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항우식성 복합레진의 가능성

DEVELOPMENT OF ANTICARIOGENIC COMPOSITE RESIN

  • 박정원 (연세대학교 치과대학 보존학교실)
  • Park, Jeong-Won (Department of Conservative Dentistry, College of Dentistry, Yonsei University)
  • 투고 : 2010.03.02
  • 심사 : 2010.03.10
  • 발행 : 2010.03.31

초록

복합레진의 개발 및 환자의 심미적 욕구로 인해 기존의 아말감을 복합레진 수복이 빠른 속도로 대체하고 있다. 하지만 복합레진의 경우 술식의 어려움, 중합수축으로 인한 응력의 발생, 재료의 파절, 이차우식등의 문제를 가지고 있으며 아직까지 복합레진 수복을 위해서는 치과용 접착제의 사용이 필수적이다. 이에 본 글에서는 현재 복합레진이 가지고 있는 문제점을 극복하기 위해 복합레진 수복의 가장 많은 실패 원인으로 알려진 이차우식을 억제할 수 있는 재광화 물질을 방출할 수 있는 복합레진의 개발이 어디까지 이루어지고 있는지 살펴보고 앞으로의 임상적용 가능성에 대해 생각해보고자 한다.

Due to the improvement of the composite resin and esthetic desire of the patient, amalgam restoration has been replaced by composite resin. However, still there are many unsolved problems, for example, technique sensitivity, polymerization shrinkage stress and limited mechanical properties. These factors results in fracture of the restoration and secondary caries of the tooth. Also the use of the dental bonding system should be used for the retention of the restoration. In this paper, I want to talk about the present and the future of the remineralizing component released from dental composite resin to overcome the secondary caries and there possibility in the clinical use.

키워드

참고문헌

  1. Sarrett DC. Clinical challenges and the relevance of materials testing for posterior composite restorations. Dent Mater 21:9-20, 2005. https://doi.org/10.1016/j.dental.2004.10.001
  2. Silvestry-Rodriguez N, Sicairos-Ruelas EE, Gerba CP, Bright KR. Silver as a disinfectant. Rev Environ Contam Toxicol 191:23-45, 2007.
  3. Park SH, Kim KY. The anticariogenic effect of fluoride in primer, bonding agent, and composite resins in the cavosurface enamel area. Oper Dent 22:115-120, 1997.
  4. Skrtic D, Hailer AW, Tagaki S, Antonucci JM, Eanes ED. Quantative assessment of the efficacy of amorphous calcium phosphate/methacrylate composites in remineralizing caries-like lesions artificially produced in bovine enamel. J Dent Res 75:1679-1686, 1996. https://doi.org/10.1177/00220345960750091001
  5. Dickens SH, Flaim GM, Takagi S. Mechanical properties and biochemical activity of remineralizing resinbased Ca-$PO_4$ cements. Dent Mater 19:558-566, 2003. https://doi.org/10.1016/S0109-5641(02)00105-7
  6. Xu HH, Moreau JL, Sun L, Chow LC. Strength and fluoride release characteristics of a calcium fluoridebased dental nanocomposite. Biomaterials 29:4261-4267, 2008. https://doi.org/10.1016/j.biomaterials.2008.07.037
  7. Skrtic D, Antonucci JM, Eanes ED. Improved properties of amorphous calcium phosphate filers in remineralizing resin composites. Dent Mater 12:295-301, 1996. https://doi.org/10.1016/S0109-5641(96)80037-6
  8. O'Donnell JNR, Antonucci JM, Skrtic D. Mechanical properties of amorphous calcium phosphate composite (abstract). J Dent Res 84 (Spec Iss A): Abstract 586, 2005.
  9. Xu HH, Sun L, Weir MD, Antonucci JM, Tagaki S, Chow LC, Peltz M. Nano DCPA-whisker composites with high strength and Ca and $PO_4$ release. J Dent Res 85:722-727, 2006. https://doi.org/10.1177/154405910608500807
  10. Xu HH, Weir MD, Sun L, Takagi S, Chow LC. Effect of calcium phosphate nanoparticles on Ca-$PO_4$ composite. J Dent Res 86:378-383, 2007. https://doi.org/10.1177/154405910708600415
  11. Xu HH, Weir MD, Sun L. Nanocomposites with Ca-$PO_4$ release: effects of reinforcement, dicalcium phosphate particle size and silinization. Dent Mater 23:1482-1491, 2007. https://doi.org/10.1016/j.dental.2007.01.002