Bacteria debridement efficacy of two sonic root canal irrigant activation systems

Journal of Dentistry - Tập 140 - Trang 104770 - 2024
Chang Zeng1,2, Pei Hu1,2, Colin P. Egan3, Brian E. Bergeron3, Franklin Tay3, Jingzhi Ma1,2
1Department of Stomatology, Tongji Hospital, Tongji Medical College, Huazhong University of Science and Technology, Wuhan, China
2School of Stomatology, Tongji Medical College, Huazhong University of Science and Technology, Wuhan, 430030, China
3The Dental College of Georgia, Augusta University, Augusta, GA, USA

Tài liệu tham khảo

Gomes, 2018, Etiologic role of root canal infection in apical periodontitis and its relationship with clinical symptomatology, Braz. Oral Res., 32, e69, 10.1590/1807-3107bor-2018.vol32.0069 Paula-Silva, 2020, Root canal contamination or exposure to lipopolysaccharide differentially modulate prostaglandin E2 and leukotriene B4 signaling in apical periodontitis, J. Appl. Oral Sci., 28, 10.1590/1678-7757-2019-0699 Haapasalo, 2008, Reasons for persistent and emerging post-treatment endodontic disease, Endod. Topics., 18, 31, 10.1111/j.1601-1546.2011.00256.x Ricucci, 2009, Histologic investigation of root canal-treated teeth with apical periodontitis: A retrospective study from twenty-four patients, J. Endod., 35, 493, 10.1016/j.joen.2008.12.014 Ruksakiet, 2020, Antimicrobial efficacy of chlorhexidine and sodium hypochlorite in root canal disinfection: A systematic review and meta-analysis of randomized controlled trials, J. Endod., 46, 1032, 10.1016/j.joen.2020.05.002 Lopes, 2018, Untouched canal areas and debris accumulation after root canal preparation with rotary and adaptive systems, Aust. Endod. J., 44, 260, 10.1111/aej.12237 De-Deus, 2015, Accumulated hard tissue debris produced during reciprocating and rotary nickel-titanium canal preparation, J. Endod., 41, 676, 10.1016/j.joen.2014.11.028 Versiani, 2016, Micro-CT evaluation of the efficacy of hard-tissue removal from the root canal and isthmus area by positive and negative pressure irrigation systems, Int. Endod J., 49, 1079, 10.1111/iej.12559 Siqueira Junior, 2018, Unprepared root canal surface areas: causes, clinical implications, and therapeutic strategies, Braz. Oral Res., 32, e65 Neelakantan, 2017, Biofilms in endodontics - current status and future directions, Int. J. Mol. Sci., 18, 1748, 10.3390/ijms18081748 Lins, 2013, Antimicrobial resistance and virulence traits of Enterococcus faecalis from primary endodontic infections, J. Dent., 41, 779, 10.1016/j.jdent.2013.07.004 Alghamdi, 2020, The influence of Enterococcus faecalis as a dental root canal pathogen on endodontic treatment: A systematic review, Cureus, 12, e7257 Evans, 2002, Mechanisms involved in the resistance of Enterococcus faecalis to calcium hydroxide, Int. Endod. J., 35, 221, 10.1046/j.1365-2591.2002.00504.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 Zhang, 2015, Correlation between Enterococcus faecalis and persistent intraradicular infection compared with primary intraradicular infection: A systematic review, J. Endod., 41, 1207, 10.1016/j.joen.2015.04.008 Barbosa-Ribeiro, 2016, Antimicrobial susceptibility and characterization of virulence genes of Enterococcus faecalis isolates from teeth with failure of the endodontic treatment, J. Endod., 42, 1022, 10.1016/j.joen.2016.03.015 Koparkar, 2022, Efficacy of various proton-pump inhibitors and calcium hydroxide as intracanal medicaments against Enterococcus faecalis: An in vitro study, Endodontology, 34, 259 Kayaoglu, 2004, Virulence factors of Enterococcus faecalis: relationship to endodontic disease, Crit. Rev. Oral Biol. Med., 15, 308, 10.1177/154411130401500506 Elashiry, 2023, Enterococcus faecalis in secondary apical periodontitis: Mechanisms of bacterial survival and disease persistence, Microb. Pathog., 183, 10.1016/j.micpath.2023.106337 Susila, 2019, Activated irrigation vs. conventional non-activated irrigation in endodontics - A systematic review, Eur. Endod. J., 4, 96 Raducka, 2023, Narrative review on methods of activating irrigation liquids for root canal treatment, Appl. Sci., 13, 7733, 10.3390/app13137733 Gu, 2009, Review of contemporary irrigant agitation techniques and devices, J. Endod., 35, 791, 10.1016/j.joen.2009.03.010 Paixão, 2022, Efficacy of sonic and ultrasonic activation during endodontic treatment: A meta-analysis of in vitro studies, Acta Odontol. Scand., 80, 588, 10.1080/00016357.2022.2061591 Macedo, 2014, Cavitation measurement during sonic and ultrasonic activated irrigation, J. Endod., 40, 580, 10.1016/j.joen.2013.09.018 Niu, 2014, Effects of different sonic activation protocols on debridement efficacy in teeth with single-rooted canals, J. Dent., 42, 1001, 10.1016/j.jdent.2014.05.007 Haupt, 2020, Effectiveness of different activated irrigation techniques on debris and smear layer removal from curved root canals: A SEM evaluation, Aust. Endod. J., 46, 40, 10.1111/aej.12342 Zeng, 2021, In vitro evaluation of efficacy of two endodontic sonic-powered irrigant agitation systems in killing single-species intracanal biofilms, J. Dent., 115, 10.1016/j.jdent.2021.103859 Hoedke, 2021, Reduction of dual-species biofilm after sonic- or ultrasonic-activated irrigation protocols: A laboratory study, Int. Endod. J., 54, 2219, 10.1111/iej.13618 Al-Zuhair, 2023, Antimicrobial effects of agitational irrigation on single- and multispecies biofilms in dentin canals, Odontology, 111, 49, 10.1007/s10266-022-00719-3 Kermeoglu, 2018, Determination of the minimum inhibitory concentrations of alexidine and chlorhexidine against Enterococcus faecalis and Candida albicans: An in vitro study, Cureus, 10, e2221 Rôças, 2011, Comparison of the in vivo antimicrobial effectiveness of sodium hypochlorite and chlorhexidine used as root canal irrigants: A molecular microbiology study, J. Endod., 37, 143, 10.1016/j.joen.2010.11.006 Zeng, 2018, Antibacterial efficacy of an endodontic sonic-powered irrigation system: An in vitro study, J. Dent., 75, 105, 10.1016/j.jdent.2018.06.003 Cheung, 2021, Clinical efficacy of activated irrigation in endodontics: A focused review, Restor. Dent. Endod., 46, e10, 10.5395/rde.2021.46.e10 Cai, 2023, Advances in the role of sodium hypochlorite irrigant in chemical preparation of root canal treatment, Biomed. Res. Int., 2023, 10.1155/2023/8858283 Mankeliya, 2021, A comparative evaluation of smear layer removal by using four different irrigation solutions like root canal irrigants: An in vitro SEM study, J. Contemp. Dent. Pract., 22, 527, 10.5005/jp-journals-10024-3064 Zehnder, 2006, Root canal irrigants, J. Endod., 32, 389, 10.1016/j.joen.2005.09.014 Cullen, 2015, The effect of 8.25% sodium hypochlorite on dental pulp dissolution and dentin flexural strength and modulus, J. Endod., 41, 920, 10.1016/j.joen.2015.01.028 Petridis, 2019, Chemical efficacy of several NaOCl concentrations on biofilms of different architecture: New insights on NaOCl working mechanisms, Int. Endod. J., 52, 1773, 10.1111/iej.13198 Siqueira Jr, 2000, Chemomechanical reduction of the bacterial population in the root canal after instrumentation and irrigation with 1%, 2.5%, and 5.25% sodium hypochlorite, J. Endod., 26, 331, 10.1097/00004770-200006000-00006 Petridis, 2019, Factors affecting the chemical efficacy of 2% sodium hypochlorite against oral steady-state dual-species biofilms: Exposure time and volume application, Int Endod J, 52, 1182, 10.1111/iej.13102 Portenier, 2002, Inactivation of the antibacterial activity of iodine potassium iodide and chlorhexidine digluconate against Enterococcus faecalis by dentin, dentin matrix, type-I collagen, and heat-killed microbial whole cells, J. Endod., 28, 634, 10.1097/00004770-200209000-00002 Haapasalo, 2007, Effects of dentin on the antimicrobial properties of endodontic medicaments, J. Endod., 33, 917, 10.1016/j.joen.2007.04.008 Tong, 2019, The effect of human serum and dentin powder alone or in combination on the antibacterial activity of sodium hypochlorite against Enterococcus faecalis, Arch. Oral Biol., 97, 72, 10.1016/j.archoralbio.2018.10.008 Pereira, 2021, Chemical and mechanical influence of root canal irrigation on biofilm removal from lateral morphological features of simulated root canals, dentine discs and dentinal tubules, Int. Endod. J., 54, 112, 10.1111/iej.13399 Wang, 2012, Effectiveness of endodontic disinfecting solutions against young and old Enterococcus faecalis biofilms in dentin canals, J. Endod., 38, 1376, 10.1016/j.joen.2012.06.035 Yang, 2016, Evaluation of the susceptibility of multispecies biofilms in dentinal tubules to disinfecting solutions, J. Endod., 42, 1246, 10.1016/j.joen.2016.05.011 Dioguardi, 2018, Endodontic irrigants: Different methods to improve efficacy and related problems, Eur. J. Dent., 12, 459, 10.4103/ejd.ejd_56_18 Perfetto, 2010, Amine-reactive dyes for dead cell discrimination in fixed samples, Curr. Protoc. Cytom. Chapter, 9 Chivatxaranukul, 2008, Dentinal tubule invasion and adherence by Enterococcus faecalis, Int. Endod. J., 41, 873, 10.1111/j.1365-2591.2008.01445.x Retamozo, 2010, Minimum contact time and concentration of sodium hypochlorite required to eliminate Enterococcus faecalis, J. Endod., 36, 520, 10.1016/j.joen.2009.12.005 Portenier, 2005, The susceptibility of starved, stationary phase, and growing cells of Enterococcus faecalis to endodontic medicaments, J. Endod., 31, 380, 10.1097/01.don.0000145421.84121.c8 Verma, 2019, Effect of different concentrations of sodium hypochlorite on outcome of primary root canal treatment: A randomized controlled trial, J. Endod., 45, 357, 10.1016/j.joen.2019.01.003 Liu, 2022, Evaluation of sonic, ultrasonic, and laser irrigation activation systems to eliminate bacteria from the dentinal tubules of the root canal system, J. Appl. Oral Sci., 30, 10.1590/1678-7757-2022-0199 Rödig, 2018, Comparison of the antibacterial efficacy of sonic- and two ultrasonic-activated irrigation techniques in reducing intracanal Enterococcus faecalis populations, Quintessence Int, 49, 689 Forghani, 2017, Effect of a passive sonic irrigation system on elimination of Enterococcus faecalis from root canal systems of primary teeth, using different concentrations of sodium hypochlorite: An in vitro evaluation, J. Dent. Res. Dent. Clin. Dent. Prospects, 11, 177, 10.15171/joddd.2017.032 Wong, 2021, Microbiological aspects of root canal infections and disinfection strategies: An update review on the current knowledge and challenges, Front. Oral Health, 2, 10.3389/froh.2021.672887 Virdee, 2020, The influence of irrigant activation, concentration and contact time on sodium hypochlorite penetration into root dentine: An ex vivo experiment, Int. Endod. J., 53, 986, 10.1111/iej.13290 KarataŞ, 2021, Effect of final irrigation with sodium hypochlorite at different temperatures on postoperative pain level and antibacterial activity: A randomized controlled clinical study, J. Appl. Oral Sci., 29, 10.1590/1678-7757-2020-0502 Gu, 2017, Primum non nocere - The effects of sodium hypochlorite on dentin as used in endodontics, Acta Biomater, 61, 144, 10.1016/j.actbio.2017.08.008 Mai, 2010, Differential aggressiveness of ethylenediamine tetraacetic acid in causing canal wall erosion in the presence of sodium hypochlorite, J. Dent., 38, 201, 10.1016/j.jdent.2009.10.004 Sim, 2001, Effect of sodium hypochlorite on mechanical properties of dentine and tooth surface strain, Int. Endod. J., 34, 120, 10.1046/j.1365-2591.2001.00357.x Slutzky-Goldberg, 2004, Effect of sodium hypochlorite on dentin microhardness, J. Endod., 30, 880, 10.1097/01.DON.0000128748.05148.1E Rath, 2020, The effect of root canal irrigants on dentin: A focused review, Restor. Dent. Endod., 45, e39, 10.5395/rde.2020.45.e39 Xu, 2022, Effects of concentration of sodium hypochlorite as an endodontic irrigant on the mechanical and structural properties of root dentine: A laboratory study, Int. Endod. J., 55, 1091, 10.1111/iej.13800 Souza, 2019, Volume and/or time of NaOCl influences the fracture strength of endodontically treated bovine teeth, Braz. Dent. J., 30, 31, 10.1590/0103-6440201902076