DOI:

10.37988/1811-153X_2023_2_44

Structural-morphological interrelation of the microcirculatory bed of the perioostus of the jaws in chronic generalized periodontitis in the experiment

Authors

  • Z.K. Shamanova 1, postgraduate at the General dentistry Department
    ORCID ID: 0009-0009-8330-9364
  • A.V. Arutyunov 1, PhD in Medical Sciences, associate professor and head of General dentistry Department
    ORCID ID: 0000-0001-8823-1409
  • Yu.V. Verevkina 1, postgraduate at the General dentistry Department
    ORCID ID: 0000-0003-3948-6960
  • S.V. Sirak 2, PhD in Medical Sciences, full professor of the Dentistry Department
    ORCID ID: 0000-0002-4924-5792
  • N.I. Bykova 1, PhD in Medical Sciences, associate professor of the Pediatric dentistry, orthodontics and maxillofacial surgery Department
    ORCID ID: 0000-0002-0573-7242
  • T.L. Kobylkina 2, PhD in Medical Sciences, associate professor of the Dentistry Department
    ORCID ID: 0000-0003-1189-0136
  • 1 Kuban State Medical University, 350063, Krasnodar, Russia
  • 2 Stavropol State Medical University, 355017, Stavropol, Russia

Abstract

Effective therapy of chronic generalized periodontitis is impossible without understanding the relationship of the elements of the periodontal tissue complex with the microvascular bed of the periodontal, periosteum, alveolar bone of the jaw. The literature data on the main sources of bone and periosteum vascularization in chronic generalized periodontitis, accompanied by resorption and atrophy of the alveolar bone, are quite contradictory, which justifies the relevance of the study of structural and morphological elements of the microcirculatory bed of the periosteum of the alveolar bone of the jaw with chronic generalized periodontitis artificially modeled on experimental animals. Objectives: determination of structural and morphological elements of the microcirculatory bed of the periosteum of the alveolar bone of the jaw in chronic generalized periodontitis.
Materials and methods.
The experimental animal study included 50 rabbits of the Gray Giant breed, which were divided into 3 groups: the intact, the control and the main. In the control group and in the main group of animals after modeling chronic generalized periodontitis treatment was the same, but in the main group was prescribed an additional set of therapy.
Results.
In the control group in the periosteum of the jaws were detected pseudoinvolutive changes in the terminal bloodstream, which consist in a decrease in the number of microcapillaries per unit area, increased tortuosity of venules, the appearance of varicose veins in them, which indicates a decrease in the intensity of metabolic processes and a tendency to stagnation of blood. In the preparations of the main group in similar dental alveolar segments, an increase in the number of microcapillaries with an increase in the diffusion surface of the studied vessels was found, which confirms the hypothesis of a high adaptogenic ability of the microvascular bed to increase blood outflow in conditions of inflammation in the periodontal: on average, 72.9±2.24 capillaries per 1 mm2 of the periosteum in the control group, and their diffusion surface was equal to 0.35±0.09 mm2. In the main group the capillary surface for one dental alveolar segment was 4.62 mm2, which is significantly comparable with the indicators of the intact group of animals (p<0.05), amounting to 66.8% the diffusion surface of all the vessels studied, with an average of 88.6±4.08 capillaries per 1 mm2 of the periosteum in the main group, and their diffusion surface was equal to 0.86±0.11 mm2.
Conclusions.
The obtained data about morphofunctional changes in the microcirculatory bed of the periosteum can be used to evaluate the effectiveness of therapy in the treatment of chronic generalized periodontitis.

Key words:

periodontitis, jaw, periosteum, inflammation, microcirculation, experiment

For Citation

[1]
Shamanova Z.K., Arutyunov A.V., Verevkina Yu.V., Sirak S.V., Bykova N.I., Kobylkina T.L. Structural-morphological interrelation of the microcirculatory bed of the perioostus of the jaws in chronic generalized periodontitis in the experiment. Clinical Dentistry (Russia).  2023; 26 (2): 44—51. DOI: 10.37988/1811-153X_2023_2_44

References

  1. Schincaglia G.P., Hong B.Y., Rosania A., Barasz J., Thompson A., Sobue T., Panagakos F., Burleson J.A., Dongari-Bagtzoglou A., Diaz P.I. Clinical, immune, and microbiome traits of gingivitis and peri-implant mucositis. J Dent Res. 2017; 96 (1): 47—55. PMID: 28033066
  2. Cheng R., Wu Z., Li M., Shao M., Hu T. Interleukin-1β is a potential therapeutic target for periodontitis: a narrative review. Int J Oral Sci. 2020; 12 (1): 2. PMID: 31900383
  3. Krechina E.K., Smirnova T.N. Modern approaches to periodontal microcirculatory parameters assessment. Stomatology. 2017; 1: 28—32 (In Russian). eLIBRARY ID: 28795329
  4. Bychkova N.P., Skorikova L.A. Dynamics of indicators of periodontal tissue microcirculation in patients with chronic generalized periodontitis. Kuban Scientific Medical Bulletin. 2016; 4 (159): 20—23 (In Russian). eLIBRARY ID: 26597791
  5. Khudaleeva K.A., Abolmasov N.N., Serdyukov M.S., Massarsky I.G., Abolmasov I.N., Kovaleva I.A. Microcirculation of the marginal periodontium in the manufacture of artificial crowns with different levels of location of the boundaries of the preparation. Parodontologiya. 2020; 1: 54—58 (In Russian). eLIBRARY ID: 42490438
  6. Khabibullina K., Osipova Yu.L., Bulkina N.V., Kropotina A.Yu., Avedova D., Konnov V.V. Proliferation of histamine and serotonin in mast cells of patients with inflammatory periodontal disease in the course of treatment. Archiv EuroMedica. 2020; 10 (1): 143—145. DOI: 10.35630/2199-885X/2020/10/40
  7. Simpson K.T., Bryington M., Agusto M., Harper M., Salman A., Schincaglia G.P. Computer-guided surgery using human allogenic bone ring with simultaneous implant placement: a case report. Clin Adv Periodontics. 2020; 10 (1): 16—22. PMID: 31513341
  8. Jafarova E.S. Influence of external environmental factors and emotional condition of the patient on the indicators of parodontal microcirculation. Colloquium-Journal. 2019; 14—1 (38): 37—54 (In Russian). eLIBRARY ID: 38584922
  9. Eldzharov A., Kabaloeva D., Nemeryuk D., Goncharenko A., Gatsalova A., Ivanova E., Kostritskiy I., Carrouel F., Bourgeois D. Evaluation of microcirculation, cytokine profile, and local antioxidant protection indices in periodontal health, and stage II, stage III periodontitis. J Clin Med. 2021; 10 (6): 1262. PMID: 33803774
  10. Usmanova I.N., Gerasimova L.P., Kabirova M.F., Usmanov I.R., Al-Cafes M.A.M., Lebedeva A.I., Kusnarizanova R.F. The relationship of clinical and morphological signs with risk factors for the development of inflammatory periodontal diseases at young age. Clinical Dentistry (Russia). 2017; 4 (84): 34—39 (In Russian). eLIBRARY ID: 30684147
  11. Gontarev S.N., Gontareva I.S., Yasin M., Kobzeva G.B. Ways to achieve positive dynamics in the management of patients with a chronic generalized periodontitis of mild severity. Clinical Dentistry (Russia). 2022; 2: 38—44 (In Russian). eLIBRARY ID: 48679073
  12. Kryuchkov D.Y., Romanenko I.G., Dzhereley A.A., Gorobets S.M. Inflammatory changes in periodontal tissues as an indicator of the severity of systemic metabolic disorders. Crimean Journal of Internal Diseases. 2020; 2: 57—62 (In Russian). eLIBRARY ID: 44139900
  13. Mamedova L.A., Efimovich O.I. Application of functional diagnostics in treatment of periodontal diseases. Medical alphabet. 2016; 9 (272): 25—35 (In Russian). eLIBRARY ID: 26738844
  14. Isaeva A.I., Averyanov S.V., Ishakov I.R. State of microcirculation in periodontal tissues when using dental gel. Dental Forum. 2020; 4 (79): 33—34 (In Russian). eLIBRARY ID: 44082035
  15. Revokatova D.P., Zurina I.M., Gorkun A.A., Saburina I.N. Modern approaches to bone tissue vascularization. Pathological Physiology and Experimental Therapy. 2022; 3: 151—165 (In Russian). eLIBRARY ID: 49517111
  16. Rubnikovich S.P., Khomich I.S., Denisova Y.L. Morphological changes in the bone tissue around dental implants after low-frequency low-intensity ultrasound applications. Proceedings of the National Academy of Sciences of Belarus. Medical Series. 2020; 1: 20—27 (In English). eLIBRARY ID: 42783839
  17. Ushnitsky I.D., Ivanova A.A., Pinelis I.S., Yurkevich A.V., Mikhalchenko D.V. Modern etiological and pathogenetic aspects of inflammatory destructive processes of periodontal tissues. Endodontics Today. 2019; 4: 46—49 (In Russian). eLIBRARY ID: 41669682
  18. Brusentsova A.E., Lyashev Yu.D., Tsigan N.V., Serikov V.S. Disorders of the biochemical composition of the periodontium in rats with periodontitis and chronic pain syndrome. Bulletin of Experimental Biology and Medicine. 2022; 1: 20—23 (In Russian). eLIBRARY ID: 47652809
  19. Simonyan T.V. The state of the maxillary system and periodontal tissues in patients with systemic osteoporosis. Modern Science: Actual Problems of Theory and Practice. Series: Natural and Technical Sciences. 2022; 4: 225—228 (In Russian). eLIBRARY ID: 48972475
  20. Griroriev S., Ssablina S., Elovicova T., Zakroeva A., Dominykh M., Ivanova V. Pathogenetic parallels of osteoporosis and chronic periodontitis. Literature review. Actual Problems in Dentistry. 2022; 1: 19—28 (In Russian). eLIBRARY ID: 48465281
  21. Sirak S.V., Shchetinin E.V., Bykova N.I., Vafiadi M.Yu., Petrosyan G.G., Didenko N.N. Method of obtaining experimental model of periodontitis. Patent RU № 2676649, effective from 09.10.2017 (In Russian).
  22. Grande M.A., Belstrøm D., Damgaard C., Holmstrup P., Könönen E., Gursoy M., Gursoy U.K. Salivary concentrations of macrophage activation-related chemokines are influenced by non-surgical periodontal treatment: a 12-week follow-up study. J Oral Microbiol. 2020; 12 (1): 1694383. PMID: 31893018
  23. Popyhova E.B., Govorunova T.V., Shirokov V.Yu., Ivanov A.N. Gender-related dimorphism of changes in adhesive properties of the vascular wall in the dynamics of surgical treatment of chronic generalized periodontitis. Stomatology. 2019; 5: 27—31 (In Russian). eLIBRARY ID: 41314052
  24. Zjulkina L.A., Sabaeva M.N., Ivanov P.V., Shastin E.N. Periodontal tissue microcirculation: causes of violations and mechanisms of correction. Modern Problems of Science and Education. 2017; 2: 61 (In Russian). eLIBRARY ID: 29036123
  25. Durnovo E.A., Shchepetnova E.E. Changes in the state of capillary blood flow in periodontal tissues before and after splinting in the treatment of chronic generalized periodontitis. Dental Forum. 2022; 4 (87): 31 (In Russian). eLIBRARY ID: 49753170
  26. Dudinskaya E.N., Tkacheva O.N., Machekhina L.V., Ostapenko V.S., Brailova N.V. Use of teriparatide in treatment of severe osteoporosis in geriatric practice: a clinical case review. Obesity and Metabolism. 2019; 4: 80—89 (In Russian). eLIBRARY ID: 42486695
  27. Krechina E.K., Efremova N.V., Mustafina F.K., Rassadina A.V., Abdurakhmanova Z.U., Lisovskaya V.T., Smirnova T.N. Photodynamic therapy effectiveness in the combined treatment of periodontium inflammatory conditions. Clinical Dentistry (Russia). 2016; 2 (78): 34—37 (In Russian). eLIBRARY ID: 26134227
  28. Sirak S.V., Shchetinin E.V., Bykova N.I., Petrosyan G.G., Tarabrina A.G., Gayvoronskaya T.V., Skorikova L.A., Risovanniy S.I. The histochemical features of the endothelium of the tooth-alveolar complex in inflammation and osteoporosis. Medical News of North Caucasus. 2018; 3: 520—525 (In English). eLIBRARY ID: 36332252
  29. Fatima T., Khurshid Z., Rehman A., Imran E., Srivastava K.C., Shrivastava D. Gingival Crevicular Fluid (GCF): A Diagnostic Tool for the Detection of Periodontal Health and Diseases. Molecules. 2021; 26 (5): 1208. PMID: 33668185
  30. Atrushkevich V.G., Shkolnaya K.D. Specifics of mineral and bone metabolism in patients depending on the pattern of the course of periodontitis. Treatment and prevention. 2017; 2 (22): 85—92 (In Russian). eLIBRARY ID: 29932910

Received

March 26, 2023

Accepted

June 7, 2023

Published on

July 6, 2023