Bel’skaya L.V. Possible applications of saliva for the diagnosis of cancer. Klinicheskaya laboratornaya diagnostika. 2019; 64(6): 333-6. https://doi.org/10.18821/0869-2084-2019-64-6-333-336 (in Russian)
Kolsanov A.V., Chaplygin S.S., Sokolov A.V., Vlasov M.Yu., Myakisheva Yu.V. Express methods for detection the indicators of metabolism in the oral liquid (a review). Klinicheskaya Laboratornaya Diagnostika. 2018; 63(8): 489-95. https://doi.org/10.18821/0869-2084-2018-63-8-489-495 (in Russian)
Kochurova E.V., Kozlov S.V. The diagnost ic poss ibilities of saliva. Klinicheskaya Laboratornaya Diagnostika. 2014; 59(1): 13-5. (in Russian)
Kushlinskii N.E., Solovykh E.A., Karaoglanova T.B., Boyar U., Gershtein E.S., Troshin A.A., Maksimovskaya L.N., Yanushevich O.O. Matrix metalloproteinases and inflammatory cytokines in oral fluid of patients with chronic generalized periodontitis and various construction materials. Bulleten` eksperimental`noy biologii i meditsiny .2012; 153(1): 72-6. (in Russian)
Tsybikov N.N., Pinelis Yu.I., Malezik M.S., Malezik L.P. Detection of immunoglobulins, antibodies to heat-shock proteins and IL-8 cytokine in saliva from the patients with chronic periodontal diseases. Мeditsinskaya immunologiya. 2010; 2(4-5): 421-4. https://doi.org/10.15789/1563-0625-2010-4-5-421-424 (in Russian)
Bostanci N., Mitsakakis K., Afacan B., Bao K., Johannsen B., Baumgartner D., Müller L., Kotolová H., Emingil G., Karpíšek M. Validation and verification of predictive salivary biomarkers for oral health. Sci. Rep. 2021; 11: 6406.
Tokmakova S.I., Bondarenko O.V., Shevtsova A.A., Sgibneva V.A., Zhukova E.S., Voblova T.V. Estimation of prevalence and intensity of caries and non-carious lesions in the adult population of Barnaul. Sovremennye problemy nauki i obrazovaniya. 2018; 4: 226. (in Russian)
Kazeminia M., Abdi A., Shohaimi S., Jalali R., Vaisi-Raygani A., Salari N., Mohammadi M. Dental caries in primary and permanent teeth in children’s worldwide, 1995 to 2019: a systematic review and meta-analysis. Head Face Med. 2020; 16(1): 22. https://doi.org/10.1186/s13005-020-00237-z
Pandey P., Nandkeoliar T., Tikku A.P., Singh D., Singh M.K. Prevalence of dental caries in the indian population: a systematic review and meta-analysis. J. Int. Soc. Prev. Community Dent. 2021; 11(3): 256-65. https://doi.org/10.4103/jispcd.JISPCD_42_21
Soltani M.R., Sayadizadeh M., Raeisi Estabragh S., Ghannadan K., Malek-Mohammadi M. Dental caries status and its related factors in iran: a meta-analysis. J. Dent (Shiraz). 2020; 21(3): 158-176. https://doi.org/10.30476/DENTJODS.2020.82596.1024
Leontiev V.K. Dental caries as a civilization disease. Biosfera. 2010; 3: 392-6. (in Russian)
Deane S., Schroth R.J., Sharma A., Rodd C. Combined deficiencies of 25-hydroxyvitamin D and anemia in preschool children with severe early childhood caries: а case-control study. Paediatr. Child. Health. 2018; 23(3): e40-e45. https://doi.org/10.1093/pch/pxx150
Naeini A.E., Moeinzadeh F., Vahdat S., Ahmadi A., Hedayati Z.P., Shahzeidi S. The effect of vitamin D administration on intracellular adhesion molecule-1 and vascular cell adhesion molecule-1 levels in hemodialysis patients: a placebo-controlled, double-blinded clinical trial. J. Res. Pharm. Pract. 2017; 6(1): 16-20. https://doi.org/10.4103/2279-042X.200994
Umar M., Sastry K.S., Chouchane A.I. Role of vitamin D beyond the skeletal function: a review of the molecular and clinical studies. Int. J. Mol. Sci. 2018; 19(6): 1618. https://doi.org/10.3390/ijms19061618
Habib A.M., Nagi K., Thillaiappan N.B., Sukumaran V., Akhtar S. Vitamin D and Its potential interplay with pain signaling pathways. Front Immunol. 2020; 28(11): 820. DOI: 10.3389/fimmu.2020.00820.
Bivona G., Agnello L., Ciaccio M. The immunological implication of the new vitamin D metabolism. Cent. Eur. J. Immunol. 2018; 43(3): 331-4.
Mak A. The impact of vitamin D on the immunopathophysiology, disease activity, and extra-musculoskeletal manifestations of systemic lupus erythematosus. International Journal of Molecular Sciences. 2018; 19(8): pii: E2355. https://doi.org/10.3390/ijms19082355
Oh C., Kim H.J., Kim H.M. Vitamin D maintains E-cadherin intercellular junctions by downregulating MMP-9 production in human gingival keratinocytes treated by TNF-α. J. Periodontal. Implant. Sci. 2019; 49(5): 270-286. https://doi.org/10.5051/jpis.2019.49.5.270
Coussens A., Timms P.M., Boucher B.J., Venton T.R., Ashcroft A.T., Skolimowska K.H., et al. 1alpha, 25-dihydroxyvitamin D3 inhibits matrix metalloproteinases induced by Mycobacterium tuberculosis infection. Immunology. 2009; 127(4): 539-48. https://doi.org/10.1111/j.1365-2567.2008.03024.x
Sundar I.K., Hwang J.W., Wu S., Sun J., Rahman I. Deletion of vitamin D receptor leads to premature emphysema/COPD by increased matrix metalloproteinases and lymphoid aggregates formation. Biochem. Biophys. Res. Commun. 2011; 406(1): 127-33. https://doi.org/10.1016/j.bbrc.2011.02.011
Shadrina A.S., Plieva Ya.Z., Kushlinskiy D.N., Morozov A.A., Filipenko M.L., Chang V.L., Kushlinskii N.E. Classification, regulation of activity, and genetic polymorphism of matrix metalloproteinases in health and disease. Almanakh klinicheskoy meditsiny. 2017; 45(4): 266-79. https://doi.org/10.18786/2072-0505-2017-45-4-266-279 (in Russian)
Cortes-Vieyra R., Rosales C., Uribe-Querol E. Neutrophil functions in periodontal homeostasis. J. Immunol. Res. 2016; 10: 1396106. https://doi.org/10.1155/2016/1396106
Mazzoni A., Tjäderhane L., Checchi V., Di Lenarda R., Salo T., Tay F.R., Pashley D.H., Breschi L. Role of dentin MMPs in caries progression and bond stability. J. Dent. Res. 2015; 94(2): 241-51. https://doi.org/10.1177/0022034514562833
Makedonova Yu.A., Poroyskaya A.V., Chursina T.K., Venskel I.V. Morphological features and role of dentine matrix metalloproteinases in the degradation of the dentinal matrix. Volgogradskiy nauchno-meditsinskiy zhurnal. 2019; (4): 25-8. (in Russian)
Khabadze Z.S., Generalova Yu.A., Shubaeva V.S., Sheroziia M.G., Nedashkovsky A.A., Negorelova Ya.A. The relevance applying in the adhesive protocol in devital teeth. Endodontiya Today. 2020; 18(4): 26-31. https://doi.org/10.36377/1683-2981-2020-18-4-26-31 (in Russian)
Femiano F., Femiano R., Femiano L., Jamilian A., Rullo R., Perillo L. Dentin caries progression and the role of metalloproteinases: an update. European Journal of Paediatric Dentistry. 2016; 17(3): 243-7.
Chaussain-Miller C., Fioretti F., Goldberg M., Menashi S. The role of matrix metalloproteinases (MMPs) in human caries. J. Dent. Res. 2006; 85(1): 22-32. https://doi.org/10.1177/154405910608500104
Anshida V.P., Kumari R.A., Murthy C.S., Samuel A. Extracellular matrix degradation by host matrix metalloproteinases in restorative dentistry and endodontics: An overview. J. Oral. Maxillofac. Pathol. 2020; 24(2): 352-60. https://doi.org/10.4103/jomfp.JOMFP_34_20
Gitalis R., Zhou L., Marashdeh M.Q., Sun C., Glogauer M., Finer Y. Human neutrophils degrade methacrylate resin composites and tooth dentin. Acta Biomater. 2019; 88: 325-31. https://doi.org/10.1016/j.actbio.2019.02.033
Wasse H., Cardarelli F., De Staercke C., Hooper C., Veledar E., Guessous I. 25-hydroxyvitamin D concentration is inversely associated with serum MMP-9 in a cross-sectional study of African American ESRD patients. BMC Nephrol. 2011; 12: 24. https://doi.org/10.1186/1471-2369-12-24