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Current Perspectives of Bioceramic-Based Repair Materials in Endodontics

Year 2017, Volume: 8 Issue: 2, 1533 - 1542, 01.12.2017

Abstract

Bioceramic-based dentin replacement and repair materials are mainly calcium silicate and calcium phosphate compounds which exhibit biocompatibility due to their similarity with biological compounds, like hydroxyapatite and have the ability to induce a regenerative response in the organism. Mineral trioxide aggregate MTA is the first bioceramic material patented for endodontic applications such as pulpal regeneration and hard tissue repair. Despite the excellent sealing ability, biocompatibility, regenerative capabilities and antibacterial properties, MTA has some drawbacks such as poor handling properties and a long setting time. Therefore, new bioceramicbased root dentin replacement and repair materials are continually being developed to further improve their properties. The aim of this literature review is to present investigations regarding physical, mechanical and biological properties of recently developed bioceramic-based repair materials in endodontics

References

  • Vallet-Regi M. Evolution of bioceramics within the field of biomaterials. Comp R Chimie. 2010;13:174-85.
  • Swarup S, Rao A. Bioceramics in Pediatric Endodontics. 1st ed. Trivandrum: Lambert Academic Publishing; 2013. P. 53-68.
  • Parirokh M, Torabinejad M. Mineral trioxide aggregate: A comprehensive literature review- -part III: Clinical applications, drawbacks, and mechanism of action. J Endod. 2010;36:400– 13.
  • Bioaggregate internet ürün sayfası. http:// bioaggregate.com/product (Erişim tarihi 02. 2017).
  • Madfa AA, Al-Sanabani FA, Al-Qudami Al- Kudami NH. Endodontic repair filling materials: A review article. Br J Med Med Res. 2014;4:3059- 79.
  • Jang YE, Lee BN, Koh JT, Park YJ, Joo NE, Chang HS, Hwang IN, Oh WM, Hwang YC. Cytotoxicity and physical properties of tricalcium silicate- based endodontic materials. Restor Dent Endod. 2014;39:89-94.
  • Grech L, Mallia B, Camilleri J. Investigation of the physical properties of tricalcium silicate cement- based root-end filling materials. Dent Mater. 2013;29:e20-8.
  • Dawood AE, Parashos P, Wong RHK, Reynolds EC, Manton DJ. Calcium silicate-based cements: Composition, properties, and clinical applications. J Investig Clin Dent. 2017; 8, e12195.
  • Hashem AA, Wanees Amin SA. The effect of acidity on dislodgment resistance of mineral trioxide aggregate and bioaggregate in furcation perforations: an in vitro comparative study. J Endod. 2012;38:245-9.
  • Ulusoy ÖI, Paltun YN, Güven N, Çelik B. Dislodgement resistance of calcium silicate- based materials from root canals with varying thickness of dentine. Int Endod J. 2016;49:1188- 93.
  • Celik D, Er K, Serper A, Taşdemir T, Ceyhanlı KT. Push-out bond strength of three calcium silicate cements to root canal dentine after two different irrigation regimes. Clin Oral Investig. 2014;18:1141–6.
  • Tian J, Qi W, Zhang Y, Glogauer M, Wang Y, Lai Z, Jiang H. Bioaggregate inhibits osteoclast differentiation, fusion, and bone resorption in vitro. J Endod. 2015;41:1500-6.
  • Zhang J, Zhu L, Yan P, Peng B. Effect of BioAggregate on receptor activator of nuclear factor-kappa b ligand-induced osteoclastogenesis from murine macrophage cell line in vitro. J Endod. 2015;41:1265-71.
  • Zhang H, Pappen FG, Haapasalo M. Dentin enhances the antibacterial effect of mineral trioxide aggregate and bioaggregate. J Endod. 2009;35:221–4.
  • Biodentine internet ürün sayfası. http://www. septodontusa.com/products/biodentine (Erişim tarihi 02. 2017).
  • Dawood AE, Manton DJ, Parashos P, Wong R, Palamara J, Stanton DP, Reynolds EC. The physical properties and ion release of CPP-ACP- modified calcium silicate-based cements. Aust Dent J. 2015;60:434-44.
  • Camilleri J, Sorrentino F, Damidot D. Investigation of the hydration and bioactivity of radiopacified tricalcium silicate cement, Biodentine and MTA Angelus. Dent Mater. 2013;29:580-93.
  • Yoldaş SE, Bani M, Atabek D, Bodur H. Comparison of the potential discoloration effect of Bioaggregate, Biodentine, and white mineral trioxide aggregate on bovine teeth: In vitro research. J Endod. 2016;42:1815-18.
  • Majeed A, AlShwaimi E. Push-out bond strength and surface microhardness of calcium silicate- based biomaterials: An in vitro study. Med Princ Pract. 2017;26:139-45.
  • Camilleri J. Investigation of Biodentine as dentine replacement material. J Dent. 2013;41:600-10.
  • Gandolfi MG, Siboni F, Polimeni A, Bossu M, Riccitiello F, Rengo S, Prati C. In vitro screening of the apatite-forming ability, biointeractivity and physical properties of a tricalcium silicate material for endodontics and restorative dentistry. Dent J. 2013;1:41-60.
  • Rathinam E, Rajasekharan S, Chitturi RT, Martens L, De Coster P. Gene expression profiling and molecular signaling of dental pulp cells in response to tricalcium silicate cements: A systematic review. J Endod. 2015;41:1805-17.
  • Kim J, Song YS, Min KS, Kim SH, Koh JT, Lee BN, Chang HS, Hwang IN, Oh WM, Hwang YC. Evaluation of reparative dentin formation of ProRoot MTA, Biodentine and BioAggregate using micro-CT and immunohistochemistry. Restor Dent Endod. 2016;41:29-36.
  • Candeiro GT, Correia FC, Duarte MA, Ribeiro-Siqueira DC, Gavini G. Evaluation of radiopacity, pH, release of calcium ions, and flow of a bioceramic root canal sealer. J Endod. 2012;38:842-5.
  • Damas BA, Wheater MA, Bringas JS, Hoen MM. Cytotoxicity comparison of mineral trioxide aggregates and EndoSequence bioceramic root repair materials. J Endod. 2011;37:372-5.
  • Walsh RM, Woodmansey KF, Glickman GN, He J. Evaluation of compressive strength of hydraulic silicate-based root-end filling materials. J Endod. 2014;40:969-72.
  • Caronna V, Himel V, Yu Q, Zhang JF, Sabey K. Comparison of the surface hardness among 3 materials used in an experimental apexification model under moist and dry environments. J Endod. 2014;40:986-9.
  • Zhou HM, Shen Y, Zheng W, Li L, Zheng YF, Haapasalo M. Physical properties of 5 root canal sealers. J Endod. 2013;39:1281-6.
  • Nair U, Ghattas S, Saber M, Natera M, Walker C, Pileggi R. A comparative evaluation of the sealing ability of 2 root-end filling materials: An in vitro leakage study using Enterococcus faecalis. Oral Surg Oral Med Oral Pathol Oral Radiol Endod. 2011;112:e74-7.
  • Shokouhinejad N, Gorjestani H, Nasseh AA, Hoseini A, Mohammadi M, Shamshiri AR. Push- out bond strength of gutta-percha with a new bioceramic sealer in the presence or absence of smear layer. Aust Endod J. 2013;39:102-6.
  • Lovato KF, Sedgley CM. Antibacterial activity of endosequence root repair material and proroot MTA against clinical isolates of Enterococcus faecalis. J Endod. 2011;37:1542-6.
  • Asgary S, Shahabi S, Jafarzadeh T, Amini S, Kheirieh S. The properties of a new endodontic material. J Endod. 2008;34:990-3.
  • Kayahan MB, Nekoofar MH, McCann A, Sunay H, Kaptan RF, Meraji N, Dummer PM. Effect of acid etching procedures on the compressive strength of 4 calcium silicate-based endodontic cements. J Endod. 2013;39:1646-8.
  • Asgary S, Eghbal MJ, Parirokh M, Ghoddusi J. Effect of two storage solutions on surface topography of two root-end fillings. Aust Endod J. 2009;35:147-52.
  • Adl A, Sobhnamayan F, Kazemi O. Comparison of push-out bond strength of mineral trioxide aggregate and calcium enriched mixture cement as root end filling materials. Dent Res J (Isfahan). 2014;11:564-7.
  • Asgary S, Nazarian H, Khojasteh A, Shokouhinejad N. Gene expression and cytokine release during odontogenic differentiation of human dental pulp stem cells induced by 2 endodontic biomaterials. J Endod. 2014;40:387-92.
  • Amini Ghazvini S, Abdo Tabrizi M, Kobarfard F, Akbarzadeh Baghban A, Asgary S. Ion release and pH of a new endodontic cement, MTA and Portland cement. Iran Endod J. 2009;4:74-8.
  • Hasan Zarrabi M, Javidi M, Naderinasab M, Gharechahi M. Comparative evaluation of antimicrobial activity of three cements: New endodontic cement (NEC), mineral trioxide aggregate (MTA) and Portland. J Oral Sci. 2009;51:437-42.
  • Kangarlou A, Sofiabadi S, Yadegari Z, Asgary S. Antifungal effect of calcium enriched mixture cement against Candida albicans. Iran Endod J. 2009;4:101-5.
  • Gandolfi MG, Siboni F, Prati C. Chemical- physical properties of TheraCal, a novel light- curable MTA-like material for pulp capping. Int Endod J. 2012;45:571-9.
  • Gandolfi MG, Siboni F, Botero T, Bossu M, Riccitiello F, Prati C. Calcium silicate and calcium hydroxide materials for pulp capping: Biointeractivity, porosity, solubility and bioactivity of current formulations. J Appl Biomater Funct Mater. 2015;13:43-60.
  • Makkar S, Vashisht R, Kalsi A, Gupta P. The effect of altered pH on push-out bond strength

Endodontide Biyoseramik İçerikli Tamir Materyallerine Güncel Bir Bakış

Year 2017, Volume: 8 Issue: 2, 1533 - 1542, 01.12.2017

Abstract

Biyoseramik içerikli dentin tamir materyalleri esas olarak kalsiyum silikat ve kalsiyum fosfat içerikli olup hidroksiapatit gibi biyolojik materyallere yakınlıkları dolayısıyla biyouyumludur ve dokuda rejeneratif cevabı teşvik eder. Mineral trioxide aggregate MTA pulpa rejenerasyonu ve doku tamiri gibi endodontik uygulamalarda kullanılmak üzere tanıtılan ilk biyoseramik içerikli materyaldir. MTA’ın barındırdığı üstün örtücülük, biyouyumluluk, rejeneratif kapasite ve antibakteriyel özelliklerine rağmen, manüple edilebilirliğindeki zorluk ve uzun sertleşme süresi gibi kısıtlamalar materyal için dezavantaj oluşturur. Bu kısıtlamaları aşmak adına yeni biyoseramik içerikli dentin tamir materyallerinin geliştirilmesine devam edilmektedir. Bu derleme makalesinin amacı endodontide yeni geliştirilen biyoseramik içerikli materyallerin fiziksel, mekanik ve biyolojik özelliklerini güncel literatür ışığında sunmaktır

References

  • Vallet-Regi M. Evolution of bioceramics within the field of biomaterials. Comp R Chimie. 2010;13:174-85.
  • Swarup S, Rao A. Bioceramics in Pediatric Endodontics. 1st ed. Trivandrum: Lambert Academic Publishing; 2013. P. 53-68.
  • Parirokh M, Torabinejad M. Mineral trioxide aggregate: A comprehensive literature review- -part III: Clinical applications, drawbacks, and mechanism of action. J Endod. 2010;36:400– 13.
  • Bioaggregate internet ürün sayfası. http:// bioaggregate.com/product (Erişim tarihi 02. 2017).
  • Madfa AA, Al-Sanabani FA, Al-Qudami Al- Kudami NH. Endodontic repair filling materials: A review article. Br J Med Med Res. 2014;4:3059- 79.
  • Jang YE, Lee BN, Koh JT, Park YJ, Joo NE, Chang HS, Hwang IN, Oh WM, Hwang YC. Cytotoxicity and physical properties of tricalcium silicate- based endodontic materials. Restor Dent Endod. 2014;39:89-94.
  • Grech L, Mallia B, Camilleri J. Investigation of the physical properties of tricalcium silicate cement- based root-end filling materials. Dent Mater. 2013;29:e20-8.
  • Dawood AE, Parashos P, Wong RHK, Reynolds EC, Manton DJ. Calcium silicate-based cements: Composition, properties, and clinical applications. J Investig Clin Dent. 2017; 8, e12195.
  • Hashem AA, Wanees Amin SA. The effect of acidity on dislodgment resistance of mineral trioxide aggregate and bioaggregate in furcation perforations: an in vitro comparative study. J Endod. 2012;38:245-9.
  • Ulusoy ÖI, Paltun YN, Güven N, Çelik B. Dislodgement resistance of calcium silicate- based materials from root canals with varying thickness of dentine. Int Endod J. 2016;49:1188- 93.
  • Celik D, Er K, Serper A, Taşdemir T, Ceyhanlı KT. Push-out bond strength of three calcium silicate cements to root canal dentine after two different irrigation regimes. Clin Oral Investig. 2014;18:1141–6.
  • Tian J, Qi W, Zhang Y, Glogauer M, Wang Y, Lai Z, Jiang H. Bioaggregate inhibits osteoclast differentiation, fusion, and bone resorption in vitro. J Endod. 2015;41:1500-6.
  • Zhang J, Zhu L, Yan P, Peng B. Effect of BioAggregate on receptor activator of nuclear factor-kappa b ligand-induced osteoclastogenesis from murine macrophage cell line in vitro. J Endod. 2015;41:1265-71.
  • Zhang H, Pappen FG, Haapasalo M. Dentin enhances the antibacterial effect of mineral trioxide aggregate and bioaggregate. J Endod. 2009;35:221–4.
  • Biodentine internet ürün sayfası. http://www. septodontusa.com/products/biodentine (Erişim tarihi 02. 2017).
  • Dawood AE, Manton DJ, Parashos P, Wong R, Palamara J, Stanton DP, Reynolds EC. The physical properties and ion release of CPP-ACP- modified calcium silicate-based cements. Aust Dent J. 2015;60:434-44.
  • Camilleri J, Sorrentino F, Damidot D. Investigation of the hydration and bioactivity of radiopacified tricalcium silicate cement, Biodentine and MTA Angelus. Dent Mater. 2013;29:580-93.
  • Yoldaş SE, Bani M, Atabek D, Bodur H. Comparison of the potential discoloration effect of Bioaggregate, Biodentine, and white mineral trioxide aggregate on bovine teeth: In vitro research. J Endod. 2016;42:1815-18.
  • Majeed A, AlShwaimi E. Push-out bond strength and surface microhardness of calcium silicate- based biomaterials: An in vitro study. Med Princ Pract. 2017;26:139-45.
  • Camilleri J. Investigation of Biodentine as dentine replacement material. J Dent. 2013;41:600-10.
  • Gandolfi MG, Siboni F, Polimeni A, Bossu M, Riccitiello F, Rengo S, Prati C. In vitro screening of the apatite-forming ability, biointeractivity and physical properties of a tricalcium silicate material for endodontics and restorative dentistry. Dent J. 2013;1:41-60.
  • Rathinam E, Rajasekharan S, Chitturi RT, Martens L, De Coster P. Gene expression profiling and molecular signaling of dental pulp cells in response to tricalcium silicate cements: A systematic review. J Endod. 2015;41:1805-17.
  • Kim J, Song YS, Min KS, Kim SH, Koh JT, Lee BN, Chang HS, Hwang IN, Oh WM, Hwang YC. Evaluation of reparative dentin formation of ProRoot MTA, Biodentine and BioAggregate using micro-CT and immunohistochemistry. Restor Dent Endod. 2016;41:29-36.
  • Candeiro GT, Correia FC, Duarte MA, Ribeiro-Siqueira DC, Gavini G. Evaluation of radiopacity, pH, release of calcium ions, and flow of a bioceramic root canal sealer. J Endod. 2012;38:842-5.
  • Damas BA, Wheater MA, Bringas JS, Hoen MM. Cytotoxicity comparison of mineral trioxide aggregates and EndoSequence bioceramic root repair materials. J Endod. 2011;37:372-5.
  • Walsh RM, Woodmansey KF, Glickman GN, He J. Evaluation of compressive strength of hydraulic silicate-based root-end filling materials. J Endod. 2014;40:969-72.
  • Caronna V, Himel V, Yu Q, Zhang JF, Sabey K. Comparison of the surface hardness among 3 materials used in an experimental apexification model under moist and dry environments. J Endod. 2014;40:986-9.
  • Zhou HM, Shen Y, Zheng W, Li L, Zheng YF, Haapasalo M. Physical properties of 5 root canal sealers. J Endod. 2013;39:1281-6.
  • Nair U, Ghattas S, Saber M, Natera M, Walker C, Pileggi R. A comparative evaluation of the sealing ability of 2 root-end filling materials: An in vitro leakage study using Enterococcus faecalis. Oral Surg Oral Med Oral Pathol Oral Radiol Endod. 2011;112:e74-7.
  • Shokouhinejad N, Gorjestani H, Nasseh AA, Hoseini A, Mohammadi M, Shamshiri AR. Push- out bond strength of gutta-percha with a new bioceramic sealer in the presence or absence of smear layer. Aust Endod J. 2013;39:102-6.
  • Lovato KF, Sedgley CM. Antibacterial activity of endosequence root repair material and proroot MTA against clinical isolates of Enterococcus faecalis. J Endod. 2011;37:1542-6.
  • Asgary S, Shahabi S, Jafarzadeh T, Amini S, Kheirieh S. The properties of a new endodontic material. J Endod. 2008;34:990-3.
  • Kayahan MB, Nekoofar MH, McCann A, Sunay H, Kaptan RF, Meraji N, Dummer PM. Effect of acid etching procedures on the compressive strength of 4 calcium silicate-based endodontic cements. J Endod. 2013;39:1646-8.
  • Asgary S, Eghbal MJ, Parirokh M, Ghoddusi J. Effect of two storage solutions on surface topography of two root-end fillings. Aust Endod J. 2009;35:147-52.
  • Adl A, Sobhnamayan F, Kazemi O. Comparison of push-out bond strength of mineral trioxide aggregate and calcium enriched mixture cement as root end filling materials. Dent Res J (Isfahan). 2014;11:564-7.
  • Asgary S, Nazarian H, Khojasteh A, Shokouhinejad N. Gene expression and cytokine release during odontogenic differentiation of human dental pulp stem cells induced by 2 endodontic biomaterials. J Endod. 2014;40:387-92.
  • Amini Ghazvini S, Abdo Tabrizi M, Kobarfard F, Akbarzadeh Baghban A, Asgary S. Ion release and pH of a new endodontic cement, MTA and Portland cement. Iran Endod J. 2009;4:74-8.
  • Hasan Zarrabi M, Javidi M, Naderinasab M, Gharechahi M. Comparative evaluation of antimicrobial activity of three cements: New endodontic cement (NEC), mineral trioxide aggregate (MTA) and Portland. J Oral Sci. 2009;51:437-42.
  • Kangarlou A, Sofiabadi S, Yadegari Z, Asgary S. Antifungal effect of calcium enriched mixture cement against Candida albicans. Iran Endod J. 2009;4:101-5.
  • Gandolfi MG, Siboni F, Prati C. Chemical- physical properties of TheraCal, a novel light- curable MTA-like material for pulp capping. Int Endod J. 2012;45:571-9.
  • Gandolfi MG, Siboni F, Botero T, Bossu M, Riccitiello F, Prati C. Calcium silicate and calcium hydroxide materials for pulp capping: Biointeractivity, porosity, solubility and bioactivity of current formulations. J Appl Biomater Funct Mater. 2015;13:43-60.
  • Makkar S, Vashisht R, Kalsi A, Gupta P. The effect of altered pH on push-out bond strength
There are 42 citations in total.

Details

Primary Language Turkish
Journal Section Research Article
Authors

Emel Olga Önay This is me

Publication Date December 1, 2017
Published in Issue Year 2017 Volume: 8 Issue: 2

Cite

Vancouver Önay EO. Endodontide Biyoseramik İçerikli Tamir Materyallerine Güncel Bir Bakış. ADO Klinik Bilimler Dergisi. 2017;8(2):1533-42.