Literature DB >> 31038566

Surface morphologic evaluation of orthodontic bonding systems under conditions of cariogenic challenge.

Erika Machado Caldeira1, Vicente Telles2, Claudia Trindade Mattos1, Matilde da Cunha Gonçalves Nojima3.   

Abstract

Orthodontic bonding systems are submitted to demineralization and remineralization dynamics that might compromise their surface smoothness, and favor biofilm aggregation and caries development. The aim of the present study was to evaluate the effects of a cariogenic challenge model (in vitro pH-cycling model) on the surface roughness and topography of 3 bonding materials: Transbond™ XT (XT), Transbond™ Plus Color Change (PLUS) and Fuji Ortho™ LC (FUJI), by means of Atomic Force Microscopy (AFM). Six specimens with standardized dimensions and surface smoothness were fabricated per group, and the materials were manipulated in accordance with the manufacturers' instructions. No polishing was necessary. AFM tests were performed before and after pH-cycling, taking 3 readouts per specimen. The roughness results (Ra) were obtained at nanometric levels (nm) and surface records were acquired in two- and three-dimensional images of height and lock-in phase of the material components. The surfaces of all groups analyzed in the study were morphologically altered, presenting images suggestive of matrix degradation and loss of matrix-load integrity. FUJI presented the greatest increase in surface roughness, followed by XT and PLUS, respectively (p≤0.001). Nevertheless, the roughness values found did not present sufficient degradation to harbor bacteria. The surface roughness of all tested materials was increased by pH-cycling. The use of materials capable of resisting degradation in the oral environment is recommended, in order to conserve their integrity and of the surrounding tissues.

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Year:  2019        PMID: 31038566     DOI: 10.1590/1807-3107bor-2019.vol33.0029

Source DB:  PubMed          Journal:  Braz Oral Res        ISSN: 1806-8324


  2 in total

1.  Bond strength, degree of conversion, and microorganism adhesion using different bracket-to-enamel bonding protocols.

Authors:  Lorena Marques Ferreira de Sena; Dayanne Monielle Duarte Moura; Isabelle Helena Gurgel de Carvalho; Leopoldina de Fatima Dantas de Almeida; Nathalia Ramos da Silva; Rodrigo Othávio de Assunção E Souza
Journal:  J Orofac Orthop       Date:  2022-10-17       Impact factor: 2.341

2.  In Vitro Evaluation of Structural Factors Favouring Bacterial Adhesion on Orthodontic Adhesive Resins.

Authors:  Roberta Condò; Gianluca Mampieri; Guido Pasquantonio; Aldo Giancotti; Paola Pirelli; Maria Elena Cataldi; Serena La Rocca; Andrea Leggeri; Andrea Notargiacomo; Luca Maiolo; Patrizia De Filippis; Loredana Cerroni
Journal:  Materials (Basel)       Date:  2021-05-11       Impact factor: 3.623

  2 in total

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