Seedlabs
Source research

Simultaneous analysis of bisphenol A based compounds and other monomers leaching from resin‐based dental materials by UHPLC–MS/MS

Eveline Putzeys, Stevan M. Čokić, Hui Chong, Mario Smet, Jeroen Vanoirbeek, Lode Godderis et al. · 2017 · 37 citationsRead the paper

Resin-based dental materials have raised debates concerning their safety and biocompatibility, resulting in a growing necessity of profound knowledge on the quantity of released compounds into the oral cavity. In this context, the aim of this study was to develop a comprehensive and reliable procedure based on liquid chromatography with mass spectrometry for the simultaneous analysis of various leached compounds (including bisphenol A based compounds) in samples from in vitro experiments. Different experiments were performed to determine the optimal analytical parameters, comprising mass spectrometry parameters, chromatographic separation conditions, and sample preparation. Four internal standards were used as follows: deuterated diethyl phthalate and bisphenol A (commercially available), and deuterated analogues of triethylene glycol dimethacrylate and urethane dimethacrylate (custom-made). The optimized method was validated for linearity of the calibration curves and the associated correlation coefficient, lower limit of quantification, higher limit of quantification, and intra- and interassay accuracy and precision. Additionally, the developed liquid chromatography with tandem mass spectrometry method was applied to the analysis of leaching compounds from four resin-based dental materials. The results indicated that this method is suitable for the analysis of different target compounds leaching from dental materials. This method might serve as a valuable basis for quick and accurate quantification of leached compounds from resin-based dental materials in biological samples.

1 idea Seedlabs derived from this research

A medical-grade 3D-printing resin for aligners designed to reduce the leaching of cytotoxic monomers and resist hydrolytic degradation. The formulation focuses on increasing monomer conversion and replacing hydrolytically unstable bonds to maintain mechanical integrity during oral wear.

AI score 83/100