Dental and Medical Problems

Dent Med Probl
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Dental and Medical Problems

2019, vol. 56, nr 4, October-December, p. 419–426

doi: 10.17219/dmp/112151

Publication type: review

Language: English

License: Creative Commons Attribution 3.0 Unported (CC BY 3.0)

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Activity of enzymatic antioxidants in periodontitis: A systematic overview of the literature

Aktywność antyoksydantów enzymatycznych w zapaleniach przyzębia – systematyczny przegląd piśmiennictwa

Joanna Toczewska1,B,C,D, Tomasz Konopka1,A,E,F

1 Department of Periodontology, Wroclaw Medical University, Poland

Abstract

Periodontitis is initiated by a bacterial infection and an abnormal immune response of the host resulting in the formation of dysbiotic subgingival biofilm and the progressive destruction of the attachment apparatus of the teeth. It is believed that disturbances in the local and/or general indicators of oxidative stress are one of the mechanisms in the etiopathogenesis of periodontitis. Organisms using oxygen in their metabolic processes are equipped with mechanisms that protect against the activity of oxygen-free radicals. They are commonly referred to as ‘the antioxidative barrier of the system’. The main enzymatic antioxidants which have been widely studied in the gingival fluid, saliva and blood serum of patients with periodontitis are superoxide dismutase (SOD), glutathione peroxidase (GPx) and catalase (CAT). The aim of this systematic overview of the literature was to present the current research on the activity of these antioxidant enzymes in the gingival fluid, saliva and blood serum of patients with periodontitis. Findings on the activity of these enzymes in the gingival tissue, gingival fluid, saliva, and blood serum in the course of the types of periodontitis that have been classified so far (chronic or aggressive) are quite disparate. Their activity in the gingival tissue was usually elevated, whereas in the saliva it was reduced. These differences may have resulted from the different methods of biochemically assessing their activity, and may have not reflected the stage and/or the risk of progression of periodontitis.

Key words

periodontitis, oxidative stress, antioxidants, superoxide dismutase

Słowa kluczowe

zapalenie przyzębia, stres oksydacyjny, antyoksydanty, dysmutaza ponadtlenkowa

References (37)

  1. Lushchak VI. Classification of oxidative stress based on its intensity. EXCLI J. 2014;13:922–937.
  2. Moseley R, Waddington RJ, Embery G, Rees SG. The modification of alveolar bone proteoglycans by reactive oxygen species in vitro. Connect Tissue Res. 1998;37(1–2):13–28.
  3. Chapple IL. Reactive oxygen species and antioxidants in inflammatory diseases. J Clin Periodontol. 1997;24(5):287–296.
  4. Jarnbring F, Somogyi E, Dalton J, Gustafsson A, Klinge B. Quantitative assessment of apoptotic and proliferative gingival keratinocytes in oral and sulcular epithelium in patients with gingivitis and periodontitis. J Clin Periodontol. 2002;29(12):1065–1071.
  5. Liu Z, Liu Y, Song Y, Zhang X, Wang S, Wang Z. Systemic oxidative stress biomarkers in chronic periodontitis: A meta-analysis. Dis Markers. 2014;2014:931083.
  6. Kimura S, Yonemura T, Kaya H. Increased oxidative product formation by peripheral blood polymorphonuclear leukocytes in human periodontal diseases. J Periodontal Res. 1993;28(3):197–203.
  7. Chapple IL, Matthews JB. The role of reactive oxygen and antioxi­dant species in periodontal tissue destruction. Periodontol 2000. 2007;43:160–232.
  8. Wang Y, Andrukhov O, Rausch-Fan X. Oxidative stress and antioxidant system in periodontitis. Front Physiol. 2017;8:910.
  9. Bartold PM, Van Dyke TE. Periodontitis: A host-mediated disruption of microbial homeostasis. Unlearning learned concepts. Periodontol 2000. 2013;62(1):203–217.
  10. Gruber B. Antioxidant enzymes protecting the organism against reactive oxygen species [in Polish]. Farm Pol. 1996;52:263–271.
  11. de Groot H, Hegi U, Sies H. Loss of alpha-tocopherol upon exposure to nitric oxide or the sydnonimine SIN-1. FEBS Lett. 1993;315(2):139–142.
  12. Carpena X, Wiseman B, Deemagarn T, et al. A molecular switch and electronic circuit modulate catalase activity in catalase-peroxidases. EMBO Rep. 2005;6(12):1156–1162.
  13. Switala J, Loewen PC. Diversity of properties among catalases. Arch Biochem Biophys. 2002;401(2):145–154.
  14. Battino M, Ferreiro MS, Gallardo I, Newman HN, Bullon P. The antioxidant capacity of saliva. J Clin Periodontol. 2002;29(3):189–194.
  15. Kanehira T, Shibata K, Kashiwazaki H, Inoue N, Morita M. Comparison of antioxidant enzymes in saliva of elderly smokers and non-smokers. Gerodontology. 2006;23(1):38–42.
  16. Tenovuo J, Pruitt KM. Relationship of the human salivary peroxidase system to oral health. J Oral Pathol. 1984;13(6):573–584.
  17. Taylor SI, Barr V, Reitman M. Does leptin contribute to diabetes caused by obesity. Science. 1996;274(5290):1151–1152.
  18. Moher D, Liberati A, Tetzlaff J, Altman DG; PRISMA group. Preferred reporting items for systematic reviews and meta-analyses: The PRISMA statement. Int J Surg. 2010;8(5):336–341.
  19. Sree SL, Sethupathy S. Evaluation of the efficacy of taurine as an antioxidant in the management of patients with chronic periodontitis. Dent Res J (Isfahan). 2014;11(2):228–233.
  20. Lee CY, Choy CS, Lai YC, et al. A cross-sectional study of endogenous antioxidants and patterns of dental visits of periodontitis patients. Int J Environ Res Public Health. 2019;16(2):E180.
  21. Kim SC, Kim OS, Kim OJ, Kim YJ, Chung HJ. Antioxidant profile of whole saliva after scaling and root planning in periodontal disease. J Periodontal Implant Sci. 2010;40(4):164–171.
  22. Novakovic N, Todorovic T, Rakic M, et al. Salivary antioxidants as periodontal biomarkers in evaluation of tissue status and treatment outcome. J Periodontal Res. 2014;49(1):129–136.
  23. Panjamurthy K, Manoharan S, Ramachandran CR. Lipid peroxidation and antioxidant status in patients with periodontitis. Cell Mol Biol Lett. 2005;10(2):255–264.
  24. Akalin FA, Toklu E, Renda N. Analysis of superoxide dismutase acti­vity levels in gingiva and gingival crevicular fluid in patients with chronic periodontitis and periodontally healthy controls. J Clin Periodontol. 2005;32(3):238–243.
  25. Canakci CF, Cicek Y, Yildirim A, Sezer U, Canakci V. Increased levels of 8-hydroxydeoxyguanosine and malondialdehyde and its relationship with antioxidant enzymes in saliva of periodontitis patients. Eur J Dent. 2009;3(2):100–106.
  26. Dhotre PS, Suryakar AN, Bhogade RB. Oxidative stress in periodontitis. Eur J Gen Med. 2012;9(2):81–84.
  27. Sreeram M, Suryakar AN, Dani NH. Is gamma-glutamyl transpeptidase a biomarker for oxidative stress in periodontitis? J Indian Soc Periodontol. 2015;19(2):150–154.
  28. Trivedi S, Lal N, Mahdi AA, Singh B, Pandey S. Association of salivary lipid peroxidation levels, antioxidant enzymes, and chronic periodontitis. Int J Periodontics Restorative Dent. 2015;35(2):e14–e19.
  29. Ghallab NA, Hamdy E, Shaker OG. Malondialdehyde, superoxide dismutase and melatonin levels in gingival crevicular fluid of aggressive and chronic periodontitis patients. Aust Dent J. 2016;61(1):53–61.
  30. Narendra S, Das UK, Tripathy SK, Sahani NC. Superoxide dismutase, uric acid, total antioxidant status, and lipid peroxidation assay in chronic and aggressive periodontitis patients. J Contemp Dent Pract. 2018;19(7):874–880.
  31. Tsai CC, Chen HS, Chen SL, et al. Lipid peroxidation: A possible role in the induction and progression of chronic periodontitis. J Periodontal Res. 2005;40(5):378–384.
  32. Borges I Jr, Moreira EA, Filho DW, de Oliveira TB, da Silva MB, Fröde TS. Proinflammatory and oxidative stress markers in patients with periodontal disease. Mediators Inflamm. 2007;2007:45794.
  33. Miricescu D, Totan A, Calenic B, et al. Salivary biomarkers: Relationship between oxidative stress and alveolar bone loss in chronic periodontitis. Acta Odontol Scand. 2014;72(1):42–47.
  34. Wei D, Zhang XL, Wang YZ, Yang CX, Chen G. Lipid peroxidation levels, total oxidant status and superoxide dismutase in serum, saliva and gingival crevicular fluid in chronic periodontitis patients before and after periodontal therapy. Aust Dent J. 2010;55(1):70–78.
  35. Sukhtankar L, Kulloli A, Kathariya R, Shetty S. Effect of non-surgical periodontal therapy on superoxide dismutase levels in gingival tissues of chronic periodontitis patients: A clinical and spectophotometric analysis. Dis Markers. 2013;34(5):305–311.
  36. Thomas B, Shabeer MM, Amitha R, Rajendra BP, Suchetha K. Compa­rative evaluation of serum superoxide dismutase and glutathione levels in periodontally diseased patients: An interventional study. Indian J Dent Res. 2014;25(5):613–616.
  37. Thomas B, Madani SM, Prasad BR, Kumari S. Comparative evaluation of serum antioxidant levels in periodontally diseased patients: An interventional study. Contemp Clin Dent. 2014;5(3):340–344.