[1] Ruben JL, Roeters FJ, Montagner AF, et al. A multifunctional device to simulate oral ageing: the "Rub&Roll" [J]. J Mech Behav Biomed Mater, 2014, 30:75-82. [2] Sartori N, Peruchi LD, Phark JH, et al. Permeation of intrinsic water into ethanol-and water-saturated, monomer-infiltrated dentin bond interfaces [J]. Dent Mater, 2015, 31(11):1385-1395. [3] Trindade FZ, Campos F, Marinho CC, et al. Does the fatigue loading frequency affect the lithium disilicate glass ceramic inlay-dentin bond strength? [J]. Int J Adhes Adhes, 2018, 84:301-306. [4] Khvostenko D, Hilton TJ, Ferracane JL, et al. Bioactive glass fillers reduce bacterial penetration into marginal gaps for composite restorations [J]. Dent Mater, 2016, 32(1):73-81. [5] Elbahie E, Beitzel D, Mutluay MM, et al. Durability of adhesive bonds to tooth structure involving the DEJ [J]. J Mech Behav Biomed Mater, 2018, 77:557-565. [6] Heintze SD. How to qualify and validate wear simulation devices and methods [J]. Dent Mater, 2006, 22(8):712-734. [7] Mandava J, Pamidimukkala S, Karumuri S, et al. Microtensile bond strength evaluation of composite resin to discolored dentin after amalgam removal [J]. Cureus, 2020, 12(4):e7536. [8] Montagner AF, Opdam NJ, Ruben JL, et al. Bonding effectiveness of composite-dentin interfaces after mechanical loading with a new device (Rub&Roll) [J]. Dent Mater J, 2016, 35(6):855-861. [9] Montagner AF, Opdam NJ, De Munck J, et al. Bonding efficacy and fracture pattern of adhesives submitted to mechanical aging with the Rub&Roll device [J]. J Adhes Dent, 2017, 19(1):59-68. [10] Zhang Z, Beitzel D, Majd H, et al. Fatigue resistance of dentin bonds prepared with two-vs. three-step adhesives: Effect of carbodiimide [J]. Dent Mater, 2017, 33(12):1340-1350. [11] Carrera CA, Li Y, Chen R, et al. Interfacial degradation of adhesive composite restorations mediated by oral biofilms and mechanical challenge in an extracted tooth model of secondary caries [J]. J Dent, 2017, 66:62-70. [12] Nawafleh N, Hatamleh MM, Öchsner A, et al. The impact of core/Veneer thickness ratio and cyclic loading on fracture resistance of lithium disilicate crown [J]. J Prosthodont, 2018, 27(1):75-82. [13] Hayashi K, Maeno M, Nara Y. Influence of immediate dentin sealing and temporary restoration on the bonding of CAD/CAM ceramic crown restoration [J]. Dent Mater J, 2019, 38(6):970-980. [14] Kawai T, Maseki T, Nara Y. Bonding of flowable resin composite restorations to class 1 occlusal cavities with and without cyclic load stress [J]. Dent Mater J, 2016, 35(3):408-417. [15] Krummel A, Garling A, Sasse M, et al. Influence of bonding surface and bonding methods on the fracture resistance and survival rate of full-coverage occlusal veneers made from lithium disilicate ceramic after cyclic loading [J]. Dent Mater, 2019, 35(10):1351-1359. [16] Grubbs TD, Vargas M, Kolker J, et al. Efficacy of direct restorative materials in proximal box elevation on the margin quality and fracture resistance of molars restored with CAD/CAM onlays [J]. Oper Dent, 2020, 45(1):52-61. [17] Costa DM, Somacal DC, Borges GA, et al. Bond capability of universal adhesive systems to dentin in self-etch mode after short-term storage and cyclic loading [J]. Open Dent J, 2017, 11:276-283. [18] Deng S, Chung KH, Chan DCN, et al. Evaluation of bond strength and microleakage of a novel metaltitanate antibacterial agent [J]. Oper Dent, 2016, 41(3):E48-E56. [19] Schlenz MA, Schmidt A, Rehmann P, et al. Microleakage of composite crowns luted on CAD/CAM-milled human molars: a new method for standardized in vitro tests [J]. Clin Oral Investig, 2019, 23(2):511-517. [20] Silva Sousa AB, Vidal CMP, Leme-Kraus AA, et al. Experimental primers containing synthetic and natural compounds reduce enzymatic activity at the dentin-adhesive interface under cyclic loading [J]. Dent Mater, 2016, 32(10):1248-1255. [21] Farina AP, Chiela H, Carlini-Junior B, et al. Influence of cement type and relining procedure on push-Out bond strength of fiber posts after cyclic loading [J]. J Prosthodont, 2016, 25(1):54-60. [22] Tsujimoto A, Barkmeier WW, Erickson RL, et al. Influence of the number of cycles on shear fatigue strength of resin composite bonded to enamel and dentin using dental adhesives in self-etching mode [J]. Dent Mater J, 2018, 37(1):113-121. [23] Scheidel DD, Takamizawa T, Bakmeier WW, et al. Effect of frequency on the fatigue strength of dentin bonds [J]. J Oral Sci, 2016, 58(4):539-546. [24] Zhang Z, Beitzel D, Majd H, et al. Effect of carbodiimide on the fatigue crack growth resistance of resin-dentin bonds [J]. Dent Mater, 2016, 32(2):211-222. [25] Toledano M, Osorio R, Osorio E, et al. A zinc chloride-doped adhesive facilitates sealing at the dentin interface: A confocal laser microscopy study [J]. J Mech Behav Biomed Mater, 2017, 74:35-42. [26] Melo MA, Orrego S, Weir MD, et al. Designing multiagent dental materials for enhanced resistance to biofilm damage at the bonded interface [J]. ACS Appl Mater Interfaces, 2016, 8(18):11779-11787. [27] Zhang Z, Beitzel D, Mutluay M, et al. On the durability of resin-dentin bonds: Identifying the weakest links [J]. Dent Mater, 2015, 31(9):1109-1118. [28] Tsujimoto A, Barkmeier WW, Takamizawa T, et al. Comparison between universal adhesives and two-step self-etch adhesives in terms of dentin bond fatigue durability in self-etch mode [J]. Eur J Oral Sci, 2017, 125(3):215-222. [29] Takamizawa T, Barkmeier WW, Tsujimoto A, et al. Influence of different etching modes on bond strength and fatigue strength to dentin using universal adhesive systems [J]. Dent Mater, 2016, 32(2):e9-e21. [30] Takamizawa T, Barkmeier WW, Tsujimoto A, et al. Influence of different pre-etching times on fatigue strength of self-etch adhesives to dentin [J]. Eur J Oral Sci, 2016, 124(2):210-218. [31] Yamauchi K, Tsujimoto A, Jurado CA, et al. Etch-and-rinse vs self-etch mode for dentin bonding effectiveness of universal adhesives [J]. J Oral Sci, 2019, 61(4):549-553. [32] Kitayama S, Nasser NA, Pilecki P, et al. Effect of resin coating and occlusal loading on microleakage of class Ⅱ computer-aided design/computer-aided manufacturing fabricated ceramic restorations: A confocal microscopic study [J]. Acta Odontol Scand, 2011, 69:182-192. |