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Effect of Liquefied Digestive Medicine on the Surface of Composite Resin

  • Kim, Min-Young (Department of Dental Hygiene, College of Health Science, Eulji University) ;
  • Lim, Hee-Jung (Department of Dental Hygiene, College of Health Science, Eulji University) ;
  • Kim, Ha-Eun (Department of Dental Hygiene, College of Health Science, Eulji University) ;
  • Kim, Hyun-Jeong (Department of Dental Hygiene, College of Health Science, Eulji University) ;
  • Yu, Hye-Kang (Department of Dental Hygiene, College of Health Science, Eulji University) ;
  • Choi, Soo-Jin (Department of Dental Hygiene, College of Health Science, Eulji University) ;
  • Lim, Do-Seon (Department of Dental Hygiene, College of Health Science, Eulji University)
  • 투고 : 2021.12.23
  • 심사 : 2022.01.17
  • 발행 : 2022.03.31

초록

Background: The purpose of this study is to investigate the effect of liquefied digestive medicines on the composite resin surface. Methods: Three types of liquefied digestive medicines (Gashwalmyeongsu, Wicheongsu, and Saengrokcheon) were selected as experimental groups, Samdasoo and Chamisul as negative controls, and Trevi as positive controls were selected to measure pH and titratable acidity. The samples filled with resin at acrylic were made total 300, 50 per group. To evaluate the erosion risk of the composite resin, the specimens were immersed in a liquefied medicine for 1, 3, 5, 15, and 30 minutes, and then the surface microhardness was measured using the Vickers Hardness Number, and the surface change was observed with scanning electron microscope (SEM). Results: The average pH of the three liquefied medicine was 3.75±0.30, the Saengrokcheon was the lowest at 3.45±0.01, and the Trevi was 4.66 and Samdasoo and Chamisul were 7.40 and 8.58, respectively. The amount of NaOH reaching pH 5.5 and 7.0 was the lowest in the order of Trevi, Gashwalmyeongsu, Wicheongsu, and Saengrokcheon. The largest surface hardness reduction value was shown in Gashwalmyeongsu (-11.85±3.73), followed by Saengrokcheon (-9.79±3.11) and Wicheongsu (-8.28±2.83), and Samdasoo (-0.84±1.56) and Chamisul (-6.24±0.42) had relatively low surface hardness reduction values. However, Trevi (-16.67±5.41), a positive control group containing carbonic acid, showed a higher decrease in surface hardness than the experimental group. As a result of observation with SEM, experimental group and positive control group, showed rough surfaces and irregular cracks, and negative control groups showed smooth patterns similar to before immersion. Conclusion: The liquefied digestive medicine with low pH could weaken the composite resin surface, and the carbonic acid component could more effect on the physical properties of the composite resin than pH.

키워드

과제정보

This research was supported by 2021 eulji university University Innovation Support Project grant funded.

참고문헌

  1. Dictionary of Pharmacological Terms: Digestive medicine. Retrieved December 14, 2021, from https://m.terms.naver.com/entry.naver?docId=5704797&cid=59913&categoryId=59913.
  2. Lee SY, Yoon KJ, Lee JA: Policy report 2013. A study on the use of medicines and changes in perception before and after the sale of safety-related drugs. Korea Institute for Health and Social Affairs, Sejong, pp.21-37, 2013.
  3. Dailypharm: Liquefied digestive medicine market without gaps. Retrieved January 4, 2022, from http://www.dailypharm.com/Users/News/NewsView.html?ID=267793&REFERER=NP (2020, August 26).
  4. Lee HJ, Oh HN: The effect of digestive medicine on enamel erosion. J Dent Hyg Sci 17: 352-357, 2017. https://doi.org/10.17135/jdhs.2017.17.4.352
  5. Johansson AK, Lingstrom P, Imfeld T, Birkhed D: Influence of drinking method on tooth-surface pH in relation to dental erosion. Eur J Oral Sci 112: 484-489, 2004. https://doi.org/10.1111/j.1600-0722.2004.00172.x
  6. Oh HN, Lee HJ: The effect of energy drink on enamel erosion. J Dent Hyg Sci 15: 419-423, 2015. https://doi.org/10.17135/jdhs.2015.15.4.419
  7. Han L, Okamoto A, Fukushima M, Okiji T: Evaluation of flowable resin composite surfaces eroded by acidic and alcoholic drinks. Dent Mater J 27: 455-465, 2008. https://doi.org/10.4012/dmj.27.455
  8. Valinoti AC, Neves BG, da Silva EM, Maia LC: Surface degradation of composite resins by acidic medicines and pH-cycling. J Appl Oral Sci 16: 257-265, 2008. https://doi.org/10.1590/S1678-77572008000400006
  9. Kim YS, Kim JE, Chung KH, Choi CH: Effect of fermented milk product on composite resin surface. J Korean Acad Oral Health 45: 138-144, 2021. https://doi.org/10.11149/jkaoh.2021.45.3.138
  10. Lee IY, Kim HJ, Kim YJ, Nam SH: Esthetic restoration of fractured immature permanent incisors. J Korean Acad Pediatr Dent 36: 126-132, 2009.
  11. Ministry of Health & Welfare: 2012 Korean national oral health survey. Ministry of Health & Welfare, Sejong, 2012.
  12. Ryu JI, Jung SH, Han DH, Lee SR, Jeon JE: Financial estimate of light-curing composite resin treatment after National Health Insurance Service coverage. J Korean Acad Oral Health 43: 136-141, 2019. https://doi.org/10.11149/jkaoh.2019.43.3.136
  13. Yanikoglu N, Duymus ZY, Yilmaz B: Effects of different solutions on the surface hardness of composite resin materials. Dent Mater J 28: 344-351, 2009. https://doi.org/10.4012/dmj.28.344
  14. Erdemir U, Yildiz E, Eren MM, Ozel S: Surface hardness evaluation of different composite resin materials: influence of sports and energy drinks immersion after a short-term period. J Appl Oral Sci 21: 124-131, 2013. https://doi.org/10.1590/1678-7757201302185
  15. Shin YH, Kim YJ: Study on the primary tooth enamel erosion caused by children beverage. J Korean Acad Pediatr Dent 36: 227-236, 2009.
  16. Edwards M, Creanor SL, Foye RH, Gilmour WH: Buffering capacities of soft drinks: the potential influence on dental erosion. J Oral Rehabil 26: 923-927, 1999. https://doi.org/10.1046/j.1365-2842.1999.00494.x
  17. Lee SI: Functional dyspepsia. J Korea Assoc Health Promot 3: 46-54, 2005.
  18. Cho YS, Choi MG, Jeong JJ, et al.: Prevalence and clinical spectrum of gastroesophageal reflux: a population-based study in Asan-si, Korea. Am J Gastroenterol 100: 747-753, 2005. https://doi.org/10.1111/j.1572-0241.2005.41245.x
  19. Murrell S, Marshall TA, Moynihan PJ, Qian F, Wefel JS: Comparison of in vitro erosion potentials between beverages available in the United Kingdom and the United States. J Dent 38: 284-289, 2010. https://doi.org/10.1016/j.jdent.2009.11.008
  20. Larsen MJ, Nyvad B: Enamel erosion by some soft drinks and orange juices relative to their pH, buffering effect and contents of calcium phosphate. Caries Res 33: 81-87, 1999. https://doi.org/10.1159/000016499
  21. Reddy A, Norris DF, Momeni SS, Waldo B, Ruby JD: The pH of beverages in the United States. J Am Dent Assoc 147: 255-263, 2016. https://doi.org/10.1016/j.adaj.2015.10.019
  22. Hooper SM, Hughes JA, Newcombe RG, Addy M, West NX: A methodology for testing the erosive potential of sports drinks. J Dent 33: 343-348, 2005. https://doi.org/10.1016/j.jdent.2004.10.002
  23. Barbour ME, Parker DM, Allen GC, Jandt KD: Enamel dissolution in citric acid as a function of calcium and phosphate concentrations and degree of saturation with respect to hydroxyapatite. Eur J Oral Sci 111: 428-433, 2003. https://doi.org/10.1034/j.1600-0722.2003.00059.x
  24. Song AH, Choi CH: Effect of commercial alcoholic drinks on sound enamel surface of bovine teeth. J Korean Acad Oral Health 37: 180-186, 2013. https://doi.org/10.11149/jkaoh.2013.37.4.180
  25. Park SW, Kim SK, Jung EH, Kwon HK, Kim BI: Erosive potential of several fruit-flavored liquors in Korea. J Korean Dent Assoc 54: 521-528, 2016. https://doi.org/10.22974/jkda.2016.54.7.004
  26. Lee KH, Park SJ, Jung TS, Kim S: A study on the enamel erosion by carbonated beverage. J Korean Acad Pediatr Dent 32: 144-151, 2005.
  27. Kim HJ, Shin HE, Min HH: Influence of carbonated water on degradation of dental resin-based pit and fissure sealant. Korean J Dent Mater 44: 281-289, 2017. https://doi.org/10.14815/kjdm.2017.44.3.281
  28. Hengtrakool C, Kukiattrakoon B, Kedjarune-Leggat U: Effect of naturally acidic agents on microhardness and surface micromorphology of restorative materials. Eur J Dent 5: 89-100, 2011. https://doi.org/10.1055/s-0039-1698863
  29. Hussein TA, Bakar WZ, Ghani ZA, Mohamad D: The assessment of surface roughness and microleakage of eroded tooth-colored dental restorative materials. J Conserv Dent 17: 531-535, 2014. https://doi.org/10.4103/0972-0707.144585
  30. Fatima N, Abidi SY, Qazi FU, Jat SA: Effect of different tetra pack juices on microhardness of direct tooth colored-restorative materials. Saudi Dent J 25: 29-32, 2013. https://doi.org/10.1016/j.sdentj.2012.09.002
  31. Kim YS: Difference of dental erosive potential according to the type of mixed drink. J Korea Acad-Ind Cooper Soc 21: 739-744, 2020. https://doi.org/10.5762/KAIS.2020.21.1.739
  32. Martos J, Osinaga PWR, de Oliveira E, de Castro LAS: Hydrolytic degradation of composite resins: effects on the microhardness. Mat Res 6: 599-604, 2003. https://doi.org/10.1590/S1516-14392003000400029
  33. Yang KH, Park EH, Jeong BC: SEM and confocal laser scanning microscopic study on the corrosion of dental restorative resins. J Korean Acad Pediatr Dent 29: 430-438, 2002.
  34. Kim EK, Park HR, Chung KY, Choi CH, Jeong SS: Effects of some commercial calamansi-containing beverages on the enamel surface. J Korean Acad Oral Health 44: 7-12, 2020. https://doi.org/10.11149/jkaoh.2020.44.1.7
  35. Choi WH, Kim EJ, Kim HJ, Kim YJ, Nam SH: The effect of 1.23% APF gel on the esthetic restorative materials. J Korean Acad Pediatr Dent 33: 281-289, 2006.
  36. Yang KH, Yook GY, Choi NK, Kim SM: Effect of acidulated phosphate fluoride on the surface of composite resin. J Korean Acad Pediatr Dent 34: 255-263, 2007.
  37. Buzalaf MA, Hannas AR, Kato M: Saliva and dental erosion. J Appl Oral Sci 20: 493-502, 2012. https://doi.org/10.1590/s1678-77572012000500001
  38. Yuk GY, Choi NK, Yang KH, Kim SM: Effect of APF gel on the surface of composite resin. J Korean Acad Pediatr Dent 33: 43-52, 2006.