Consideraciones sobre la filosofía "no-post" en dientes tratados endodónticamente: Revisión de la literatura
DOI:
https://doi.org/10.33448/rsd-v12i7.37863Palabras clave:
Resinas compuestas; Diente no vital; Restauración dental permanente.Resumen
La restauración de dientes tratados endodónticamente con gran pérdida de estructura dental es un verdadero reto para la odontología, ya que requiere el uso de materiales capaces de ampliar el soporte coronal y evitar la propagación de las fracturas. Recientemente, ha surgido un cambio en el uso de los retenedores intrarradiculares, creando un nuevo concepto "sin poste", basado en el uso de compuestos de resina reforzados por fibras de vidrio. El objetivo de esta revisión es explorar en la literatura si el material, representado por EverX Posterior (GC), presenta alguna ventaja de uso en comparación con otros materiales ya descritos para la restauración de dientes tratados endodónticamente. La búsqueda se realizó en las principales bases de datos, PubMed, Scopus y Web of Science, dando como resultado 163 artículos. Tras excluir los duplicados y la lectura completa, se incluyeron en la versión final del análisis 14 artículos in vitro y 1 artículo clínico. En cuanto a los datos encontrados, el nuevo biomaterial mostró una mayor resistencia a la fractura en los dientes posteriores en la mayoría de los estudios evaluados, excepto en comparación con las restauraciones indirectas, especialmente del tipo endocorona. En comparación con las restauraciones directas, EverX Posterior, en "bicapa", funcionó como un refuerzo para la distribución de fuerzas y con propiedades mejoradas en presencia de ranuras retentivas. Para los retenedores intrarradiculares, el nuevo biomaterial también garantizó un mejor comportamiento mecánico, similar a la comparación realizada para el polietileno y las fibras de vidrio. Por lo tanto, deberían realizarse nuevos estudios clínicos para confirmar las consideraciones sobre esta filosofía.
Citas
Abouelleil, H., Pradelle, N., Villat, C., Attik, N., Colon, P., & Grosgogeat, B. (2015). Comparison of mechanical properties of a new fiber reinforced composite and bulk filling composites. Restorative dentistry & endodontics, 40(4), 262–270. https://doi.org/10.5395/rde.2015.40.4.262
Alshiddi, I. F., & Aljinbaz, A. (2016). Fracture resistance of endodontically treated teeth restored with indirect composite inlay and onlay restorations - An in vitro study. The Saudi dental journal, 28(1), 49–55. https://doi.org/10.1016/j.sdentj.2015.09.001
Altier, M., Erol, F., Yildirim, G., & Dalkilic, E. E. (2018). Fracture resistance and failure modes of lithium disilicate or composite endocrowns. Nigerian journal of clinical practice, 21(7), 821–826. https://doi.org/10.4103/njcp.njcp_175_17
Atalay, C., Yazici, A. R., Horuztepe, A., Nagas, E., Ertan, A., & Ozgunaltay, G. (2016). Fracture Resistance of Endodontically Treated Teeth Restored With Bulk Fill, Bulk Fill Flowable, Fiber-reinforced, and Conventional Resin Composite. Operative dentistry, 41(5), E131–E140. https://doi.org/10.2341/15-320-L
Ayna, B., Celenk, S., Atakul, F., & Uysal, E. (2009). Three-year clinical evaluation of endodontically treated anterior teeth restored with a polyethylene fibre-reinforced composite. Australian dental journal, 54(2), 136–140. https://doi.org/10.1111/j.1834-7819.2009.01106.x
Baraba, A., Cimic, S., Basso, M., Ionescu, A. C., Brambilla, E., & Miletić, I. (2021). Microtensile Bond Strength of Fiber-Reinforced and Particulate Filler Composite to Coronal and Pulp Chamber Floor Dentin. Materials (Basel, Switzerland), 14(9), 2400. https://doi.org/10.3390/ma14092400
Behr, M., Rosentritt, M., Latzel, D., & Handel, G. (2003). Fracture resistance of fiber-reinforced vs. non-fiber-reinforced composite molar crowns. Clinical oral investigations, 7(3), 135–139. https://doi.org/10.1007/s00784-003-0211-x
Belli, S., Cobankara, F. K., Eraslan, O., Eskitascioglu, G., & Karbhari, V. (2006). The effect of fiber insertion on fracture resistance of endodontically treated molars with MOD cavity and reattached fractured lingual cusps. Journal of biomedical materials research. Part B, Applied biomaterials, 79(1), 35–41. https://doi.org/10.1002/jbm.b.30508
Belli, S., Erdemir, A., Ozcopur, M., & Eskitascioglu, G. (2005). The effect of fibre insertion on fracture resistance of root filled molar teeth with MOD preparations restored with composite. International endodontic journal, 38(2), 73–80. https://doi.org/10.1111/j.1365-2591.2004.00892.x
Belli, S., Erdemir, A., & Yildirim, C. (2006). Reinforcement effect of polyethylene fibre in root-filled teeth: comparison of two restoration techniques. International endodontic journal, 39(2), 136–142. https://doi.org/10.1111/j.1365-2591.2006.01057.x
Bijelic-Donova, J., Keulemans, F., Vallittu, P. K., & Lassila, L. (2020). Direct bilayered biomimetic composite restoration: The effect of a cusp-supporting short fiber-reinforced base design on the chewing fracture resistance and failure mode of molars with or without endodontic treatment. Journal of the mechanical behavior of biomedical materials, 103, 103554. https://doi.org/10.1016/j.jmbbm.2019.103554
Carvalho, M. A., Lazari, P. C., Gresnigt, M., Del Bel Cury, A. A., & Magne, P. (2018). Current options concerning the endodontically-treated teeth restoration with the adhesive approach. Brazilian oral research, 32(suppl 1), e74. https://doi.org/10.1590/1807-3107bor-2018.vol32.0074
Cimpean, S. I., Pop-Ciutrila, I., Buduru, S., Pavel, L. L., Florea, D. F., Delean, A. G., Moldovan, M., Dudescu, M. C., Berbece, S., Voinescu, D. C., Beznea, A., Begucioiu, M. & Stefanescu, V. (2020). Assessing fracture resistance of non vital teeth using two different composite systems: short-fiber-reinforced composite and glass fiber post with microfilled hybrid composite. Materiale Plastice, 57(4), 286-296.
Deliperi, S., Alleman, D., & Rudo, D. (2017). Stress-reduced Direct Composites for the Restoration of Structurally Compromised Teeth: Fiber Design According to the "Wallpapering" Technique. Operative dentistry, 42(3), 233–243. https://doi.org/10.2341/15-289-T
Eapen, A. M., Amirtharaj, L. V., Sanjeev, K., & Mahalaxmi, S. (2017). Fracture Resistance of Endodontically Treated Teeth Restored with 2 Different Fiber-reinforced Composite and 2 Conventional Composite Resin Core Buildup Materials: An In Vitro Study. Journal of endodontics, 43(9), 1499–1504. https://doi.org/10.1016/j.joen.2017.03.031
Eskitaşcioğlu, G., Belli, S., & Kalkan, M. (2002). Evaluation of two post core systems using two different methods (fracture strength test and a finite elemental stress analysis). Journal of endodontics, 28(9), 629–633. https://doi.org/10.1097/00004770-200209000-00001
Ferracane, J. L., & Greener, E. H. (1986). The effect of resin formulation on the degree of conversion and mechanical properties of dental restorative resins. Journal of biomedical materials research, 20(1), 121–131. https://doi.org/10.1002/jbm.820200111
Figueiredo, F. E., Martins-Filho, P. R., & Faria-E-Silva, A. L. (2015). Do metal post-retained restorations result in more root fractures than fiber post-retained restorations? A systematic review and meta-analysis. Journal of endodontics, 41(3), 309–316. https://doi.org/10.1016/j.joen.2014.10.006
Frankenberger, R., Winter, J., Dudek, M. C., Naumann, M., Amend, S., Braun, A., Krämer, N., & Roggendorf, M. J. (2021). Post-Fatigue Fracture and Marginal Behavior of Endodontically Treated Teeth: Partial Crown vs. Full Crown vs. Endocrown vs. Fiber-Reinforced Resin Composite. Materials (Basel, Switzerland), 14(24), 7733. https://doi.org/10.3390/ma14247733
Fuss, Z., Lustig, J., & Tamse, A. (1999). Prevalence of vertical root fractures in extracted endodontically treated teeth. International endodontic journal, 32(4), 283–286. https://doi.org/10.1046/j.1365-2591.1999.00208.x
Gaintantzopoulou, M. D., Farmakis, E. T., & Eliades, G. C. (2018). Effect of Load Cycling on the Fracture Strength/Mode of Teeth Restored with FRC Posts or a FRC Liner and a Resin Composite. BioMed research international, 2018, 9054301. https://doi.org/10.1155/2018/9054301
Garlapati, T. G., Krithikadatta, J., & Natanasabapathy, V. (2017). Fracture resistance of endodontically treated teeth restored with short fiber composite used as a core material-An in vitro study. Journal of prosthodontic research, 61(4), 464–470. https://doi.org/10.1016/j.jpor.2017.02.001
Garoushi, S., Gargoum, A., Vallittu, P. K., & Lassila, L. (2018). Short fiber-reinforced composite restorations: A review of the current literature. Journal of investigative and clinical dentistry, 9(3), e12330. https://doi.org/10.1111/jicd.12330
Garoushi, S., Vallittu, P. K., & Lassila, L. (2017). Mechanical Properties and Wear of Five Commercial Fibre-Reinforced Filling Materials. The Chinese journal of dental research: the official journal of the Scientific Section of the Chinese Stomatological Association (CSA), 20(3), 137–143. https://doi.org/10.3290/j.cjdr.a38768
Garoushi, S., Vallittu, P. K., & Lassila, L. V. (2007). Short glass fiber reinforced restorative composite resin with semi-inter penetrating polymer network matrix. Dental materials: official publication of the Academy of Dental Materials, 23(11), 1356–1362. https://doi.org/10.1016/j.dental.2006.11.017
Gordan, V. V., Shen, C., Riley, J., 3rd, & Mjör, I. A. (2006). Two-year clinical evaluation of repair versus replacement of composite restorations. Journal of esthetic and restorative dentistry: official publication of the American Academy of Esthetic Dentistry ... [et al.], 18(3), 144–154. https://doi.org/10.1111/j.1708-8240.2006.00007.x
Kalburge, V., Yakub, S. S., Kalburge, J., Hiremath, H., & Chandurkar, A. (2013). A comparative evaluation of fracture resistance of endodontically treated teeth, with variable marginal ridge thicknesses, restored with composite resin and composite resin reinforced with Ribbond: an in vitro study. Indian journal of dental research : official publication of Indian Society for Dental Research, 24(2), 193–198. https://doi.org/10.4103/0970-9290.116676
Kassis, C., Khoury, P., Mehanna, C. Z., Baba, N. Z., Bou Chebel, F., Daou, M., & Hardan, L. (2021). Effect of Inlays, Onlays and Endocrown Cavity Design Preparation on Fracture Resistance and Fracture Mode of Endodontically Treated Teeth: An In Vitro Study. Journal of prosthodontics: official journal of the American College of Prosthodontists, 30(7), 625–631. https://doi.org/10.1111/jopr.13294
Kaur, B., Gupta, S., Grover, R., Sadana, G., Gupta, T., & Mehra, M. (2021). Comparative Evaluation of Fracture Resistance of Endodontically Treated Teeth Restored with Different Core Build-up Materials: An In VitroStudy. International journal of clinical pediatric dentistry, 14(1), 51–58. https://doi.org/10.5005/jp-journals-10005-1901
Keulemans, F., Garoush, S. & Lassila, L. (2017). Fillings and core build-ups (Book Chapter). In: Vallittu P, Özcan M, eds. A Clinical Guide to Principles of Fibre Reinforced Composites (FRCs) in Dentistry. Duxford: Woodhead Publishing, 131-163.
Kijsamanmith, K., Timpawat, S., Harnirattisai, C., & Messer, H. H. (2002). Micro-tensile bond strengths of bonding agents to pulpal floor dentine. International endodontic journal, 35(10), 833–839. https://doi.org/10.1046/j.1365-2591.2002.00581.x
Kumar, A., & Sarthak, S. (2018). In vitro evaluation of fracture resistance of endodontically treated teeth restored with bulk-fill, bulk-fill flowable, fiber-reinforced, and conventional resin composite. J Oper Dent Endod , 3(1):12–17.
Lohbauer, U., Nikolaenko, S. A., Petschelt, A., & Frankenberger, R. (2008). Resin tags do not contribute to dentin adhesion in self-etching adhesives. The journal of adhesive dentistry, 10(2), 97–103.
Mena-Álvares, J., Agustín-Panadero, R. & Zubizarreta-Macho, A. (2020). Effect of Fiber-Reinforced Composite and Elastic Post on the Fracture Resistance of Premolars with Root Canal Treatment—An In Vitro Pilot Study. Appl. Sci, 10, 7616.
Mortazavi, V., Fathi, M., Katiraei, N., Shahnaseri, S., Badrian, H., & Khalighinejad, N. (2012). Fracture resistance of structurally compromised and normal endodontically treated teeth restored with different post systems: An in vitro study. Dental research journal, 9(2), 185–191. https://doi.org/10.4103/1735-3327.95234
Nahata, M. C. (2008). Tips for writing and publishing an article. The Annals of pharmacotherapy, 42(2), 273–277. https://doi.org/10.1345/aph.1K616
Nothdurft, F. P., Seidel, E., Gebhart, F., Naumann, M., Motter, P. J., & Pospiech, P. R. (2008). The fracture behavior of premolar teeth with class II cavities restored by both direct composite restorations and endodontic post systems. Journal of dentistry, 36(6), 444–449. https://doi.org/10.1016/j.jdent.2008.03.004
Ozsevik, A. S., Yildirim, C., Aydin, U., Culha, E., & Surmelioglu, D. (2016). Effect of fibre-reinforced composite on the fracture resistance of endodontically treated teeth. Australian endodontic journal : the journal of the Australian Society of Endodontology Inc, 42(2), 82–87. https://doi.org/10.1111/aej.12136
Pashley, D. H., Tay, F. R., Breschi, L., Tjäderhane, L., Carvalho, R. M., Carrilho, M., & Tezvergil-Mutluay, A. (2011). State of the art etch-and-rinse adhesives. Dental materials : official publication of the Academy of Dental Materials, 27(1), 1–16. https://doi.org/10.1016/j.dental.2010.10.016
Rocca, G. T., Saratti, C. M., Cattani-Lorente, M., Feilzer, A. J., Scherrer, S., & Krejci, I. (2015). The effect of a fiber reinforced cavity configuration on load bearing capacity and failure mode of endodontically treated molars restored with CAD/CAM resin composite overlay restorations. Journal of dentistry, 43(9), 1106–1115. https://doi.org/10.1016/j.jdent.2015.06.012
Saker, S., & Özcan, M. (2015). Retentive strength of fiber-reinforced composite posts with composite resin cores: Effect of remaining coronal structure and root canal dentin conditioning protocols. The Journal of prosthetic dentistry, 114(6), 856–861. https://doi.org/10.1016/j.prosdent.2015.06.015
Scotti, N., Michelotto Tempesta, R., Pasqualini, D., Baldi, A., Vergano, E. A., Baldissara, P., Alovisi, M., & Comba, A. (2020). 3D Interfacial Gap and Fracture Resistance of Endodontically Treated Premolars Restored with Fiber-reinforced Composites. The journal of adhesive dentistry, 22(2), 215–224. https://doi.org/10.3290/j.jad.a44286
Tanner, J., Tolvanen, M., Garoushi, S., & Säilynoja, E. (2018). Clinical Evaluation of Fiber-Reinforced Composite Restorations in Posterior Teeth - Results of 2.5 Year Follow-up. The open dentistry journal, 12, 476–485. https://doi.org/10.2174/1874210601812010476
Tekçe, N., Pala, K., Tuncer, S., Demirci, M., & Serim, M. E. (2017). Influence of polymerisation method and type of fibre on fracture strength of endodontically treated teeth. Australian endodontic journal : the journal of the Australian Society of Endodontology Inc, 43(3), 115–122. https://doi.org/10.1111/aej.12187
Valizadeh, S., Ranjbar Omrani, L., Deliperi, S., & Sadeghi Mahounak, F. (2020). Restoration of a Nonvital Tooth with Fiber Reinforce Composite (Wallpapering Technique). Case reports in dentistry, 2020, 9619787. https://doi.org/10.1155/2020/9619787
Vallittu P. K. (1998). The effect of glass fiber reinforcement on the fracture resistance of a provisional fixed partial denture. The Journal of prosthetic dentistry, 79(2), 125–130. https://doi.org/10.1016/s0022-3913(98)70204-5
Vallittu, P. K., Lassila, V. P., & Lappalainen, R. (1994). Transverse strength and fatigue of denture acrylic-glass fiber composite. Dental materials : official publication of the Academy of Dental Materials, 10(2), 116–121. https://doi.org/10.1016/0109-5641(94)90051-5
Yasa, B., Arslan, H., Yasa, E., Akcay, M., & Hatirli, H. (2016). Effect of novel restorative materials and retention slots on fracture resistance of endodontically-treated teeth. Acta odontológica Scandinavica, 74(2), 96–102. https://doi.org/10.3109/00016357.2015.104691
Descargas
Publicado
Cómo citar
Número
Sección
Licencia
Derechos de autor 2023 Marcella Santos Januzzi; Maria Isabela Lopes Gandolfo; José Vitor Quinelli Mazaro; Ricardo Alexandre Zavanelli; Adriana Cristina Zavanelli
Esta obra está bajo una licencia internacional Creative Commons Atribución 4.0.
Los autores que publican en esta revista concuerdan con los siguientes términos:
1) Los autores mantienen los derechos de autor y conceden a la revista el derecho de primera publicación, con el trabajo simultáneamente licenciado bajo la Licencia Creative Commons Attribution que permite el compartir el trabajo con reconocimiento de la autoría y publicación inicial en esta revista.
2) Los autores tienen autorización para asumir contratos adicionales por separado, para distribución no exclusiva de la versión del trabajo publicada en esta revista (por ejemplo, publicar en repositorio institucional o como capítulo de libro), con reconocimiento de autoría y publicación inicial en esta revista.
3) Los autores tienen permiso y son estimulados a publicar y distribuir su trabajo en línea (por ejemplo, en repositorios institucionales o en su página personal) a cualquier punto antes o durante el proceso editorial, ya que esto puede generar cambios productivos, así como aumentar el impacto y la cita del trabajo publicado.