Research Article
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Year 2025, Volume: 15 Issue: 3, 524 - 530, 30.09.2025
https://doi.org/10.33808/clinexphealthsci.1543863

Abstract

References

  • Torabinejad M, Watson TF, Pitt Ford TR. Sealing ability of a mineral trioxide aggregate when used as a root end filling material. J Endod. 1993;19(12):591-595. https://doi.org/10.1016/S0099-2399(06)80271-2.
  • Shahi S, Fakhri E, Yavari H, Maleki Dizaj S, Salatin S, Khezri K. Portland cement: An overview as a root repair material. Biomed Res Int. 2022;6:3314912. https://doi.org/10.1155/2022/3314912.
  • Nandini S, Natanasabapathy V, Shivanna S. Effect of various chemicals as solvents on the dissolution of set white mineral trioxide aggregate: An in vitro study. J Endod. 2010;36(1):135-138. https://doi.org/10.1016/j.joen.2009.09.005.
  • Kogan P, He J, Glickman GN, Watanabe I. The effects of various additives on setting properties of MTA. J Endod. 2006;32(6):569-572. https://doi.org/10.1016/j.joen.2005.08.006.
  • Alazrag MA, Abu-Seida AM, El-Batouty KM, El Ashry SH. Marginal adaptation, solubility and biocompatibility of TheraCal LC compared with MTA-angelus and biodentine as a furcation perforation repair material. BMC Oral Health 2020;20(1):298. https://doi.org/10.1186/s12903-020-01289-y.
  • Quintana RM, Jardine AP, Grechi TR, Grazziotin-Soares R, Ardenghi DM, Scarparo RK, Grecca FS, Kopper PMP. Bone tissue reaction, setting time, solubility, and pH of root repair materials. Clin Oral Investig. 2019;23(3):1359-1366. https://doi.org/10.1007/s00784-018-2564-1.
  • Kollmuss M, Preis CE, Kist S, Hickel R, Huth KC. Differences in physical characteristics and sealing ability of three tricalcium silicate-based cements used as root-end-filling materials. Am J Dent. 2017;30(4):185-189.
  • Jain P, Nanda Z, Deore R, Gandhi A. Effect of acidic environment and intracanal medicament on push-out bond strength of biodentine and mineral trioxide aggregate plus: an in vitro study. Med Pharm Rep. 2019;92(3):277-281. https://doi.org/10.15386/cjmed-1057.
  • Shie MY, Huang TH, Kao CT, Huang CH, Ding SJ. The effect of a physiologic solution pH on properties of white mineral trioxide aggregate. J Endod. 2009;35(1):98-101. https://doi.org/10.1016/j.joen.2008.09.015
  • Rodríguez-Lozano FJ, Collado-González M, López-García S, García-Bernal D, Moraleda JM, Lozano A, Forner L, Murcia L, Oñate-Sánchez RE. Evaluation of changes in ion release and biological properties of NeoMTA-Plus and Endocem-MTA exposed to an acidic environment. Int Endod J. 2019;52(8):1196-1209. https://doi.org/10.1111/iej.13107.
  • Butt N, Talwar S. In-vitro evaluation of various solvents for retrieval of mineral trioxide aggregate and their effect on microhardness of dentin. J Conserv Dent. 2013;16(3):199-202. https://doi.org/10.4103/0972-0707.111313.
  • Malhotra N, Agarwal A, Mala K. Mineral trioxide aggregate: A review of physical properties. Compend Contin Educ Dent. 2013;34(2): e25-32.
  • Gokturk H, Ozkocak I. The effect of different chelators on the dislodgement resistance of MTA Repair HP, MTA Angelus, and MTA Flow. Odontology 2022;110(1):20-26. https://doi.org/10.1007/s10266-021-00627-y.
  • Lee YL, Lin FH, Wang WH, Ritchie HH, Lan WH, Lin CP. Effects of EDTA on the hydration mechanism of mineral trioxide aggregate. J Dent Res. 2007;86(6):534-8. https://doi.org/10.1177/154405910708600609.
  • Eren SK, Örs SA, Aksel H, Canay Ş, Karasan D. Effect of irrigants on the color stability, solubility, and surface characteristics of calcium-silicate based cements. Restor Dent Endod. 2022;47(1):e10. https://doi.org/10.5395/rde.2022.47.e10.
  • Ha WN, Kahler B, Walsh LJ. Clinical manipulation of mineral trioxide aggregate: lessons from the construction industry and their relevance to clinical practice. J Can Dent Assoc. 2015;81:f4.
  • Rossi-Fedele G, Doğramaci EJ, Guastalli AR, Steier L, de Figueiredo JA. Antagonistic interactions between sodium hypochlorite, chlorhexidine, EDTA, and citric acid. J Endod. 2012;38(4):426-31. https://doi.org/10.1016/j.joen.2012.01.006.
  • Ari H, Erdemir A, Belli S. Evaluation of the effect of endodontic irrigation solutions on the microhardness and the roughness of root canal dentin. J Endod. 2004;30(11):792-5. https://doi.org/10.1097/01.don.0000128747.89857.59.
  • Namazikhah MS, Nekoofar MH, Sheykhrezae MS, Salariyeh S, Hayes SJ, Bryant ST, Mohammadi MM, Dummer PM. The effect of pH on surface hardness and microstructure of mineral trioxide aggregate. Int Endod J. 2008;41(2):108-16. https://doi.org/10.1111/j.1365-2591.2007.01325.x.
  • Bolhari B, Nekoofar MH, Sharifian M, Ghabrai S, Meraji N, Dummer PM. Acid and microhardness of mineral trioxide aggregate and mineral trioxide aggregate-like materials. J Endod. 2014;40(3):432-5. https://doi.org/10.1016/j.joen.2013.10.014.
  • Wang Z, Ma J, Shen Y, Haapasalo M. Acidic pH weakens the microhardness and microstructure of three tricalcium silicate materials. Int Endod J. 2015;48(4):323-32. https://doi.org/10.1111/iej.12318.
  • Chhabra N, Parolia A. Effect of various acid solutions as an aid in removing the orthomta-based root canal filling. Materials (Basel). 2023;16(13):4535. https://doi.org/10.3390/ma16134535.
  • Gharechahi M, Moradi S, Nasirnia S, Peighoun M. Investigation of the effect of hydrochloric acid with different concentrations on mineral trioxide aggregate plug and dentin. Dent Res J (Isfahan). 2023;20(1):61.
  • Shokouhinejad N, Jafargholizadeh L, Khoshkhounejad M, Nekoofar MH, Raoof M. Surface microhardness of three thicknesses of mineral trioxide aggregate in different setting conditions. Restor Dent Endod. 2014;39(4):253-7. https://doi.org/10.5395/rde.2014.39.4.253.
  • 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(12):1815-1818. https://doi.org/10.1016/j.joen.2016.08.020.
  • Loushine BA, Bryan TE, Looney SW, Gillen BM, Loushine RJ, Weller RN, Pashley DH, Tay FR. Setting properties and cytotoxicity evaluation of a premixed bioceramic root canal sealer. J Endod. 2011;37(5):673-7. https://doi.org/10.1016/j.joen.2011.01.003.
  • Persson C, Engqvist H. Premixed calcium silicate cement for endodontic applications: injectability, setting time and radiopacity. Biomatter 2011;1(1):76-80. https://doi.org/10.4161/biom.1.1.16735.
  • Hachmeister DR, Schindler WG, Walker WA 3rd, Thomas DD. The sealing ability and retention characteristics of mineral trioxide aggregate in a model of apexification. J Endod. 2002;28(5):386-90. https://doi.org/10.1097/00004770-200205000-00010.
  • Saghiri MA, Lotfi M, Joupari MD, Aeinehchi M, Saghiri AM. Effects of storage temperature on surface hardness, microstructure, and phase formation of white mineral trioxide aggregate. J Endod. 2010;36(8):1414-8. https://doi.org/10.1016/j.joen.2010.04.022.
  • Gharechahi M, Moradi S, Nasirnia S, Peighoun M. Investigation of the effect of hydrochloric acid with different concentrations on mineral trioxide aggregate plug and dentin. Dent Res J (Isfahan). 2023;20(1):61.
  • Yan P, Peng B, Fan B, Fan M, Bian Z. The effects of sodium hypochlorite (5.25%), chlorhexidine (2%), and Glyde File Prep on the bond strength of MTA-dentin. J Endod. 2006;32(1):58-60. https://doi.org/10.1016/j.joen.2005.10.016.
  • Shojaee NS, Adl A, Sobhnamayan F, Khademi A, Hamedi M. In vitro evaluation of different solvents for retrieval of mineral trioxide aggregate and calcium-enriched mixture. Iran Endod J. 2016;11(3):223-227. https://doi.org/10.7508/iej.2016.03.015.
  • Gómez-Delgado M, Camps-Font O, Luz L, Sanz D, Mercade M. Update on citric acid use in endodontic treatment: a systematic review. Odontology. 2023;111(1):1-19. https://doi.org/10.1007/s10266-022-00744-2.
  • Bayraktar K, Basturk FB, Turkaydin D, Gunday M. Long-term effect of acidic pH on the surface microhardness of ProRoot mineral trioxide aggregate, biodentine, and total fill root repair material putty. Dent Res J (Isfahan). 2021;18(1):2.
  • Slutzky-Goldberg I, Liberman R, Heling I. The effect of instrumentation with two different file types, each with 2.5% NaOCl irrigation on the microhardness of root dentin. J Endod. 2002;28(4):311-312. https://doi.org/10.1097/00004770-200204000-00012.
  • Calt S, Serper A. Time-dependent effects of EDTA on dentin structures. J Endod. 2002;28(1):17-19. https://doi.org/10.1097/00004770-200201000-00004.
  • Eldeniz AU, Erdemir A, Belli S. Effect of EDTA and citric acid solutions on the microhardness and the roughness of human root canal dentin. J Endod. 2005;31(2):107-110. https://doi.org/10.1097/01.don.0000136212.53475.ad.
  • Cruz-Filho AM, Sousa-Neto MD, Savioli RN, Silva RG, Vansan LP, Pécora JD. Effect of chelating solutions on the microhardness of root canal lumen dentin. J Endod. 2011;37(3):358-362. https://doi.org/10.1016/j.joen.2010.12.001.

Evaluation of the Effects of Different Irrigation Solutions on MTA and Dentin Microhardness

Year 2025, Volume: 15 Issue: 3, 524 - 530, 30.09.2025
https://doi.org/10.33808/clinexphealthsci.1543863

Abstract

Objectives: The objective of this study was to compare the dissolution effects of different chemical solutions, which are commonly used as root canal irrigants, on partially or fully set mineral trioxide aggregate (MTA). Furthermore, the impact of these solutions on dentin microhardness was also assessed.
Methods: In this study, a total of 80 extracted single-rooted human teeth were utilized. The roots of the teeth were bisected transversely into slices of 6 mm in length. MTA (NeoPUTTY, Avalon Biomed, USA) was applied in layers of 4 mm in thickness within the cavities, sealed with moist cotton, and stored at 37°C under 100% humidity for 24 hours and 21 days. Forty samples were tested at the 24-hour mark, and the remaining 40 samples were tested at the 21-day mark. The samples were randomly allocated to one of five experimental groups: 17% EDTA, 5.25% NaOCl, 2% CHX, 40% citric acid, and saline (control). The Vickers microhardness test was employed to ascertain the hardness values of the MTA and dentin surfaces that had been exposed to the chemical solutions for a period of 10 minutes. Statistical analyses were performed using MedCalc® v19.7.2 (MedCalc Software Ltd, Belgium), with a significance level set at 0.05.
Results: It was observed that the application of EDTA, NaOCl, CHX, and citric acid solutions resulted in statistically significant reductions in the microhardness of both NeoPUTTY MTA (respectively p= .012; p= .012, p= .010; p= .012) and dentin (respectively p= .011; p= .012; p= .012; p= .012). The citric acid group exhibited the most pronounced reduction of MTA (respectively 52.2±1.6; -39±0.9). In contrast, no statistically significant change in microhardness was observed in the control group treated with saline (for dentin p= .311; for MTA p= .415). The impact of the solutions on MTA at 21 days was found to be less pronounced than that observed at 1 day (p= .012).
Conclusion: The results of this study indicate that the application of citric acid solutions to MTA results in a statistically significant reduction in microhardness. The highest concentration of citric acid was observed to be more effective than the other solutions in the dissolution of MTA. However, these solutions were also found to significantly reduce the microhardness of dentin. It would be advisable to select solutions that facilitate the removal of MTA without damaging the dentin tissue.

References

  • Torabinejad M, Watson TF, Pitt Ford TR. Sealing ability of a mineral trioxide aggregate when used as a root end filling material. J Endod. 1993;19(12):591-595. https://doi.org/10.1016/S0099-2399(06)80271-2.
  • Shahi S, Fakhri E, Yavari H, Maleki Dizaj S, Salatin S, Khezri K. Portland cement: An overview as a root repair material. Biomed Res Int. 2022;6:3314912. https://doi.org/10.1155/2022/3314912.
  • Nandini S, Natanasabapathy V, Shivanna S. Effect of various chemicals as solvents on the dissolution of set white mineral trioxide aggregate: An in vitro study. J Endod. 2010;36(1):135-138. https://doi.org/10.1016/j.joen.2009.09.005.
  • Kogan P, He J, Glickman GN, Watanabe I. The effects of various additives on setting properties of MTA. J Endod. 2006;32(6):569-572. https://doi.org/10.1016/j.joen.2005.08.006.
  • Alazrag MA, Abu-Seida AM, El-Batouty KM, El Ashry SH. Marginal adaptation, solubility and biocompatibility of TheraCal LC compared with MTA-angelus and biodentine as a furcation perforation repair material. BMC Oral Health 2020;20(1):298. https://doi.org/10.1186/s12903-020-01289-y.
  • Quintana RM, Jardine AP, Grechi TR, Grazziotin-Soares R, Ardenghi DM, Scarparo RK, Grecca FS, Kopper PMP. Bone tissue reaction, setting time, solubility, and pH of root repair materials. Clin Oral Investig. 2019;23(3):1359-1366. https://doi.org/10.1007/s00784-018-2564-1.
  • Kollmuss M, Preis CE, Kist S, Hickel R, Huth KC. Differences in physical characteristics and sealing ability of three tricalcium silicate-based cements used as root-end-filling materials. Am J Dent. 2017;30(4):185-189.
  • Jain P, Nanda Z, Deore R, Gandhi A. Effect of acidic environment and intracanal medicament on push-out bond strength of biodentine and mineral trioxide aggregate plus: an in vitro study. Med Pharm Rep. 2019;92(3):277-281. https://doi.org/10.15386/cjmed-1057.
  • Shie MY, Huang TH, Kao CT, Huang CH, Ding SJ. The effect of a physiologic solution pH on properties of white mineral trioxide aggregate. J Endod. 2009;35(1):98-101. https://doi.org/10.1016/j.joen.2008.09.015
  • Rodríguez-Lozano FJ, Collado-González M, López-García S, García-Bernal D, Moraleda JM, Lozano A, Forner L, Murcia L, Oñate-Sánchez RE. Evaluation of changes in ion release and biological properties of NeoMTA-Plus and Endocem-MTA exposed to an acidic environment. Int Endod J. 2019;52(8):1196-1209. https://doi.org/10.1111/iej.13107.
  • Butt N, Talwar S. In-vitro evaluation of various solvents for retrieval of mineral trioxide aggregate and their effect on microhardness of dentin. J Conserv Dent. 2013;16(3):199-202. https://doi.org/10.4103/0972-0707.111313.
  • Malhotra N, Agarwal A, Mala K. Mineral trioxide aggregate: A review of physical properties. Compend Contin Educ Dent. 2013;34(2): e25-32.
  • Gokturk H, Ozkocak I. The effect of different chelators on the dislodgement resistance of MTA Repair HP, MTA Angelus, and MTA Flow. Odontology 2022;110(1):20-26. https://doi.org/10.1007/s10266-021-00627-y.
  • Lee YL, Lin FH, Wang WH, Ritchie HH, Lan WH, Lin CP. Effects of EDTA on the hydration mechanism of mineral trioxide aggregate. J Dent Res. 2007;86(6):534-8. https://doi.org/10.1177/154405910708600609.
  • Eren SK, Örs SA, Aksel H, Canay Ş, Karasan D. Effect of irrigants on the color stability, solubility, and surface characteristics of calcium-silicate based cements. Restor Dent Endod. 2022;47(1):e10. https://doi.org/10.5395/rde.2022.47.e10.
  • Ha WN, Kahler B, Walsh LJ. Clinical manipulation of mineral trioxide aggregate: lessons from the construction industry and their relevance to clinical practice. J Can Dent Assoc. 2015;81:f4.
  • Rossi-Fedele G, Doğramaci EJ, Guastalli AR, Steier L, de Figueiredo JA. Antagonistic interactions between sodium hypochlorite, chlorhexidine, EDTA, and citric acid. J Endod. 2012;38(4):426-31. https://doi.org/10.1016/j.joen.2012.01.006.
  • Ari H, Erdemir A, Belli S. Evaluation of the effect of endodontic irrigation solutions on the microhardness and the roughness of root canal dentin. J Endod. 2004;30(11):792-5. https://doi.org/10.1097/01.don.0000128747.89857.59.
  • Namazikhah MS, Nekoofar MH, Sheykhrezae MS, Salariyeh S, Hayes SJ, Bryant ST, Mohammadi MM, Dummer PM. The effect of pH on surface hardness and microstructure of mineral trioxide aggregate. Int Endod J. 2008;41(2):108-16. https://doi.org/10.1111/j.1365-2591.2007.01325.x.
  • Bolhari B, Nekoofar MH, Sharifian M, Ghabrai S, Meraji N, Dummer PM. Acid and microhardness of mineral trioxide aggregate and mineral trioxide aggregate-like materials. J Endod. 2014;40(3):432-5. https://doi.org/10.1016/j.joen.2013.10.014.
  • Wang Z, Ma J, Shen Y, Haapasalo M. Acidic pH weakens the microhardness and microstructure of three tricalcium silicate materials. Int Endod J. 2015;48(4):323-32. https://doi.org/10.1111/iej.12318.
  • Chhabra N, Parolia A. Effect of various acid solutions as an aid in removing the orthomta-based root canal filling. Materials (Basel). 2023;16(13):4535. https://doi.org/10.3390/ma16134535.
  • Gharechahi M, Moradi S, Nasirnia S, Peighoun M. Investigation of the effect of hydrochloric acid with different concentrations on mineral trioxide aggregate plug and dentin. Dent Res J (Isfahan). 2023;20(1):61.
  • Shokouhinejad N, Jafargholizadeh L, Khoshkhounejad M, Nekoofar MH, Raoof M. Surface microhardness of three thicknesses of mineral trioxide aggregate in different setting conditions. Restor Dent Endod. 2014;39(4):253-7. https://doi.org/10.5395/rde.2014.39.4.253.
  • 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(12):1815-1818. https://doi.org/10.1016/j.joen.2016.08.020.
  • Loushine BA, Bryan TE, Looney SW, Gillen BM, Loushine RJ, Weller RN, Pashley DH, Tay FR. Setting properties and cytotoxicity evaluation of a premixed bioceramic root canal sealer. J Endod. 2011;37(5):673-7. https://doi.org/10.1016/j.joen.2011.01.003.
  • Persson C, Engqvist H. Premixed calcium silicate cement for endodontic applications: injectability, setting time and radiopacity. Biomatter 2011;1(1):76-80. https://doi.org/10.4161/biom.1.1.16735.
  • Hachmeister DR, Schindler WG, Walker WA 3rd, Thomas DD. The sealing ability and retention characteristics of mineral trioxide aggregate in a model of apexification. J Endod. 2002;28(5):386-90. https://doi.org/10.1097/00004770-200205000-00010.
  • Saghiri MA, Lotfi M, Joupari MD, Aeinehchi M, Saghiri AM. Effects of storage temperature on surface hardness, microstructure, and phase formation of white mineral trioxide aggregate. J Endod. 2010;36(8):1414-8. https://doi.org/10.1016/j.joen.2010.04.022.
  • Gharechahi M, Moradi S, Nasirnia S, Peighoun M. Investigation of the effect of hydrochloric acid with different concentrations on mineral trioxide aggregate plug and dentin. Dent Res J (Isfahan). 2023;20(1):61.
  • Yan P, Peng B, Fan B, Fan M, Bian Z. The effects of sodium hypochlorite (5.25%), chlorhexidine (2%), and Glyde File Prep on the bond strength of MTA-dentin. J Endod. 2006;32(1):58-60. https://doi.org/10.1016/j.joen.2005.10.016.
  • Shojaee NS, Adl A, Sobhnamayan F, Khademi A, Hamedi M. In vitro evaluation of different solvents for retrieval of mineral trioxide aggregate and calcium-enriched mixture. Iran Endod J. 2016;11(3):223-227. https://doi.org/10.7508/iej.2016.03.015.
  • Gómez-Delgado M, Camps-Font O, Luz L, Sanz D, Mercade M. Update on citric acid use in endodontic treatment: a systematic review. Odontology. 2023;111(1):1-19. https://doi.org/10.1007/s10266-022-00744-2.
  • Bayraktar K, Basturk FB, Turkaydin D, Gunday M. Long-term effect of acidic pH on the surface microhardness of ProRoot mineral trioxide aggregate, biodentine, and total fill root repair material putty. Dent Res J (Isfahan). 2021;18(1):2.
  • Slutzky-Goldberg I, Liberman R, Heling I. The effect of instrumentation with two different file types, each with 2.5% NaOCl irrigation on the microhardness of root dentin. J Endod. 2002;28(4):311-312. https://doi.org/10.1097/00004770-200204000-00012.
  • Calt S, Serper A. Time-dependent effects of EDTA on dentin structures. J Endod. 2002;28(1):17-19. https://doi.org/10.1097/00004770-200201000-00004.
  • Eldeniz AU, Erdemir A, Belli S. Effect of EDTA and citric acid solutions on the microhardness and the roughness of human root canal dentin. J Endod. 2005;31(2):107-110. https://doi.org/10.1097/01.don.0000136212.53475.ad.
  • Cruz-Filho AM, Sousa-Neto MD, Savioli RN, Silva RG, Vansan LP, Pécora JD. Effect of chelating solutions on the microhardness of root canal lumen dentin. J Endod. 2011;37(3):358-362. https://doi.org/10.1016/j.joen.2010.12.001.
There are 38 citations in total.

Details

Primary Language English
Subjects Endodontics
Journal Section Articles
Authors

Gokay Buyukcolpan 0000-0002-7093-3880

İdil Özden 0000-0003-0838-4355

Hesna Sazak Öveçoğlu 0000-0003-4709-422X

Early Pub Date September 30, 2025
Publication Date September 30, 2025
Submission Date September 5, 2024
Acceptance Date August 22, 2025
Published in Issue Year 2025 Volume: 15 Issue: 3

Cite

APA Buyukcolpan, G., Özden, İ., & Sazak Öveçoğlu, H. (2025). Evaluation of the Effects of Different Irrigation Solutions on MTA and Dentin Microhardness. Clinical and Experimental Health Sciences, 15(3), 524-530. https://doi.org/10.33808/clinexphealthsci.1543863
AMA Buyukcolpan G, Özden İ, Sazak Öveçoğlu H. Evaluation of the Effects of Different Irrigation Solutions on MTA and Dentin Microhardness. Clinical and Experimental Health Sciences. September 2025;15(3):524-530. doi:10.33808/clinexphealthsci.1543863
Chicago Buyukcolpan, Gokay, İdil Özden, and Hesna Sazak Öveçoğlu. “Evaluation of the Effects of Different Irrigation Solutions on MTA and Dentin Microhardness”. Clinical and Experimental Health Sciences 15, no. 3 (September 2025): 524-30. https://doi.org/10.33808/clinexphealthsci.1543863.
EndNote Buyukcolpan G, Özden İ, Sazak Öveçoğlu H (September 1, 2025) Evaluation of the Effects of Different Irrigation Solutions on MTA and Dentin Microhardness. Clinical and Experimental Health Sciences 15 3 524–530.
IEEE G. Buyukcolpan, İ. Özden, and H. Sazak Öveçoğlu, “Evaluation of the Effects of Different Irrigation Solutions on MTA and Dentin Microhardness”, Clinical and Experimental Health Sciences, vol. 15, no. 3, pp. 524–530, 2025, doi: 10.33808/clinexphealthsci.1543863.
ISNAD Buyukcolpan, Gokay et al. “Evaluation of the Effects of Different Irrigation Solutions on MTA and Dentin Microhardness”. Clinical and Experimental Health Sciences 15/3 (September2025), 524-530. https://doi.org/10.33808/clinexphealthsci.1543863.
JAMA Buyukcolpan G, Özden İ, Sazak Öveçoğlu H. Evaluation of the Effects of Different Irrigation Solutions on MTA and Dentin Microhardness. Clinical and Experimental Health Sciences. 2025;15:524–530.
MLA Buyukcolpan, Gokay et al. “Evaluation of the Effects of Different Irrigation Solutions on MTA and Dentin Microhardness”. Clinical and Experimental Health Sciences, vol. 15, no. 3, 2025, pp. 524-30, doi:10.33808/clinexphealthsci.1543863.
Vancouver Buyukcolpan G, Özden İ, Sazak Öveçoğlu H. Evaluation of the Effects of Different Irrigation Solutions on MTA and Dentin Microhardness. Clinical and Experimental Health Sciences. 2025;15(3):524-30.

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