Development and Physicochemical Characterization of Eugenia brejoensis Essential Oil-Doped Dental Adhesives with Antimicrobial Action towards Streptococcus mutans

Author:

Pereira Maury Luz,Santos Danyelle Cristina Pereira,Soares Júnior Carlos Alberto Mendes,Bazan Tamyris Alicely Xavier Nogueira,Bezerra Filho Clovis MacêdoORCID,Silva Márcia Vanusa daORCID,Correia Maria Tereza dos Santos,Cardenas Andres Felipe MillanORCID,Siqueira Fabiana Suelen Figuerêdo de,Carvalho Edilausson Moreno,Fronza Bruna Marin,André Carolina BossoORCID,Nascimento da Silva Luis ClaudioORCID,Galvão Lívia Câmara de CarvalhoORCID

Abstract

Dental caries is a multifactorial, biofilm-dependent infectious disease that develops when detrimental changes occur in the oral cavity microenvironment. The antimicrobial and antivirulence properties of the essential oil obtained from the leaves of Eugenia brejoensis Mazine (EBEO) have been reported against Gram-positive and Gram-negative bacteria. Herein, the antimicrobial action of EBEO towards Streptococcus mutans is reported, along with the development and characterization of dental adhesives doped with. The minimum inhibitory concentration (MIC) and minimum bactericidal concentration (MBC) of EBEO were determined against S. mutans, while its toxicity was analyze using Tenebrio molitor larvae. EBEO (MIC and 10×MIC) was incorporated into the Ambar Advanced Polymerization System® (Ambar APS), a two-step total-etch adhesive system (FGM Dental Group), and the antibiofilm action was evaluated. The reflective strength, modulus of elasticity, degree of conversion, and maximum rate of polymerization of each adhesive were also determined. The MIC and MBC values of EBEO against S. mutans were 62.5 µg/mL. The tested concentrations of EBEO were non-toxic to T. molitor larvae. The formation of S. mutans biofilms was significantly inhibited by EBEO and EBEO-coated resin discs (p < 0.05). Importantly, EBEO incorporation did not affect the mechanical and physicochemical properties in relation to oil-free adhesive version. EBEO showed strong antibacterial and antibiofilm activity against S. mutans, no toxicity effect against T. molitor larvae, and did not jeopardize the physical-chemical properties tested.

Publisher

MDPI AG

Subject

Biomedical Engineering,Biomaterials

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