PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Tytuł artykułu

Evaluation of the microbial, cytotoxic and physico-chemical properties of the stainless steel crowns used in pediatric dentistry

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Preformed stainless steel crowns are used in pediatric dentistry to obtain full crown restoration of primary molar teeth. They are consider the best restoration in terms of durability and effectiveness. The purpose of this study is to evaluate microbial, cytological and physio-chemical properties to determine whereas stainless steel crown are biocompatible, safe for surrounding tissue and helpful in avoiding micro-organisms influence on the tooth tissue. Based on the results, it was determined that stainless steel crowns used in pediatric dentistry represent no cytotoxic risk to the surrounding tissues, have a low probability of developing hypersensitivity to the coronal material and also that their biological properties make them suitable to use in pediatric dentistry for the reconstruction of damaged primary molar tissue.
Rocznik
Strony
127--137
Opis fizyczny
Bibliogr. 40 poz., rys., tab., wykr.
Twórcy
  • Department of Pediatric Dentistry and Preclinical Dentistry, Wroclaw Medical University, Wrocław, Poland.
  • Department of Microbiology, Wroclaw Medical University, Wrocław, Poland.
  • Department of Microbiology, Wroclaw Medical University, Wrocław, Poland.
  • Division of Histology and Embryology, Department of Human Morphology and Embryology, Wroclaw Medical University, Wrocław, Poland.
  • Laboratory of Confocal Microscopy, Polish Center for Technology Development PORT, Wrocław, Poland.
autor
  • Department of Mechanics, Materials and Biomedical Engineering, Faculty of Mechanical Engineering, Wrocław University of Science and Technology, Wrocław, Poland.
  • Institute of Low Temperature and Structure Research, Polish Academy of Sciences, Wrocław, Poland.
autor
  • Department of Pediatric Dentistry and Preclinical Dentistry, Wroclaw Medical University, Wrocław, Poland.
  • Institute of Low Temperature and Structure Research, Polish Academy of Sciences, Wrocław, Poland.
  • Department of Pediatric Dentistry and Preclinical Dentistry, Wroclaw Medical University, Wrocław, Poland.
Bibliografia
  • [1] ALKARIMI H.A., WATT R.G., PIKHART H., SHEIHAM A., TSAKOS G., Dental Caries and Growth in School-Age Children, Pediatrics 2014, 133, e616–e623.
  • [2] AMANNA E.N., BHAT S.S., HEGDE S.K., An in Vitro Evaluation of Nickel and Chromium Release from Different Commercially Available Stainless Steel Crowns, J. Indian Soc. Pedod. Prev. Dent. 2019, 37, 31–38.
  • [3] ANUSHA K., SRIDEVI E., SAI SANKAR A., SRIDHAR M., SANKAR KS., CHOWDARY Kh., An In Vitro Evaluation of Biodegradability of Stainless Steel Crowns at Various Salivary PH, Indian J. Dent. Res., 2020, 31, 569.
  • [4] ARUNIMA, AHUJA V., Crowns for paediatric teeth: Stainless steel crown, J. Dent. Panacea, 2021, 3 (1), 20–25.
  • [5] BASIR L., SHAMSAEI M., ZIAEI S.A., Evaluation of Nickel Releasing from Stainless Steel Crowns Regarding to “Trimming”: An in Vitro Study, J. Indian Soc. Pedod. Prev. Dent., 2018, 36, 58–64.
  • [6] BELTAGY T.M., Effect of Multiple Stainless Steel Crowns on Salivary pH, Nickel, and Chromium Levels, Egypt Dent. J., 2020, 66 (1), 1–16.
  • [7] BHASKAR V., SUBBA REDDY V., Biodegradation of Nickel and Chromium from Space Maintainers: An in Vitro Study, J. Indian Soc. Pedod. Prev. Dent., 2010, 28, 6–12.
  • [8] BISHARA S.E., BARRETT R.D., SELIM M.I., Biodegradation of Orthodontic Appliances. Part II. Changes in the Blood Level of Nickel, Am. J. Orthod. Dentofacial Orthop., 1993, 103, 115–119.
  • [9] Centers for Disease Control and Prevention, U.S.D. of H. and H.S. Centers for Disease Control and Prevention. Oral Health Surveillance Report: Trends in Dental Caries and Sealants, Tooth Retention, and Edentulism, United States, 1999–2004 to 2011–2016. Atlanta, GA.
  • [10] CHISINI L.A., COLLARES K., CADEMARTORI M.G., DE OLIVEIRA L.J.C., CONDE M.C.M., DEMARCO F.F., CORRÊA M.B., Restorations in Primary Teeth: A Systematic Review on Survival and Reasons for Failures, Int. J. Paediatr. Dent., 2018, 28, 123–139.
  • [11] DANAEI S.M., SAFAVI A., ROEINPEIKAR S.M.M., OSHAGH M., IRANPOUR S., OMIDKHODA M., Ion Release from Orthodontic Brackets in 3 Mouthwashes: An in-Vitro Study, Am. J. Orthod. Dentofacial Orthop., 2011, 139, 730–734.
  • [12] DE ALMEIDA D.G., SOARES DA SILVA R. DE C.F., LUNA J.M., RUFINO R.D., SANTOS V.A., BANAT I.M., SARUBBO L.A., Biosurfactants: Promising Molecules for Petroleum Biotechnology Advances, Front Microbiol., 2016, 7, 1718.
  • [13] DEGRAZIA F.W., GENARI B., FERRAZZO V.A., DOS SANTOS-PINTO A., GREHS R.A., Enamel Roughness Changes after Removal of Orthodontic Adhesive, Dent. J. (Basel), 2018, 6, 6 (3), 39.
  • [14] GARG V., PANDA A., SHAH J., PANCHAL P., Crowns in Pediatric Dentistry: A Review, J. Adv. Med. Dent. Sci. Res., 2016, 4(2), 41–46.
  • [15] GRIMSDOTTIR M.R., GJERDET N.R., HENSTEN-PETTERSEN A., Composition and in Vitro Corrosion of Orthodontic Appliances, Am. J. Orthod. Dentofacial Orthop., 1992, 101, 525–532.
  • [16] HICKEL R., KAADEN C., PASCHOS E., BUERKLE V., GARCÍA-GODOY F., MANHART J., Longevity of Occlusally-Stressed Restorations in Posterior Primary Teeth, Am. J. Dent., 2005, 18, 198–211.
  • [17] INNES N.P.T., RICKETTS D., CHONG L.Y., KEIGHTLEY A.J., LAMONT T., SANTAMARIA R.M., Preformed Crowns for Decayed Primary Molar Teeth, Cochrane Database Syst. Rev., 2015, 12 (12), CD005512.
  • [18] KEINAN D., MASS E., ZILBERMAN U., Absorption of Nickel, Chromium, and Iron by the Root Surface of Primary Molars Covered with Stainless Steel Crowns, Int. J. Dent., 2010, 326124.
  • [19] KHATOON Z., MCTIERNAN C.D., SUURONEN E.J., MAH T.-F., ALARCON E.I., Bacterial Biofilm Formation on Implantable Devices and Approaches to Its Treatment and Prevention, Heliyon, 2018, 4, e01067.
  • [20] KOO H., XIAO J., KLEIN M.I., JEON J.G., Exopolysaccharides Produced by Streptococcus Mutans Glucosyltransferases Modulate the Establishment of Microcolonies within Multispecies Biofilms, J. Bacteriol., 2010, 192, 3024–3032.
  • [21] Kosior P., Nikodem A., Kozuń M., Dudek K., Janeczek M., Dobrzyński M., The assessment of temperature amplitudę arising during the implant bed formation in relation to variable preparation parameters – in vitro study, Acta Bioeng. Biomech., 2021, 23 (3), 163–173.
  • [22] KULKARNI P., AGRAWAL S., BANSAL A., JAIN A., TIWARI U., ANAND A., Assessment of Nickel Release from Various Dental Appliances Used Routinely in Pediatric Dentistry, Indian J. Dent., 2016, 7, 81–85.
  • [23] LIN Y.-T.J., CHOU C.-C., HSU C.-Y.S., Effects of Lactobacillus Casei Shirota Intake on Caries Risk in Children, J. Dent. Sci., 2017, 12, 179–184.
  • [24] MENEK N., BAŞARAN S., KARAMAN Y., CEYLAN G., TUNÇ E.S., Investigation of Nickel Ion Release from Stainless Steel Crowns by Square Wave Voltammetry, Int. J. Electrochem. Sci., 2012, 7, 6465–6471.
  • [25] MURATA R.M., BRANCO-DE-ALMEIDA L.S., FRANCO E.M., YATSUDA R., DOS SANTOS M.H., DE ALENCAR S.M., KOO H., ROSALEN P.L., Inhibition of Streptococcus Mutans Biofilm Accumulation and Development of Dental Caries in Vivo by 7-Epiclusianone and Fluoride, Biofouling, 2010, 26, 865–872.
  • [26] OGAWA A., FURUKAWA S., FUJITA S., MITOBE J., KAWARAI T., NARISAWA N., SEKIZUKA T., KURODA M., OCHIAI K., OGIHARA H., KOSONO A., YONEDA S., WATANABE H., MORINAGA Y., UEMATSU H., SENPUKU H., Inhibition of Streptococcus Mutans Biofilm Formation by Streptococcus Salivarius FruA, Appl. Environ. Microbiol., 2011, 77, 1572–1580.
  • [27] OLEGÁRIO I.C., BRESOLIN C.R., PÁSSARO A.L., ARAUJO M.P., HESSE D., MENDES F.M., RAGGIO D.P., Stainless Steel Crown vs. Bulk Fill Composites for the Restoration of Primary Molars Post-pulpectomy: 1-year Survival and Acceptance Results of a Randomized Clinical Trial, Int. J. Paediatr. Dent., 2022, 32, 11–21.
  • [28] PAPAIOANNOU W., GIZANI S., NASSIKA M., KONTOU E., NAKOU M., Adhesion of Streptococcus Mutans to Different Types of Brackets, Angle Orthod., 2007, 77, 1090–1095.
  • [29] PN-EN ISO 10993-5:2009 Biological Evalution of Medical Devices – Part 5: Tests for In Vitro Cytotoxicity. 2009.
  • [30] REŚLIŃSKI A., MIKUCKA A., SZMYTKOWSKI J., GŁOWACKA K., SZCZĘSNY W., GOSPODAREK E., DĄBROWIECKI S., Biofilm Detection on the Surface of Hernia Mesh Implants, Adv. Clin. Exp. Med., 2010, 19, 685–690.
  • [31] ROBERTS J.F., ATTARI N., SHERRIFF M., The Survival of Resin Modified Glass Ionomer and Stainless Steel Crown Restorations in Primary Molars, Placed in a Specialist Paediatric Dental Practice, Br. Dent. J., 2005, 198, 427–431.
  • [32] ROBERTS J.F., ATTARI N., SHERRIFF M., The Survival of Resin Modified Glass Ionomer and Stainless Steel Crown Restorations in Primary Molars, Placed in a Specialist Paediatric Dental Practice, Br. Dent. J., 2005, 198, 427–431.
  • [33] RÓŻALSKA B., SADOWSKA B., WIĘCKOWSKA M., RUDNICKA W., Detection of Bacterial Biofilm on Medical Biomaterials, Med. Dosw. Mikrobiol., 1998, 50, 115–122.
  • [34] SAJJANSHETTY S., PATIL P.S., HUGAR D., RAJKUMAR K., Pediatric Preformed Metal Crowns – An Update, J. Dent. Allied Sci., 2013, 2 (1), 29–32.
  • [35] SCHÜLER I.M., HILLER M., ROLOFF T., KÜHNISCH J., HEINRICH-WELTZIEN R., Clinical Success of Stainless Steel Crowns Placed under General Anaesthesia in Primary Molars: An Observational Follow up Study, J. Dent., 2014, 42, 1396–1403.
  • [36] SOLIS-VELAZQUEZ O.A., GUTIÉRREZ-LOMELÍ M., GUERREO-MEDINA P.J., ROSAS-GARCÍA M. DE L., IÑIGUEZ-MORENO M., AVILA-NOVOA M.G., Nosocomial Pathogen Biofilms on Biomaterials: Different Growth Medium Conditions and Components of Biofilms Produced in Vitro, J. Microbiol. Immunol. Infect., 2021, 54, 1038–1047.
  • [37] SZTYLER K., WIGLUSZ R.J., DOBRZYŃSKI M., Review on Preformed Crowns in Pediatric Dentistry – The Composition and Application, Materials, 2022, 15, 2081.
  • [38] SZYMONOWICZ M., RUSAK A., PAJĄCZKOWSKA M., NOWICKA J., WIŚNIEWSKA K., ŻYWICKA B., RYBAK Z., DOBRZYŃSKI M., Assessment of cytotoxic and antimicrobial activity of selected gingival haemostatic agents – in vitro study, Acta Bioeng. Biomech., 2020, 22 (3), 185–198.
  • [39] TIWARI S., SAXENA S., Effects of pH and Time on Nickel Ion Release from Pediatric Stainless-Steel Crowns: An In-Vitro Comparative Study, J. Pharm. Bioallied. Sci., 2022 Jul., 14 (Suppl. 1), S545–S549.
  • [40] XIAO J., KOO H., Structural Organization and Dynamics of Exopolysaccharide Matrix and Microcolonies Formation by Streptococcus Mutans in Biofilms, J. Appl. Microbiol., 2010, 108, 2103–2113.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-078c9293-0c81-4c69-9862-6c75a5239ae9
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.