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Comparison of Microleakage and Compressive Strength of Different Base Materials

여러 치과 와동 기저재용 재료들의 미세누출 및 압축강도 비교

  • Jang, Eunyeong (Department of Pediatric Dentistry, School of Dentistry, Kyungpook National University) ;
  • Lee, Jaesik (Department of Pediatric Dentistry, School of Dentistry, Kyungpook National University) ;
  • Nam, Soonhyeun (Department of Pediatric Dentistry, School of Dentistry, Kyungpook National University) ;
  • Kwon, Taeyub (Department of Dental biomaterials, School of Dentistry, Kyungpook National University) ;
  • Kim, Hyunjung (Department of Pediatric Dentistry, School of Dentistry, Kyungpook National University)
  • 장은영 (경북대학교 치의학대학원 소아치과학교실) ;
  • 이제식 (경북대학교 치의학대학원 소아치과학교실) ;
  • 남순현 (경북대학교 치의학대학원 소아치과학교실) ;
  • 권태엽 (경북대학교 치의학대학원 치과생체재료학교실) ;
  • 김현정 (경북대학교 치의학대학원 소아치과학교실)
  • Received : 2020.10.25
  • Accepted : 2020.11.27
  • Published : 2021.05.31

Abstract

This study compared the microleakages and compressive strengths of various base materials. To evaluate microleakages, 50 extracted permanent premolars were prepared. The teeth divided into 5 groups of 10 each according to the base materials. Cavities with a 5.0 mm width, 3.0 mm length, and 3.0 mm depth were formed on the buccal surfaces of the teeth. After filling the cavities with different base materials, a composite resin was used for final restoration. Each specimen was immersed in 2% methylene blue solution and then observed under a stereoscopic microscope (× 30). To evaluate the compressive strength, 5 cylindrical specimens were prepared for each base material. A universal testing machine was used to measure the compressive strength. The microleakage was highest in the Riva light cureTM group and lowest in the BiodentineTM and Well-RootTM PT groups. For the compressive strengths, in all groups, acceptable strength values for base materials were found. The highest compressive strength was observed in the Fuji II LCTM group and the lowest strength in the Well-RootTM PT group.

이 연구는 깊은 와동에서 기저재로 사용되는 5개의 기저재용 재료를 대상으로 미세누출 및 압축강도 평가를 시행하였다. 미세누출 평가를 위해 발거된 영구 소구치 50개를 준비하여 베이스 재료에 따라 10개씩 군을 나누었다. 치아의 순면에 가로 5.0 mm, 세로 3.0 mm, 높이 3.0 mm 크기의 와동을 형성하였다. 형성된 와동에 1.0 mm 두께로 각 베이스 재료를 충전하였다. 이후 와동의 상방부를 composite resin으로 최종수복 시행하였으며, 시편을 2% 메틸렌블루 용액에 침적시킨 후 치아를 절삭하였고 실체현미경(× 30)을 이용해 미세누출 정도를 평가하였다. 압축강도 평가를 위해 각 재료 별로 5개씩의 원통형 시편을 제작하였다. 이후 만능시험기를 이용해 압축강도를 평가하였다. 미세누출 평가에서 Riva light cureTM가 가장 큰 미세누출을 보였으며, Well-Root PT와 Biodentine이 가장 적은 미세누출을 보였다. 압축강도는 모든 군이 베이스 재료로서 받아들일 만한 강도를 보였다. Fuji II LC가 가장 높은 압축강도를 보였으며 Well-Root PT가 가장 낮은 강도를 보였다.

Keywords

References

  1. Weiner RS : Liners, bases, and cements: a solid foundation. Gen Dent, 50:442-446, 2002.
  2. Anusavice K : Phillip's Science of Dental Materials, 11th ed. WB Saunders, Philadelphia, 2003.
  3. Ferracane JL : Materials in dentistry: principles and applications, 2nd ed. Lippincott Williams and Wilkins, Philadelphia, 2001.
  4. Craig RG, Powers JM : Restorative dental materials, 11th ed. Mosby, St Louis, 2002.
  5. Masih S, Thomas AM, Joshi JL, et al . : Comparative evaluation of the microleakage of two modified glass ionomer cements on primary molars. an in vivo study. J Indian Soc Pedod Prev Dent, 29:135-139, 2011. https://doi.org/10.4103/0970-4388.84686
  6. Ragu VG, Venumbaka NR, Elangovan A, et al . : Comparative evaluation of shear bond strength and microleakage of tricalcium silicate-based restorative material and radiopaque posterior glass ionomer restorative cement in primary and permanent teeth: An in vitro study. J Indian Soc Pedod Prev Dent, 32:304-310, 2014. https://doi.org/10.4103/0970-4388.140952
  7. Samuel A, Asokan S, Thomas S, et al . : Evaluation of sealing ability of BiodentineTM and mineral trioxide aggregate in primary molars using scanning electron microscope: A randomized controlled in vitro trial. Comtemp Clin Dent, 7:322-325, 2016. https://doi.org/10.4103/0976-237X.188547
  8. Noh YS, Chung SH, Rhee SH, et al . : Mechanical properties and microstructure analysis of mineral trioxide aggregate mixed with hydrophilic synthetic polymer. J Biomed Mater Res B Appl Biomater, 103:777-782, 2015. https://doi.org/10.1002/jbm.b.33257
  9. Butt N, Talwar S, Bali A, et al . : Comparison of physical and mechanical properties of mineral trioxide aggregate and Biodentine. Indian J Dent Res, 25:692-697, 2014. https://doi.org/10.4103/0970-9290.152163
  10. Nomoto R, Komoriyama M, Hirano S, et al . : Effect of mixing method on the porosity of encapsulated glass-ionomer cement. Dent Mater, 20:972-978, 2004. https://doi.org/10.1016/j.dental.2004.03.001
  11. Nekoofar MH, Aseeley Z, Dummer PMH : The effect of various mixing technique on the surface microhardness of mineral trioxide aggregate. Int Endod J, 43:312-320, 2010. https://doi.org/10.1111/j.1365-2591.2010.01683.x
  12. Mitchell CA, Douglas WH : Comparison of the porosity of hand-mixed and capsulated glass-ionomer luting cements. Biomater, 18:1127-1131, 1997. https://doi.org/10.1016/S0142-9612(97)00038-0
  13. Kayahan MB, Nekoofar MH, Dummer PMH, et al . : Effect of acid etching procedures on the compressive strength of 4 calcium silicate-based endodontic cements. J Endod, 39:1646-1648, 2013. https://doi.org/10.1016/j.joen.2013.09.008
  14. International Organization for Standardization : Dentistry-Zinc oxide/eugenol cements and zinc oxide/non-eugenol cements. ISO 3107, 2011.
  15. International Organization for Standardization : Dentistry-Water-based cements-Part 1: Powder/liquid acid-base cements. ISO 9917-1, 2007.
  16. Govindaraju L, Neelakantan P, Gutmann JL : Effect of root canal irrigating solutions on the compressive strength of tricalcium silicate cements. Clin Oral Investig, 21:567-571, 2017. https://doi.org/10.1007/s00784-016-1922-0
  17. Nomoto R, McCabe JF : Effect of mixing methods on the compressive strength of glass ionomer cements. J Dent, 29:205-210, 2001. https://doi.org/10.1016/S0300-5712(01)00010-0
  18. Grech L, Mallia B, Camilleri J : Investigation of the physical properties of tricalcium silicate cement-based root-end filling materials. Dent Mater, 29:20-28, 2013.
  19. Camilleri J, Sorrentino F, Damidot D : Investigation of the hydration and bioactivity of radiopacified tricalcium silicate cement, Biodentine and MTA angelus. Dent Mater, 29:580-593, 2013. https://doi.org/10.1016/j.dental.2013.03.007