The oral cavity could be considered a harsh environment: humidity, temperature changes due to hot and cold food intake, and mechanical loading with some of the strongest muscles in the human body. Teeth, however, are eminently equipped to withstand these challenges. The enamel is very hard, and the dentin underneath prevents the relatively brittle enamel from fracturing. The mineral component of both materials, hydroxyapatite is of very low solubility and in equilibrium with the supersaturated saliva. Chewing, drinking, and occasional tooth grinding will result in physiological tooth wear during a lifetime1,2,3. Extreme challenges, such as bruxism or habitual chewing on foreign objects, may lead to excessive wear. Recently, the role of erosion in accelerating mechanical tooth wear has been recognized. Tooth erosion has been extensively studied in vitro, but the models used have generally been simple, and mechanical factors have largely been ignored. The clinical interplay between chemical and mechanical wear processes is therefore not fully understood4.
Many in vitro erosion and erosive wear studies have used simple acid immersion of flat polished enamel or dentine samples, using hardness loss or profilometry as the measurement approach5. The introduction of an abrasive component has usually involved tooth brushing action, or sometimes tongue or enamel cusp sliding contacts6. Such studies have shown that enamel erosion results in a softened surface layer, which is easily abraded. Flat surfaces are usually needed because the mechanical loading device cannot handle uneven surfaces, and the measuring techniques for uneven surfaces are also more complicated. However, most erosive tooth wear in adolescents is seen on occlusal cusps, and abrasion by chewing food is expected to be the most relevant mechanical factor in occlusal erosive wear. The ideal oral wear machine that mimics the oral environment in all details does not exist, and most in vitro models will not allow for natural occlusal surfaces of teeth to be either exposed or measured7,8.
Our laboratory recently introduced a novel device, which conforms to many of Heintze's7 specifications and tolerances of oral wear simulation models, and that enables the user to perform wear and loading studies separately or simultaneously in an erosive and/or abrasive environment. The new device (Rub&Roll) consists of a stirring machine and a container (Figure 1a). In the container, a cylinder with specimens can be mounted. Between the cylinder and the inner wall of the container one of more rods are placed (Figure 1b). By starting the stirring motor, the rod rotates over the specimens in the cylinder (Figure 1c). Using shims, different forces can be applied on the specimens. For a comprehensive description of the design, construction, operation mechanism, and features of the device refer to the paper introducing and discussing the device9. The device is robust, not technically demanding, and can apply loads to 32 specimens simultaneously. The antagonist force is moving over the specimen surface while maintaining smooth, continuous contact, which is comparable to normal chewing10. Here we present an application to model erosive wear of the occlusal surfaces of natural teeth, and we demonstrate the clinical relevance and versatility of the method.