194
Views
4
CrossRef citations to date
0
Altmetric
Original Research

Egyptian Propolis-Loaded Nanoparticles as a Root Canal Nanosealer: Sealing Ability and in vivo Biocompatibility

ORCID Icon, , ORCID Icon, & ORCID Icon
Pages 5265-5277 | Published online: 27 Jul 2020

References

  • Ørstavik D. Obturation of root canals In: Chugal N, Lin LM editors. Endodontic Prognosis: Clinical Guide for Optimal Treatment Outcome. Springer International Publishing; 2017:141–159. doi:10.1007/978-3-319-42412-5_9.
  • Adl AR, Sobhnamayan F, Shojaee NS, Azizi S. A comparison of push-out bond strength of two endodontic sealers to root canal dentin: an in vitro study. J Dent Biomater. 2016;3(1):199–204.
  • Plotino G, Venturi M, Grande NM. Complications due to root canal filling procedures In: Jain P editor. Common Complications in Endodontics: Prevention and Management. Springer International Publishing; 2018:101–146. doi:10.1007/978-3-319-60997-3_6.
  • Bodrumlu E, Tunga U. Coronal sealing ability of a new root canal filling material. JCDA. 2007;73(7):623–623c.17868513
  • Timpawat S, Amornchat C, Trisuwan W. Bacterial coronal leakage after obturation with three root canal sealers. J Endod. 2001;27(1):36–39. doi:10.1097/00004770-200101000-0001111487161
  • Lottanti S, Tauböck TT, Zehnder M. Shrinkage of backfill gutta-percha upon cooling. J Endod. 2014;40(5):721–724. doi:10.1016/j.joen.2013.09.04324767571
  • Nabeel M, Tawfik HM, Abu-Seida AMA, Elgendy AA. Sealing ability of Biodentine versus ProRoot mineral trioxide aggregate as root-end filling materials. Saudi Dent J. 2019;31(1):16–22. doi:10.1016/j.sdentj.2018.08.00130723363
  • Fan W, Wu D, Tay FR, Ma T, Wu Y, Fan B. Effects of adsorbed and templated nanosilver in mesoporous calcium-silicate nanoparticles on inhibition of bacteria colonization of dentin. Int J Nanomedicine. 2014;9:5217–5230. doi:10.2147/IJN.S7314425419127
  • Ghanaati S, Willershausen I, Barbeck M, et al. Tissue reaction to sealing materials: different view at biocompatibility. Eur J Med Res. 2010;15(11):483. doi:10.1186/2047-783X-15-11-48321159573
  • Mohammadi Z, Karim Soltani M, Shalavi S, Yazdizadeh M, Jafarzadeh M. Calcium hydroxide-based root canal sealers: an updated literature review. Compend Contin Educ Dent Jamesburg NJ. 2014;35(5):334–339.
  • Royer K, Liu XJ, Zhu Q, Malmstrom H, Ren Y-F. Apical and root canal space sealing abilities of resin and glass ionomer-based root canal obturation systems. Chin J Dent Res off J Sci Sect Chin Stomatol Assoc CSA. 2013;16(1):47–53.
  • Silva EJNL, Accorsi-Mendonça T, Almeida JFA, Ferraz CCR, Gomes BPFA, Zaia AA. Evaluation of cytotoxicity and up-regulation of gelatinases in human fibroblast cells by four root canal sealers: sealers cytotoxic and up-regulation of gelatinases. Int Endod J. 2012;45(1):49–56. doi:10.1111/j.1365-2591.2011.01946.x21910744
  • Bruschi ML, Jones DS, Panzeri H, Gremião MPD, de Freitas O, Lara EHG. Semisolid systems containing propolis for the treatment of periodontal disease: in vitro release kinetics, syringeability, rheological, textural, and mucoadhesive properties. J Pharm Sci. 2007;96(8):2074–2089. doi:10.1002/jps.2084317301966
  • Bruschi ML, Rosseto HC, de Francisco LMB, et al. Nanostructured propolis as therapeutic systems with antimicrobial activity In: Grumezescu AM editor. Nano- and Microscale Drug Delivery Systems. Elsevier; 2017:377–391. doi:10.1016/B978-0-323-52727-9.00020-0.
  • Kuropatnicki AK, Szliszka E, Kłósek M, Król W. The beginnings of modern research on propolis in Poland. Evid Based Complement Alternat Med. 2013;2013:1–6. doi:10.1155/2013/983974
  • Abdel Raheem IA, Abdul Razek A, Elgendy AA, Saleh NM, Shaaban MI, Abd El-Hady FK. Design, evaluation and antimicrobial activity of egyptian propolis-loaded nanoparticles: intrinsic role as a novel and naturally based root canal nanosealer. Int J Nanomedicine. 2019;14:8379–8398. doi:10.2147/IJN.S21957731695372
  • Shrestha A, Fong S-W, Khoo B-C, Kishen A. Delivery of antibacterial nanoparticles into dentinal tubules using high-intensity focused ultrasound. J Endod. 2009;35(7):1028–1033. doi:10.1016/j.joen.2009.04.01519567328
  • Bird DC, Komabayashi T, Guo L, Opperman LA, Spears R. In vitro evaluation of dentinal tubule penetration and biomineralization ability of a new root-end filling material. J Endod. 2012;38(8):1093–1096. doi:10.1016/j.joen.2012.04.01722794212
  • Komabayashi T, Nonomura G, Watanabe LG, Marshall Jr GW, Marshall SJ. Dentin tubule numerical density variations below the CEJ. J Dent. 2008;36(11):953–958. doi:10.1016/j.jdent.2008.08.00218786756
  • Seyedkavoosi S, Sevostianov I. Multiscale micromechanical modeling of the elastic properties of dentin. J Mech Behav Biomed Mater. 2019;100:103397. doi:10.1016/j.jmbbm.2019.10339731442944
  • Ibrahim AIO, Moodley DS, Petrik L, Patel N. Use of antibacterial nanoparticles in Endodontics. SADJ. 2017;72(3):105–112.
  • Cheng L, Weir MD, Xu HHK, et al. Antibacterial amorphous calcium phosphate nanocomposites with a quaternary ammonium dimethacrylate and silver nanoparticles. Dent Mater. 2012;28(5):561–572. doi:10.1016/j.dental.2012.01.00522305716
  • Scribante A, Massironi S, Pieraccini G, et al. Effects of nanofillers on mechanical properties of fiber-reinforced composites polymerized with light-curing and additional postcuring. J Appl Biomater Funct Mater. 2015;13(3):296–299. doi:10.5301/jabfm.5000226
  • Cheng L, Zhang K, Melo MAS, Weir MD, Zhou X, Xu HHK. Anti-biofilm dentin primer with quaternary ammonium and silver nanoparticles. J Dent Res. 2012;91(6):598–604. doi:10.1177/002203451244412822492276
  • Scribante A, Dermenaki Farahani MR, Marino G, et al. Biomimetic effect of nano-hydroxyapatite in demineralized enamel before orthodontic bonding of brackets and attachments: visual, adhesion strength, and hardness in in vitro tests. Biomed Res Int. 2020;2020:1–9. doi:10.1155/2020/6747498
  • Salas-Orozco M, Niño-Martínez N, Martínez-Castañón G-A, Méndez FT, Jasso MEC, Ruiz F. Mechanisms of resistance to silver nanoparticles in endodontic bacteria: a literature review. J Nanomater. 2019;2019:1–11. doi:10.1155/2019/7630316
  • Heid S, Stoessel PR, Tauböck TT, Stark WJ, Zehnder M, Mohn D. Incorporation of particulate bioactive glasses into a dental root canal sealer. Biomed Glas. 2016;2:29–37. doi:10.1515/bglass-2016-0004
  • Loyola-Rodríguez JP, Torres-Méndez F, Espinosa-Cristobal LF, et al. Antimicrobial activity of endodontic sealers and medications containing chitosan and silver nanoparticles against Enterococcus faecalis. J Appl Biomater Funct Mater. 2019;17(3):1–9. doi:10.1177/2280800019851771
  • Toledano M, Osorio E, Aguilera FS, et al. Polymeric nanoparticles for endodontic therapy. J Mech Behav Biomed Mater. 2020;103:1–51. doi:10.1016/j.jmbbm.2019.103606
  • Sinhal TM, Shah RRP, Jais PS, et al. An in vitro comparison and evaluation of sealing ability of newly introduced C-point system, cold lateral condensation, and thermoplasticized gutta-percha obturating technique: a dye extraction study. Contemp Clin Dent. 2018;9(2):164–169. doi:10.4103/ccd.ccd_722_1729875554
  • Kakoli P, Nandakumar R, Romberg E, Arola D, Fouad AF. The effect of age on bacterial penetration of radicular dentin. J Endod. 2009;35(1):78–81. doi:10.1016/j.joen.2008.10.00419084130
  • Atar M, Körperich EJ. Systemic disorders and their influence on the development of dental hard tissues: a literature review. J Dent. 2010;38(4):296–306. doi:10.1016/j.jdent.2009.12.00120004698
  • Kataia EM, Kataia MM. Dye extraction method evaluation of the sealing ability of three types of endodontic sealers. Egypt Dent J. 2016;62:251–256. doi:10.21608/edj.2016.92668
  • Tandan M, Hegde MN, Hegde P. Effect of four different intracanal medicaments on the apical seal of the root canal system: a dye extraction study. Indian J Dent Res. 2014;25(5):607–612. doi:10.4103/0970-9290.14710425511060
  • Meneses IHC, De, Sampaio GA, de M, et al. In vivo biocompatibility, mechanical, and antibacterial properties of cements modified with propolis in different concentrations. Eur J Dent. 2020;14(01):77–84. doi:10.1055/s-0040-170225532168534
  • Minotti PG, Ordinola-Zapata R, Midena RZ, et al. Rat subcutaneous tissue response to calcium silicate containing different arsenic concentrations. J Appl Oral Sci. 2015;23(1):42–48. doi:10.1590/1678-77572013052325075671
  • Grecca FS, Kopper PMP, Santos Dos RB, et al. Biocompatibility of RealSeal, its primer and AH plus implanted in subcutaneous connective tissue of rats. J Appl Oral Sci. 2011;19(1):52–56. doi:10.1590/S1678-7757201100010001121437470
  • Bancroft JD, ed. Theory and Practice of Histological Techniques. Elsevier Health Sciences; 2008.
  • Salem AS, Saleh ARM, Elmasmari HAA. In vitro assessment of apical leakage of bioceramic endodontic sealer with two obturation techniques. Open Dent J. 2018;12(1):1162–1168. doi:10.2174/1874210601812011162
  • Raghuwanshi S, Jain P, Patni PM, Pandey SH, Hiremath H, Baghel S. Dentinal adaptation of warm thermoplastic obturating material and cold thermoplastic obturating material: an in vitro study. Contemp Clin Dent. 2019;10(1):64–68. doi:10.4103/ccd.ccd_312_1832015644
  • Reddy NV, Srujana P, Daneswari V, Konyala HR, Mareddy AR, Mohammad N. Sealing ability of MTA vs Portland cement in the repair of furcal perforations of primary molars: a dye extraction leakage model—an in vitro study. Int J Clin Pediatr Dent. 2019;12(2):83–87. doi:10.5005/jp-journals-10005-159731571776
  • Uysal İ. Comparison of apical microleakage of dual-curing resin cements with fluid-filtration and dye extraction techniques. Med Sci Monit. 2015;21:937–944. doi:10.12659/MSM.89274125824712
  • Camps J, Pashley D. Reliability of the dye penetration studies. J Endod. 2003;29(9):592–594. doi:10.1097/00004770-200309000-0001214503834
  • Guarín JR, Moreno-Pirajan JC, Giraldo L. Kinetic study of the bioadsorption of methylene blue on the surface of the biomass obtained from the algae D. Antarctica J Chem. 2018;2018:1–12. doi:10.1155/2018/2124845
  • Azar NG, Heidari M, Bahrami ZS, Shokri F. In vitro cytotoxicity of a new epoxy resin root canal sealer. J Endod. 2000;26(8):462–465. doi:10.1097/00004770-200008000-0000811199780
  • Christian Gomes Moura C, Cristina Cunha T, Oliveira Crema V, Dechichi P, Carlos Gabrielli Biffi J. A study on biocompatibility of three endodontic sealers: intensity and duration of tissue irritation. Iran Endod J. 2014;9(2):137–143.24688584
  • Silva‐Herzog D, Ramírez T, Mora J, et al. Preliminary study of the inflammatory response to subcutaneous implantation of three root canal sealers. Int Endod J. 2011;44(5):440–446. doi:10.1111/j.1365-2591.2011.01849.x21255048
  • Farhad AR, Hasheminia S, Razavi S, Feizi M. Histopathologic evaluation of subcutaneous tissue response to three endodontic sealers in rats. J Oral Sci. 2011;53(1):15–21. doi:10.2334/josnusd.53.1521467810
  • Chakrabarti S, Chattopadhyay P, Islam J, Ray S, Raju PS, Mazumder B. Aspects of nanomaterials in wound healing. Curr Drug Deliv. 2019;16(1):26–41. doi:10.2174/156720181566618091811013430227817
  • Sönmez NS, Sönmez E, Akçaboy C. Evaluation of biocompatibility of targis dentin and artglass by using subcutaneous implantation test. Indian J Dent Res. 2010;21(4):537–543. doi:10.4103/0970-9290.7421121187621
  • Batista RFC, Hidalgo MM, Hernandes L, et al. Microscopic analysis of subcutaneous reactions to endodontic sealer implants in rats. J Biomed Mater Res A. 2007;81A(1):171–177. doi:10.1002/jbm.a.30918
  • Silveira CMM, Pinto SCS, Zedebski R, de AM, Santos FA, Pilatti GL. Biocompatibility of four root canal sealers: a histopathological evaluation in rat subcutaneous connective tissue. Braz Dent J. 2011;22(1):21–27. doi:10.1590/S0103-6440201100010000321519643
  • Jolly M, Singh N, Rathore M, Tandon S, Sharma S. Propolis and commonly used intracanal irrigants. comparative evaluation of inflammatory potential. J Clin Pediatr Dent. 2013;37(4):373–376. doi:10.17796/jcpd.37.4.l4t31237p572378424046984
  • Al-Shaher A, Wallace J, Agarwal S, Bretz W, Baugh D. Effect of propolis on human fibroblasts from the pulp and periodontal ligament. J Endod. 2004;30(5):359–361. doi:10.1097/00004770-200405000-0001215107650
  • da Silva FB, de Almeida JM, de Sousa SMG. Natural medicaments in endodontics: a comparative study of the anti-inflammatory action. Braz Oral Res. 2004;18(2):174–179. doi:10.1590/S1806-8324200400020001515311323
  • Ramos IF, de AS, Biz MT, et al. Histopathological analysis of corticosteroid-antibiotic preparation and propolis paste formulation as intracanal medication after pulpectomy: an in vivo study. J Appl Oral Sci. 2012;20(1):50–56. doi:10.1590/S1678-7757201200010001022437678
  • Silici S, Kutluca S. Chemical composition and antibacterial activity of propolis collected by three different races of honeybees in the same region. J Ethnopharmacol. 2005;99(1):69–73. doi:10.1016/j.jep.2005.01.04615848022
  • Toreti VC, Sato HH, Pastore GM, Park YK. Recent progress of propolis for its biological and chemical compositions and its botanical origin. Evid Based Complement Alternat Med. 2013;2013:1–13. doi:10.1155/2013/697390
  • Elgendy A, Fayyad D. Cell viability and apoptotic changes of dental pulp stem cells treated with propolis, chitosan, and their nano counterparts. Tanta Dent J. 2017;14(4):198–207. doi:10.4103/tdj.tdj_27_17
  • Naryzhny SN. Proliferating cell nuclear antigen: a proteomics view. Cell Mol Life Sci. 2008;65(23):3789–3808. doi:10.1007/s00018-008-8305-x18726183
  • Strzalka W, Ziemienowicz A. Proliferating cell nuclear antigen (PCNA): a key factor in DNA replication and cell cycle regulation. Ann Bot. 2011;107(7):1127–1140. doi:10.1093/aob/mcq24321169293
  • Adan A, Kiraz Y, Baran Y. Cell proliferation and cytotoxicity assays. Curr Pharm Biotechnol. 2016;17(14):1213–1221. doi:10.2174/138920101766616080816051327604355
  • Salama HA, Ghorab M, Mahmoud AA, Abdel Hady M. PLGA nanoparticles as subconjunctival injection for management of glaucoma. AAPS PharmSciTech. 2017;18(7):2517–2528. doi:10.1208/s12249-017-0710-828224390
  • Cao Y, Mitchell G, Messina A, et al. The influence of architecture on degradation and tissue ingrowth into three-dimensional poly(lactic-co-glycolic acid) scaffolds in vitro and in vivo. Biomaterials. 2006;27(14):2854–2864. doi:10.1016/j.biomaterials.2005.12.01516426678
  • Mainardes RM, Gremião MPD, Evangelista RC. Thermoanalytical study of praziquantel-loaded PLGA nanoparticles. Rev Bras Ciênc Farm. 2006;42(4):523–530. doi:10.1590/S1516-93322006000400007
  • Colak KM, Keles A, Bayrak OF, Koseoglu M, Sahin F. Study of cytotoxicity of six root canal sealing dental materials. Mater Res Innov. 2009;13(4):415–420. doi:10.1179/143289109X12494867167161
  • Jung S, Sielker S, Hanisch MR, Libricht V, Schäfer E, Dammaschke T. Cytotoxic effects of four different root canal sealers on human osteoblasts. PLoS One. 2018;13(3):e0194467. doi:10.1371/journal.pone.019446729579090
  • Eldeniz AU, Mustafa K, Ørstavik D, Dahl JE. Cytotoxicity of new resin-, calcium hydroxide- and silicone-based root canal sealers on fibroblasts derived from human gingiva and L929 cell lines. Int Endod J. 2007;40(5):329–337. doi:10.1111/j.1365-2591.2007.01211.x17309743
  • Anumula L, Kumar S, Kumar VS, et al. An assessment of antibacterial activity of four endodontic sealers on Enterococcus faecalis by a direct contact test: an in vitro study. ISRN Dent. 2012;2012:1–5. doi:10.5402/2012/989781