopathies.