Antibacterial efficacy and osteogenic potential of mineral trioxide aggregate-based retrograde filling material incorporated with silver nanoparticle and calcium fluoride

Min-Yong Lee1, Hi-Won Yoon2, Kwang-Mahn Kim1, Jae-Sung Kwon1,3
1Department and Research Institute of Dental Biomaterials and Bioengineering, Yonsei University College of Dentistry, Seoul, South Korea
2Department of Conservative Dentistry, Gangnam Severance Hospital, Yonsei University College of Dentistry, Seoul, South Korea
3BK21 FOUR Project, Yonsei University College of Dentistry, Seoul, South Korea

Tài liệu tham khảo

Mustafa, 2021, Evaluation of the causes of failure of root canal treatment among patients in the City of Al-Kharj, Saudi Arabia, Niger J Clin Pract, 24, 621, 10.4103/njcp.njcp_290_20 Ashley, 2001, The assessment of the endodontically treated tooth, Dent Update, 28, 247, 10.12968/denu.2001.28.5.247 Kakehashi, 1965, The effects of surgical exposures of dental pulps in germ-free and conventional laboratory rats, Oral Surg Oral Med Oral Radiol, 20, 340, 10.1016/0030-4220(65)90166-0 Prada, 2019, Influence of microbiology on endodontic failure. Literature review, Med Oral Patol Oral Cir Bucal, 24, e364, 10.4317/medoral.22907 Von Arx, 2011, Apical surgery: a review of current techniques and outcome, Saudi Dent J, 23, 9, 10.1016/j.sdentj.2010.10.004 Chong, 2003, A prospective clinical study of Mineral Trioxide Aggregate and IRM when used as root-end filling materials in endodontic surgery, Int Endod J, 36, 520, 10.1046/j.1365-2591.2003.00682.x Von Arx, 2005, Failed root canals: the case for apicoectomy (periradicular surgery), JOMS, 63, 832 Lindeboom, 2005, A comparative prospective randomized clinical study of MTA and IRM as root-end filling materials in single-rooted teeth in endodontic surgery, Oral Surg Oral Med Oral Pathol Oral Radiol Endod, 100, 495, 10.1016/j.tripleo.2005.03.027 Kim, 2015, An in vitro evaluation of the antibacterial properties of three mineral trioxide aggregate (MTA) against five oral bacteria, Arch Oral Biol, 60, 497, 10.1016/j.archoralbio.2015.07.014 Maeda, 2015, Mineral trioxide aggregate induces osteoblastogenesis via Atf6, BoneKEy Rep, 2, 36, 10.1016/j.bonr.2015.03.003 Bruna, 2021, Silver nanoparticles and their antibacterial applications, Int J Mol Sci, 22, 7202, 10.3390/ijms22137202 Halkai, 2018, Antibacterial efficacy of biosynthesized silver nanoparticles against Enterococcus faecalis biofilm: an in vitro study, Contemp Clin Dent, 9, 237, 10.4103/ccd.ccd_828_17 Marquis, 1995, Antimicrobial actions of fluoride for oral bacteria, Can J Microbiol, 41, 955, 10.1139/m95-133 Li, 2020, RNA-Seq comparative analysis reveals the response of Enterococcus faecalis TV4 under fluoride exposure, Gene, 726, 10.1016/j.gene.2019.144197 Lee, 2017, Micromolar levels of sodium fluoride promote osteoblast differentiation through Runx2 signaling, Biol Trace Elem Res, 178, 283, 10.1007/s12011-017-0930-5 Cinteza, 2018, Chitosan-stabilized Ag nanoparticles with superior biocompatibility and their synergistic antibacterial effect in mixtures with essential oils, Nanomaterials, 8, 826, 10.3390/nano8100826 Agnihotri, 2014, Size-controlled silver nanoparticles synthesized over the range 5–100 nm using the same protocol and their antibacterial efficacy, RSC Adv, 4, 3974, 10.1039/C3RA44507K Hubble, 2003, Influence of Enterococcus faecalis proteases and the collagen-binding protein, Ace, on adhesion to dentin, Oral Microbiol Immunol, 18, 121, 10.1034/j.1399-302X.2003.00059.x Stuart, 2006, Enterococcus faecalis: its role in root canal treatment failure and current concepts in retreatment, J Endod, 32, 93, 10.1016/j.joen.2005.10.049 Sundqvist, 1998, Microbiologic analysis of teeth with failed endodontic treatment and the outcome of conservative re-treatment, Oral Surg Oral Med Oral Pathol Oral Radiol Endod, 85, 86, 10.1016/S1079-2104(98)90404-8 Appelbe, 2007, Effects of prolonged exposure to alkaline pH on Enterococcus faecalis survival and specific gene transcripts, Oral Microbiol Immunol, 22, 169, 10.1111/j.1399-302X.2007.00340.x Bapat, 2018, An overview of application of silver nanoparticles for biomaterials in dentistry, Mater Sci Eng, C, 91, 881, 10.1016/j.msec.2018.05.069 Khorrami, 2018, Selective cytotoxicity of green synthesized silver nanoparticles against the MCF-7 tumor cell line and their enhanced antioxidant and antimicrobial properties, Int J Nanomed, 13, 8013, 10.2147/IJN.S189295 Ramkumar, 2017, Biofabrication and characterization of silver nanoparticles using aqueous extract of seaweed Enteromorpha compressa and its biomedical properties, Biotechnol Rep, 14, 1, 10.1016/j.btre.2017.02.001 Durán, 2016, Antimicrobial activity of biogenic silver nanoparticles, and silver chloride nanoparticles: an overview and comments, Appl Microbiol Biotechnol, 100, 6555, 10.1007/s00253-016-7657-7 Akmaz, 2013, The effect of Ag content of the chitosan-silver nanoparticle composite material on the structure and antibacterial activity, Adv Mater Sci Eng, 2013, 10.1155/2013/690918 Karygianni, 2016, The effects of various mixing solutions on the biocompatibility of mineral trioxide aggregate, Int Endod J, 49, 561, 10.1111/iej.12483 Han, 2014, Oxidative stress mediated cytotoxicity of biologically synthesized silver nanoparticles in human lung epithelial adenocarcinoma cell line, Nanoscale Res Lett, 9, 1, 10.1186/1556-276X-9-459 Gurunathan, 2015, Multidimensional effects of biologically synthesized silver nanoparticles in Helicobacter pylori, Helicobacter felis, and human lung (L132) and lung carcinoma A549 cells, Nanoscale Res Lett, 10, 1, 10.1186/s11671-015-0747-0 Carlson, 2008, Unique cellular interaction of silver nanoparticles: size-dependent generation of reactive oxygen species, J Phys Chem B, 112, 13608, 10.1021/jp712087m Whitford, 1989, 159 Agalakova, 2012, Molecular mechanisms of cytotoxicity and apoptosis induced by inorganic fluoride, Int Sch Res Notices, 2012 Wu, 2019, Fluoride induces autoimmune orchitis involved with enhanced IL-17A secretion in mice testis, J Agric Food Chem, 67, 13333, 10.1021/acs.jafc.9b05789 Zand, 2016, Tissue reaction and biocompatibility of implanted mineral trioxide aggregate with silver nanoparticles in a rat model, Iran Endod J, 11, 13 Samiei, 2017, Zeolite-silver-zinc nanoparticles: biocompatibility and their effect on the compressive strength of mineral trioxide aggregate, J Clin Exp Dent, 9, 356 Zhang, 2015, Silver nanoparticles promote osteogenesis of mesenchymal stem cells and improve bone fracture healing in osteogenesis mechanism mouse model, Nanomed, 11, 1949, 10.1016/j.nano.2015.07.016 Qin, 2014, Silver nanoparticles promote osteogenic differentiation of human urine-derived stem cells at noncytotoxic concentrations, Int J Nanomed, 9, 2469, 10.2147/IJN.S59753