Inter J Stomatol ›› 2019, Vol. 46 ›› Issue (2): 186-190.doi: 10.7518/gjkq.2019023

• Periodontal Diseases • Previous Articles     Next Articles

Research progress on inflammasome in periodontitis

Huixin Lü1,Liuyi Du1,Yao Wang1,Weixian Yu2,Jingyi Ren1,Xinming Gu1,Yanmin Zhou1()   

  1. 1. Implant Center, Hospital of Stomatology, Jilin University, Changchun 130021, China
    2.Key Laboratory of Mechanism of Tooth Development and Jaw Bone Remodeling and Regeneration in Jilin Province, Changchun 130021, China)
  • Received:2018-06-30 Revised:2018-11-10 Online:2019-03-01 Published:2019-03-15
  • Contact: Yanmin Zhou E-mail:Zhouym62@163.com
  • Supported by:
    This study was supported by National Natural Science Fundation of China(81570983);Postgraduate Innovation Fund Project of Jilin University(2017014)

Abstract:

Inflammasome is a multi-protein complex that exists in the cytoplasm and is involved in innate immune response. This multi-protein oligomer can activate proinflammatory cytokines such as interleukin-1β, mediate cell death, and regulate the progression of inflammation. Periodontitis is an inflammatory and destructive disease caused by various periodontal pathogens, such asPorphyromonas gingivalis. Bacteria and their toxic components can cause the assembly of various inflammasomes and eventually destroy periodontal tissues. This review focuses on the production of inflammasomes in periodontitis and its mechanism of causing diseases.

Key words: periodontitis, inflammasome, pyroptosis, interleukin

CLC Number: 

  • R781.4 +2

TrendMD: 
[1] Martinon F, Burns K, Tschopp J . The inflammasome: a molecular platform triggering activation of inflam-matory caspases and processing of proIL-β[J]. Mol Cell, 2002,10(2):417-426.
doi: 10.1016/S1097-2765(02)00599-3
[2] Xue F, Shu R, Xie Y . The expression of NLRP3, NLRP1 and AIM2 in the gingival tissue of periodon-titis patients: RT-PCR study and immunohistoche-mistry[J]. Arch Oral Biol, 2015,60(6):948-958.
doi: 10.1016/j.archoralbio.2015.03.005 pmid: 25841070
[3] Broz P, Monack DM . Molecular mechanisms of in-flammasome activation during microbial infections[J]. Immunol Rev, 2011,243(1):174-190.
doi: 10.1111/j.1600-065X.2011.01041.x pmid: 3170129
[4] van Ooij C . Immunology: NLRP6 keeps the bad ba- cteria at bay[J]. Nat Rev Microbiol, 2011,9(7):481.
doi: 10.1038/nrmicro2599
[5] Kummer JA, Broekhuizen R, Everett H , et al. In-flammasome components NALP 1 and 3 show distinct but separate expression profiles in human tissues suggesting a site-specific role in the inflam-matory response[J]. J Histochem Cytochem, 2007,55(5):443-452.
doi: 10.1369/jhc.6A7101.2006 pmid: 17164409
[6] Kaushal V, Leblanc AC . Inflammasome-mediated activation of caspase-1 and caspase-6 in primary human neurons[J]. Alzheimers Dementia, 2012,8(4):303.
doi: 10.1016/j.jalz.2012.05.825
[7] Eibl C, Grigoriu S, Hessenberger M , et al. Structural and functional analysis of the NLRP4 pyrin domain[J]. Biochemistry, 2012,51(37):7330-7341.
doi: 10.1021/bi3007059 pmid: 3445046
[8] Jounai N, Kobiyama K, Shiina M , et al. NLRP4 ne-gatively regulates autophagic processes through an association with beclin1[J]. J Immunol, 2011,186(3):1646-1655.
doi: 10.4049/jimmunol.1001654 pmid: 21209283
[9] Bürckstümmer T, Baumann C, Blüml S , et al. An orthogonal proteomic-genomic screen identifies AIM2 as a cytoplasmic DNA sensor for the inflammasome[J]. Nat Immunol, 2009,10(3):266-272.
doi: 10.1038/ni.1702 pmid: 19158679
[10] Adamczak SE, de Rivero Vaccari JP, Dale G , et al. Pyroptotic neuronal cell death mediated by the AIM2 inflammasome[J]. J Cereb Blood Flow Metab, 2014,34(4):621-629.
doi: 10.1038/jcbfm.2013.236 pmid: 3982080
[11] Bauernfeind FG, Horvath G, Stutz A , et al. Cutting edge: NF-κB activating pattern recognition and cyto-kine receptors license NLRP3 inflammasome activa-tion by regulating NLRP3 expression[J]. J Immunol, 2009,183(2):787-791.
doi: 10.4049/jimmunol.0901363 pmid: 19570822
[12] Hao LY, Liu X, Franchi L . Inflammasomes in inflam-matory bowel disease pathogenesis[J]. Curr Opin Gastroenterol, 2013,29(4):363-369.
doi: 10.1097/MOG.0b013e32836157a4 pmid: 23689522
[13] Stehlik C, Dorfleutner A . COPs and POPs: modulators of inflammasome activity[J]. J Immunol, 2007,179(12):7993-7998.
doi: 10.4049/jimmunol.179.12.7993 pmid: 18056338
[14] Guarda G, Braun M, Staehli F , et al. TypeⅠinter-feron inhibits interleukin-1 production and inflamma-some activation[J]. Immunity, 2011,34(2):213-223.
doi: 10.1016/j.immuni.2011.02.006
[15] Eigenbrod T, Bode KA, Dalpke AH . Early inhibition of IL-1β expression by IFN-γ is mediated by im-paired binding of NF-κB to the IL-1β promoter but is independent of nitric oxide[J]. J Immunol, 2013,190(12):6533-6541.
doi: 10.4049/jimmunol.1300324
[16] Guarda G, Dostert C, Staehli F , et al. T cells dampen innate immune responses through inhibition of NLRP1 and NLRP3 inflammasomes[J]. Nature, 2009,460(7252):269-273.
doi: 10.1038/nature08100 pmid: 19494813
[17] Brodsky IE, Palm NW, Sadanand S , et al. A Yersinia effector protein promotes virulence by preventing inflammasome recognition of the type Ⅲ secretion system[J]. Cell Host Microbe, 2010,7(5):376-387.
doi: 10.1016/j.chom.2010.04.009 pmid: 20478539
[18] Doitsh G, Galloway NL, Geng X , et al. Cell death by pyroptosis drives CD4 T-cell depletion in HIV-1 in- fection[J]. Nature, 2014,505(7484):509-514.
doi: 10.1038/nature12940
[19] Pierini R, Juruj C, Perret M , et al. AIM2/ASC triggers caspase-8-dependent apoptosis in Francisella-infected caspase-1-deficient macrophages[J]. Cell Death Differ, 2012,19(10):1709-1721.
doi: 10.1038/cdd.2012.51 pmid: 3438500
[20] Allaeys I, Marceau F, Poubelle PE . NLRP3 promotes autophagy of urate crystals phagocytized by human osteoblasts[J]. Arthritis Res Ther, 2013,15(6):R176.
doi: 10.1186/ar4365 pmid: 4061723
[21] Yamaguchi Y, Kurita-Ochiai T, Kobayashi R , et al. Regulation of the NLRP3 inflammasome in Por-phyromonas gingivalis-accelerated periodontal disease[J]. Inflamm Res, 2017,66(1):59-65.
doi: 10.1007/s00011-016-0992-4 pmid: 27665233
[22] Bostanci N, Meier A, Guggenheim B , et al. Regula-tion of NLRP3 and AIM2 inflammasome gene ex-pression levels in gingival fibroblasts by oral bio-films[J]. Cell Immunol, 2011,270(1):88-93.
doi: 10.1016/j.cellimm.2011.04.002 pmid: 21550598
[23] Belibasakis GN, Guggenheim B, Bostanci N . Down-regulation of NLRP3 inflammasome in gingival fibroblasts by subgingival biofilms: involvement of Porphyromonas gingivalis[J]. Innate Immun, 2013,19(1):3-9.
doi: 10.1177/1753425912444767 pmid: 22522430
[24] Zupin L, Navarra CO, Robino A , et al. NLRC5 polymorphism is associated with susceptibility to chronic periodontitis[J]. Immunobiology, 2017,222(5):704-708.
doi: 10.1016/j.imbio.2017.01.001 pmid: 28122660
[25] Taxman DJ, Swanson KV, Broglie PM , et al. Por-phyromonas gingivalis mediates inflammasome repression in polymicrobial cultures through a novel mechanism involving reduced endocytosis[J]. J Biol Chem, 2012,287(39):32791-32799.
doi: 10.1074/jbc.M112.401737 pmid: 22843689
[26] Morandini AC, Ramos-Junior ES, Potempa J , et al. Porphyromonas gingivalis fimbriae dampen P2X7-dependent interleukin-1β secretion[J]. J Innate Immun, 2014,6(6):831-845.
doi: 10.1159/000363338
[27] Belibasakis GN, Johansson A . Aggregatibacter ac-tinomycetemcomitans targets NLRP3 and NLRP6 inflammasome expression in human mononuclear leukocytes[J]. Cytokine, 2012,59(1):124-130.
doi: 10.1016/j.cyto.2012.03.016 pmid: 22503597
[28] Okinaga T, Ariyoshi W, Nishihara T . Aggregatibacter actinomycetemcomitans invasion induces inter-leukin-1β production through reactive oxygen species and cathepsin B[J]. J Interferon Cytokine Res, 2015,35(6):431-440.
doi: 10.1089/jir.2014.0127 pmid: 25789553
[29] Lu A, Wu H . Structural mechanisms of inflammasome assembly[J]. FEBS J, 2015,282(3):435-444.
doi: 10.1111/febs.13133 pmid: 25354325
[30] Li H, Zhou X, Zhang J . Induction of heme oxygenase-1 attenuates lipopolysaccharide-induced inflamma-some activation in human gingival epithelial cells[J]. Int J Mol Med, 2014,34(4):1039-1044.
doi: 10.3892/ijmm.2014.1865 pmid: 25069505
[1] Fu Yu, He Wei, Huang Lan. Ferroptosis and its implication in oral diseases [J]. Int J Stomatol, 2024, 51(1): 36-44.
[2] Luo Xiaojie,Wang Dexu,Chen Xiaotao. Relationship between periodontitis and ferroptosis based on bioinformatics analysis [J]. Int J Stomatol, 2023, 50(6): 661-668.
[3] Huang Yuanhong,Peng Xian,Zhou Xuedong.. Progress in research into the effect of Rhizoma Drynariae on the treatment of bone-related diseases in the oral cavity [J]. Int J Stomatol, 2023, 50(6): 679-685.
[4] Hu Jia,Wang Xiuqing,Lu Guoying,Huang Xiaojing.. Regenerative endodontic procedures for permanent tooth with immature apices in adult patients [J]. Int J Stomatol, 2023, 50(6): 686-695.
[5] Gong Meiling,Cheng Xingqun,Wu Hongkun.. Research progress on the correlation between Parkinson’s disease and periodontitis [J]. Int J Stomatol, 2023, 50(5): 587-593.
[6] Xu Zhibo,Meng Xiuping.. Research progress on mechanism of Enterococcus faecalis escaping host immune defense [J]. Int J Stomatol, 2023, 50(5): 613-617.
[7] Sun Jia,Han Ye,Hou Jianxia. Research progress on the role of interleukin-6-hepcidin signal axis in regulating the pathogenesis of periodontitis-associated anemia [J]. Int J Stomatol, 2023, 50(3): 329-334.
[8] Liang Zhiying,Zhao Yuanxi,Zhu Jiani,Su Qin.. Retrospective analysis of clinical data of 288 cases of endodontic microsurgery on anterior teeth [J]. Int J Stomatol, 2023, 50(2): 166-171.
[9] Liu Tiqian,Liang Xing,Liu Weiqing,Li Xiaohong,Zhu Rui.. Research progress on the role and mechanism of occlusal trauma in the development of periodontitis [J]. Int J Stomatol, 2023, 50(1): 19-24.
[10] Li Qiong,Yu Weixian. Research progress on resveratrol for the treatment of periodontitis and its bioavailability [J]. Int J Stomatol, 2023, 50(1): 25-31.
[11] Huang Weikun,Xu Qiuyan,Zhou Ting.. Role of baicalin and mechanisms through which baicalin attenuates oxidative stress injury induced by lipopolysaccharide on macrophages [J]. Int J Stomatol, 2022, 49(5): 521-528.
[12] Zhou Jianpeng,Xie Xudong,Zhao Lei,Wang Jun.. Research progress on the roles and mechanisms of T-helper 17 cells and interleukin-17 in periodontitis [J]. Int J Stomatol, 2022, 49(5): 586-592.
[13] Chen Huiyu,Bai Mingru,Ye Ling.. Progress in understanding the correlations between semaphorin 3A and common oral diseases [J]. Int J Stomatol, 2022, 49(5): 593-599.
[14] Zhou Jiajia,Zhao Lei,Xu Xin. Research progress on the genetic polymorphism of periodontitis [J]. Int J Stomatol, 2022, 49(4): 432-440.
[15] Chen Siting,Zhong Xiong,Meng Wenxia.. Research progress on Nod-like receptor protein 3 inflammasome in oral mucosal diseases [J]. Int J Stomatol, 2022, 49(4): 471-475.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
[1] . [J]. Foreign Med Sci: Stomatol, 1999, 26(06): .
[2] . [J]. Foreign Med Sci: Stomatol, 1999, 26(06): .
[3] . [J]. Foreign Med Sci: Stomatol, 1999, 26(06): .
[4] . [J]. Foreign Med Sci: Stomatol, 1999, 26(06): .
[5] . [J]. Foreign Med Sci: Stomatol, 1999, 26(06): .
[6] . [J]. Foreign Med Sci: Stomatol, 1999, 26(05): .
[7] . [J]. Foreign Med Sci: Stomatol, 1999, 26(05): .
[8] . [J]. Foreign Med Sci: Stomatol, 1999, 26(05): .
[9] . [J]. Foreign Med Sci: Stomatol, 1999, 26(04): .
[10] . [J]. Foreign Med Sci: Stomatol, 1999, 26(04): .