Bioactive Materials in Restorative Dentistry
Referanslar
Schmalz G, Hickel R, Price RB, et al. Bioactivity of Dental Restorative Materials: FDI Policy Statement. Int Dent J. 2023;73(1):21-7. 10.1016/j.identj.2022.11.012
Williams DF. On the nature of biomaterials. Biomaterials. 2009;30(30):5897-909. 10.1016/j.biomaterials.2009.07.027
Ratner BD, Bryant SJ. Biomaterials: where we have been and where we are going. Annu Rev Biomed Eng. 2004;6:41-75. 10.1146/annurev.bioeng.6.040803.140027
Hench LL, Thompson I. Twenty-first century challenges for biomaterials. J R Soc Interface. 2010;7 Suppl 4(Suppl 4):S379-91. 10.1098/rsif.2010.0151.focus
Hench LL. Biomaterials. Science. 1980;208(4446):826-31. 10.1126/science.6246576
Holzapfel BM, Reichert JC, Schantz JT, et al. How smart do biomaterials need to be? A translational science and clinical point of view. Adv Drug Deliv Rev. 2013;65(4):581-603. 10.1016/j.addr.2012.07.009
Hench LL, Splinter RJ, Allen WC, et al. Bonding mechanisms at the interface of ceramic prosthetic materials. Journal of Biomedical Materials Research. 1971;5(6):117-41. https://doi.org/10.1002/jbm.820050611
Hench LL. The story of Bioglass. J Mater Sci Mater Med. 2006;17:11.
Jefferies SR. Bioactive and Biomimetic Restorative Materials: A Comprehensive Review. Part I. Journal of Esthetic and Restorative Dentistry. 2014;26(1):14-26. https://doi.org/10.1111/jerd.12069
Jefferies SR. Bioactive dental materials. Inside Dentistry. 2016;12:2.
Primus C, Gutmann JL, Tay FR, et al. Calcium silicate and calcium aluminate cements for dentistry reviewed. Journal of the American Ceramic Society. 2022;105(3):1841-63. https://doi.org/10.1111/jace.18051
Hulbert SF, Hench LL, Forbers D, et al. History of bioceramics. Ceramics International. 1982;8(4):131-40. https://doi.org/10.1016/0272-8842(82)90003-7
Hench LL. Bioactive Ceramics: Theory and Clinical Applications. In: Andersson ÖH, Happonen R-P, Yli-Urpo A, editors. Bioceramics. Oxford: Pergamon; 1994. p. 3-14.
Gandolfi MG, Siboni F, Botero T, et al. Calcium silicate and calcium hydroxide materials for pulp capping: biointeractivity, porosity, solubility and bioactivity of current formulations. J Appl Biomater Funct Mater. 2015;13(1):43-60. 10.5301/jabfm.5000201
Whitlow J, Paul A, Polini A. Bioactive Materials: Definitions and Application in Tissue Engineering and Regeneration Therapy. In: Marchi J, editor. Biocompatible Glasses: From Bone Regeneration to Cancer Treatment. Cham: Springer International Publishing; 2016. p. 1-17.
Vallittu PK, Boccaccini AR, Hupa L, et al. Bioactive dental materials-Do they exist and what does bioactivity mean? Dent Mater. 2018;34(5):693-4. 10.1016/j.dental.2018.03.001
Price R, Roulet JF. The value of consensus conferences: Peer review by 50 key opinion leaders! STOMATOLOGY EDU JOURNAL. 2018;5:202-4. 10.25241/stomaeduj.2018.5(4).edit.1
Standardization IOf. Implants for surgery In vitro evaluation for apatite-forming ability of implant materials. ,. ISO 23317:20142014.
Standardization IOf. Tissue-engineered medical productsbBioactive ceramics Method to measure cellmigration in porous materials. ,. ISO 19090:20182018.
Widbiller M, Schmalz G. Endodontic regeneration: hard shell, soft core. Odontology. 2021;109(2):303-12. 10.1007/s10266-020-00573-1
Goldberg M, Schmalz G. Toward a strategic plan for pulp healing: from repair to regeneration. Clin Oral Investig. 2011;15(1):1-2. 10.1007/s00784-010-0503-x
Schmalz G, Cieplik F. Biofilms on Restorative Materials. Monogr Oral Sci. 2021;29:155-94. 10.1159/000510191
Cieplik F, Aparicio C, Kreth J, et al. Development of standard protocols for biofilm-biomaterial interface testing. JADA Foundational Science. 2022;1:100008. https://doi.org/10.1016/j.jfscie.2022.100008
Hamdy T. Bioactivity: A New Buzz in Dental Materials. 2018.
Sonarkar S, Purba R. Bioactive materials in Conservative Dentistry. International Journal of Contemporary Dental and Medical Reviews. 2015;2015. 10.15713/ins.ijcdmr.47
Valenzuela F, Covarrubias C, Martinez C, et al. Peparation and bioactive properties of novel bone-repair bionanocomposites based on hydroxyapatite and bioactive glass nanoparticles. J Biomed Mater Res B Appl BiomaterAug;. 2012;100(6):1672-82.
Skallevold HE, Rokaya D, Khurshid Z, et al. Bioactive Glass Applications in Dentistry. Int J Mol Sci. 2019;20(23). 10.3390/ijms20235960
Accorinte Mde L, Loguercio AD, Reis A, et al. Response of human pulp capped with a bonding agent after bleeding control with hemostatic agents. Oper Dent. 2005;30(2):147-55.
Chandra BS, Krishna VG. Vital pulp therapy, pulpotomy and apexification. Grossman’s Endodontic Practice 12th ed New Delhi: Wolters Kluwer2010. p. 315.
Wilson AD, Kent B. The glass‐ionomer cement, a new translucent dental filling material. Journal of Applied Chemistry and Biotechnology. 1971;21(11):313-.
Davidson CL. Advances in glass-ionomer cements. J Appl Oral Sci. 2006;14 Suppl:3-9. 10.1590/s1678-77572006000700002
Skrtic D, Antonucci JM, Eanes ED, et al. Physicochemical evaluation of bioactive polymeric composites based on hybrid amorphous calcium phosphates. J Biomed Mater Res. 2000;53(4):381-91. 10.1002/1097-4636(2000)53:4<381::aid-jbm12>3.0.co;2-h
Glasspoole EA, Erickson RL, Davidson CL. A fluoride-releasing composite for dental applications. Dent Mater. 2001;17(2):127-33. 10.1016/s0109-5641(00)00051-8
Vermeersch G, Leloup G, Vreven J. Fluoride release from glass-ionomer cements, compomers and resin composites. J Oral Rehabil. 2001;28(1):26-32. 10.1046/j.1365-2842.2001.00635.x
Asmussen E, Peutzfeldt A. Long-term fluoride release from a glass ionomer cement, a compomer, and from experimental resin composites. Acta Odontol Scand. 2002;60(2):93-7. 10.1080/000163502753509482
Jokstad A, Mjor IA. Ten years' clinical evaluation of three luting cements. J Dent. 1996;24(5):309-15. 10.1016/0300-5712(95)00076-3
Yan Z, Sidhu SK, Carrick TE, et al. Response to thermal stimuli of glass ionomer cements. Dent Mater. 2007;23(5):597-600. 10.1016/j.dental.2006.05.001
Feilzer AJ, De Gee AJ, Davidson CL. Curing contraction of composites and glass-ionomer cements. J Prosthet Dent. 1988;59(3):297-300. 10.1016/0022-3913(88)90176-x
Croll TP, Bar-Zion Y, Segura A, et al. Clinical performance of resin-modified glass ionomer cement restorations in primary teeth. A retrospective evaluation. J Am Dent Assoc. 2001;132(8):1110-6. 10.14219/jada.archive.2001.0336
Chau NP, Pandit S, Jung JE, et al. Long-term anti-cariogenic biofilm activity of glass ionomers related to fluoride release. J Dent. 2016;47:34-40. 10.1016/j.jdent.2016.02.006
Sidhu SK, Nicholson JW. A Review of Glass-Ionomer Cements for Clinical Dentistry. J Funct Biomater. 2016;7(3). 10.3390/jfb7030016
Liporoni P, Paulillo LA, Cury JA, et al. Surface finishing of resin-modified glass ionomer. Gen Dent. 2003;51(6):541-3.
Imataki R, Shinonaga Y, Nishimura T, et al. Mechanical and Functional Properties of a Novel Apatite-Ionomer Cement for Prevention and Remineralization of Dental Caries. Materials (Basel). 2019;12(23). 10.3390/ma12233998
McLean JW, Nicholson JW, Wilson AD. Proposed nomenclature for glass-ionomer dental cements and related materials. Quintessence Int. 1994;25(9):587-9.
McCabe JF. Resin-modified glass-ionomers. Biomaterials. 1998;19(6):521-7. 10.1016/s0142-9612(98)00132-x
Xie D, Brantley WA, Culbertson BM, et al. Mechanical properties and microstructures of glass-ionomer cements. Dent Mater. 2000;16(2):129-38. 10.1016/s0109-5641(99)00093-7
Gao W, Smales RJ, Gale MS. Fluoride release/uptake from newer glass-ionomer cements used with the ART approach. Am J Dent. 2000;13(4):201-4.
Yap AU, Tham SY, Zhu LY, et al. Short-term fluoride release from various aesthetic restorative materials. Oper Dent. 2002;27(3):259-65.
Attar N, Turgut MD. Fluoride release and uptake capacities of fluoride-releasing restorative materials. Oper Dent. 2003;28(4):395-402.
Robertello FJ, Coffey JP, Lynde TA, et al. Fluoride release of glass ionomer-based luting cements in vitro. J Prosthet Dent. 1999;82(2):172-6. 10.1016/s0022-3913(99)70152-6
Musa A, Pearson GJ, Gelbier M. In vitro investigation of fluoride ion release from four resin-modified glass polyalkenoate cements. Biomaterials. 1996;17(10):1019-23. 10.1016/0142-9612(96)84678-3
Smales RJ, Gao W. In vitro caries inhibition at the enamel margins of glass ionomer restoratives developed for the ART approach. J Dent. 2000;28(4):249-56. 10.1016/s0300-5712(99)00071-8
De Witte AM, De Maeyer EA, Verbeeck RM, et al. Fluoride release profiles of mature restorative glass ionomer cements after fluoride application. Biomaterials. 2000;21(5):475-82. 10.1016/s0142-9612(99)00188-x
De Caluwe T, Vercruysse CW, Ladik I, et al. Addition of bioactive glass to glass ionomer cements: Effect on the physico-chemical properties and biocompatibility. Dent Mater. 2017;33(4):e186-e203. 10.1016/j.dental.2017.01.007
Marchi J. Biocompatible Glasses: From Bone Regeneration to Cancer Treatment2016.
Kokubo T, Takadama H. How useful is SBF in predicting in vivo bone bioactivity? Biomaterials. 2006;27(15):2907-15. 10.1016/j.biomaterials.2006.01.017
Brunner TJ, Stark WJ, Boccaccini AR. Nanoscale Bioactive Silicate Glasses in Biomedical Applications. Nanotechnologies for the Life Sciences2009.
Efflandt SE, Magne P, Douglas WH, et al. Interaction between bioactive glasses and human dentin. J Mater Sci Mater Med. 2002;13(6):557-65. 10.1023/a:1015174726415
Salehi S, Davis HB, Ferracane JL, et al. Sol-gel-derived bioactive glasses demonstrate antimicrobial effects on common oral bacteria. Am J Dent. 2015;28(2):111-5.
Khvostenko D, Hilton TJ, Ferracane JL, et al. Bioactive glass fillers reduce bacterial penetration into marginal gaps for composite restorations. Dent Mater. 2016;32(1):73-81. 10.1016/j.dental.2015.10.007
Monroe EA, Votava W, Bass DB, et al. New calcium phosphate ceramic material for bone and tooth implants. J Dent Res. 1971;50(4):860-1. 10.1177/00220345710500041201
Yang B, Flaim G, Dickens SH. Remineralization of human natural caries and artificial caries-like lesions with an experimental whisker-reinforced ART composite. Acta Biomater. 2011;7(5):2303-9. 10.1016/j.actbio.2011.01.002
Xu HH, Weir MD, Sun L, et al. Strong nanocomposites with Ca, PO(4), and F release for caries inhibition. J Dent Res. 2010;89(1):19-28. 10.1177/0022034509351969
Weir MD, Chow LC, Xu HH. Remineralization of demineralized enamel via calcium phosphate nanocomposite. J Dent Res. 2012;91(10):979-84. 10.1177/0022034512458288
Hench LL. Bioceramics and the origin of life. J Biomed Mater Res. 1989;23(7):685-703. 10.1002/jbm.820230703
Marovic D, Sariri K, Demoli N, et al. Remineralizing amorphous calcium phosphate based composite resins: the influence of inert fillers on monomer conversion, polymerization shrinkage, and microhardness. Croat Med J. 2016;57(5):465-73. 10.3325/cmj.2016.57.465
Alania Y, Chiari MD, Rodrigues MC, et al. Bioactive composites containing TEGDMA-functionalized calcium phosphate particles: Degree of conversion, fracture strength and ion release evaluation. Dent Mater. 2016;32(12):e374-e81. 10.1016/j.dental.2016.09.021
Gandolfi MG, Van Landuyt K, Taddei P, et al. Environmental scanning electron microscopy connected with energy dispersive x-ray analysis and Raman techniques to study ProRoot mineral trioxide aggregate and calcium silicate cements in wet conditions and in real time. J Endod. 2010;36(5):851-7. 10.1016/j.joen.2009.12.007
Han L, Okiji T. Uptake of calcium and silicon released from calcium silicate-based endodontic materials into root canal dentine. Int Endod J. 2011;44(12):1081-7. 10.1111/j.1365-2591.2011.01924.x
Ford TR, Torabinejad M, Abedi HR, et al. Using mineral trioxide aggregate as a pulp-capping material. J Am Dent Assoc. 1996;127(10):1491-4. 10.14219/jada.archive.1996.0058
Camilleri J, Montesin FE, Brady K, et al. The constitution of mineral trioxide aggregate. Dent Mater. 2005;21(4):297-303. 10.1016/j.dental.2004.05.010
Aeinehchi M, Eslami B, Ghanbariha M, et al. Mineral trioxide aggregate (MTA) and calcium hydroxide as pulp-capping agents in human teeth: a preliminary report. Int Endod J. 2003;36(3):225-31. 10.1046/j.1365-2591.2003.00652.x
Guven EP, Yalvac ME, Sahin F, et al. Effect of dental materials calcium hydroxide-containing cement, mineral trioxide aggregate, and enamel matrix derivative on proliferation and differentiation of human tooth germ stem cells. J Endod. 2011;37(5):650-6. 10.1016/j.joen.2011.02.008
Min KS, Park HJ, Lee SK, et al. Effect of mineral trioxide aggregate on dentin bridge formation and expression of dentin sialoprotein and heme oxygenase-1 in human dental pulp. J Endod. 2008;34(6):666-70. 10.1016/j.joen.2008.03.009
Nair PNR, Duncan HF, Pitt Ford TR, et al. Histological, ultrastructural and quantitative investigations on the response of healthy human pulps to experimental capping with Mineral Trioxide Aggregate: a randomized controlled trial¶. International Endodontic Journal. 2009;42(5):422-44. https://doi.org/10.1111/j.1365-2591.2009.01558.x
Berzins DW. Chemical Properties of MTA. Mineral Trioxide Aggregate2014. p. 17-35.
Camilleri J, Sorrentino F, Damidot D. Investigation of the hydration and bioactivity of radiopacified tricalcium silicate cement, Biodentine and MTA Angelus. Dent Mater. 2013;29(5):580-93. 10.1016/j.dental.2013.03.007
Setbon HM, Devaux J, Iserentant A, et al. Influence of composition on setting kinetics of new injectable and/or fast setting tricalcium silicate cements. Dent Mater. 2014;30(12):1291-303. 10.1016/j.dental.2014.09.005
Kaup M, Schafer E, Dammaschke T. An in vitro study of different material properties of Biodentine compared to ProRoot MTA. Head Face Med. 2015;11:16. 10.1186/s13005-015-0074-9
Torabinejad M, Hong CU, McDonald F, et al. Physical and chemical properties of a new root-end filling material. J Endod. 1995;21(7):349-53. 10.1016/S0099-2399(06)80967-2
Camilleri J. Characterization and hydration kinetics of tricalcium silicate cement for use as a dental biomaterial. Dent Mater. 2011;27(8):836-44. 10.1016/j.dental.2011.04.010
Bhavana V, Chaitanya KP, Gandi P, et al. Evaluation of antibacterial and antifungal activity of new calcium-based cement (Biodentine) compared to MTA and glass ionomer cement. J Conserv Dent. 2015;18(1):44-6. 10.4103/0972-0707.148892
Camilleri J, Laurent P, About I. Hydration of Biodentine, Theracal LC, and a prototype tricalcium silicate-based dentin replacement material after pulp capping in entire tooth cultures. J Endod. 2014;40(11):1846-54. 10.1016/j.joen.2014.06.018
Laurent P, Camps J, De Méo M, et al. Induction of specific cell responses to a Ca(3)SiO(5)-based posterior restorative material. Dent Mater. 2008;24(11):1486-94. 10.1016/j.dental.2008.02.020
Pedano MS, Li X, Li S, et al. Freshly-mixed and setting calcium-silicate cements stimulate human dental pulp cells. Dent Mater. 2018;34(5):797-808. 10.1016/j.dental.2018.02.005
Jung S, Mielert J, Kleinheinz J, et al. Human oral cells’ response to different endodontic restorative materials: an in vitro study. Head & face medicine. 2014;10:55. 10.1186/s13005-014-0055-4
Zhang K, Zhang N, Weir MD, et al. Bioactive Dental Composites and Bonding Agents Having Remineralizing and Antibacterial Characteristics. Dent Clin North Am. 2017;61(4):669-87. 10.1016/j.cden.2017.05.002
Kraft L. Calcium Aluminate based Cement as Dental Restorative Materials [Doctoral thesis, comprehensive summary]. Uppsala: Acta Universitatis Upsaliensis; 2002.
Sunnegårdh-Grönberg K, van Dijken JW, Lindberg A, et al. Interfacial adaptation of a calcium aluminate cement used in class II cavities, in vivo. Clin Oral Investig. 2004;8(2):75-80. 10.1007/s00784-003-0242-3
Engqvist H, Schultz-Walz JE, Loof J, et al. Chemical and biological integration of a mouldable bioactive ceramic material capable of forming apatite in vivo in teeth. Biomaterials. 2004;25(14):2781-7. 10.1016/j.biomaterials.2003.09.053
Jefferies S. Bioactive and biomimetic restorative materials: a comprehensive review. Part II. J Esthet Restor Dent. 2014;26(1):27-39. 10.1111/jerd.12066
Langalia A, Buch A, Khamar M, et al. Polymerization shrinkage of composite resins: a review. J Med Dent Sci Res. 2015;2(10):23-7.
Pereira-Cenci T, Cenci MS, Fedorowicz Z, et al. Antibacterial agents in composite restorations for the prevention of dental caries. Cochrane Database Syst Rev. 2009(3):CD007819. 10.1002/14651858.CD007819.pub2
Esteves CM, Ota-Tsuzuki C, Reis AF, et al. Antibacterial activity of various self-etching adhesive systems against oral streptococci. Operative dentistry. 2010;35(4):448-53.
Profeta AC. Dentine bonding agents comprising calcium-silicates to support proactive dental care: Origins, development and future. Dent Mater J. 2014;33(4):443-52. 10.4012/dmj.2013-267
Osorio R, Yamauti M, Osorio E, et al. Zinc reduces collagen degradation in demineralized human dentin explants. J Dent. 2011;39(2):148-53. 10.1016/j.jdent.2010.11.005
Sauro S, Osorio R, Watson TF, et al. Therapeutic effects of novel resin bonding systems containing bioactive glasses on mineral-depleted areas within the bonded-dentine interface. Journal of Materials Science: Materials in Medicine. 2012;23:1521-32.
de Morais RC, Silveira RE, Chinelatti MA, et al. Biosilicate as a dentin pretreatment for total-etch and self-etch adhesives: In vitro study. International Journal of Adhesion and Adhesives. 2016;70:271-6.
Tirapelli C, Panzeri H, Lara EH, et al. The effect of a novel crystallised bioactive glass-ceramic powder on dentine hypersensitivity: a long-term clinical study. J Oral Rehabil. 2011;38(4):253-62. 10.1111/j.1365-2842.2010.02157.x
de Morais RC, Silveira RE, Chinelatti M, et al. Bond strength of adhesive systems to sound and demineralized dentin treated with bioactive glass ceramic suspension. Clin Oral Investig. 2018;22(5):1923-31. 10.1007/s00784-017-2283-z
Carneiro KK, Araujo TP, Carvalho EM, et al. Bioactivity and properties of an adhesive system functionalized with an experimental niobium-based glass. J Mech Behav Biomed Mater. 2018;78:188-95. 10.1016/j.jmbbm.2017.11.016
Salehi S, Gwinner F, Mitchell JC, et al. Cytotoxicity of resin composites containing bioactive glass fillers. Dent Mater O Publ Acad Dent. 2015;31:195-203.
Chatzistavrou X, Velamakanni S, DiRenzo K, et al. Designing dental composites with bioactive and bactericidal properties. Mater Sci Eng C Mater Biol Appl. 2015;52:267-72. 10.1016/j.msec.2015.03.062
Tezvergil-Mutluay A, Seseogullari-Dirihan R, Feitosa VP, et al. Effects of Composites Containing Bioactive Glasses on Demineralized Dentin. J Dent Res. 2017;96(9):999-1005. 10.1177/0022034517709464
Chatzistavrou X, Lefkelidou A, Papadopoulou L, et al. Bactericidal and Bioactive Dental Composites. Front Physiol. 2018;9:103. 10.3389/fphys.2018.00103
Khvostenko D, Mitchell JC, Hilton TJ, et al. Mechanical performance of novel bioactive glass containing dental restorative composites. Dent Mater. 2013;29(11):1139-48. 10.1016/j.dental.2013.08.207
Par M, Tarle Z, Hickel R, et al. Dentin Bond Strength of Experimental Composites Containing Bioactive Glass: Changes During Aging for up to 1 Year. J Adhes Dent. 2018;20(4):325-34. 10.3290/j.jad.a40992
Par M, Tarle Z, Hickel R, et al. Mechanical properties of experimental composites containing bioactive glass after artificial aging in water and ethanol. Clinical Oral Investigations. 2019;23:2733-41.
Par M, Tarle Z, Hickel R, et al. Polymerization kinetics of experimental bioactive composites containing bioactive glass. J Dent. 2018;76:83-8. 10.1016/j.jdent.2018.06.012
Oral O, Lassila LV, Kumbuloglu O, et al. Bioactive glass particulate filler composite: Effect of coupling of fillers and filler loading on some physical properties. Dent Mater. 2014;30(5):570-7. 10.1016/j.dental.2014.02.017
Odermatt R, Par M, Mohn D, et al. Bioactivity and Physico-Chemical Properties of Dental Composites Functionalized with Nano- vs. Micro-Sized Bioactive Glass. J Clin Med. 2020;9(3). 10.3390/jcm9030772
Panpisut P, Toneluck A. Monomer conversion, dimensional stability, biaxial flexural strength, and fluoride release of resin-based restorative material containing alkaline fillers. Dent Mater J. 2020;39(4):608-15. 10.4012/dmj.2019-020
Tiskaya M, Al-Eesa NA, Wong FSL, et al. Characterization of the bioactivity of two commercial composites. Dent Mater. 2019;35(12):1757-68. 10.1016/j.dental.2019.10.004
Makvandi P, Jamaledin R, Jabbari M, et al. Antibacterial quaternary ammonium compounds in dental materials: A systematic review. Dent Mater. 2018;34(6):851-67. 10.1016/j.dental.2018.03.014
Jiao Y, Niu LN, Ma S, et al. Quaternary ammonium-based biomedical materials: State-of-the-art, toxicological aspects and antimicrobial resistance. Prog Polym Sci. 2017;71:53-90. 10.1016/j.progpolymsci.2017.03.001
Beyth N, Yudovin-Farber I, Bahir R, et al. Antibacterial activity of dental composites containing quaternary ammonium polyethylenimine nanoparticles against Streptococcus mutans. Biomaterials. 2006;27(21):3995-4002. 10.1016/j.biomaterials.2006.03.003
Simoncic B, Tomsic B. Structures of Novel Antimicrobial Agents for Textiles - A Review. Textile Research Journal. 2010;80(16):1721-37. 10.1177/0040517510363193
Rechmann P, Le CQ, Chaffee BW, et al. Demineralization prevention with a new antibacterial restorative composite containing QASi nanoparticles: an in situ study. Clin Oral Investig. 2021;25(9):5293-305. 10.1007/s00784-021-03837-4
Imazato S, Kinomoto Y, Tarumi H, et al. Antibacterial activity and bonding characteristics of an adhesive resin containing antibacterial monomer MDPB. Dent Mater. 2003;19(4):313-9. 10.1016/s0109-5641(02)00060-x
Imazato S. Bio-active restorative materials with antibacterial effects: new dimension of innovation in restorative dentistry. Dent Mater J. 2009;28(1):11-9. 10.4012/dmj.28.11
Stencel R, Kasperski J, Pakiela W, et al. Properties of Experimental Dental Composites Containing Antibacterial Silver-Releasing Filler. Materials (Basel). 2018;11(6). 10.3390/ma11061031
Aydin Sevinc B, Hanley L. Antibacterial activity of dental composites containing zinc oxide nanoparticles. J Biomed Mater Res B Appl Biomater. 2010;94(1):22-31. 10.1002/jbm.b.31620
Li Y, Hu X, Ruan J, et al. Bonding durability, antibacterial activity and biofilm pH of novel adhesive containing antibacterial monomer and nanoparticles of amorphous calcium phosphate. J Dent. 2019;81:91-101. 10.1016/j.jdent.2018.12.013