Skip to main content
Top
Published in: BMC Oral Health 1/2021

Open Access 01-12-2021 | Research

Comparative evaluation of the effect of cold ceramic and MTA-Angelus on cell viability, attachment and differentiation of dental pulp stem cells and periodontal ligament fibroblasts: an in vitro study

Authors: Sedigheh Khedmat, Pegah Sarraf, Ehsan Seyedjafari, Parisa Sanaei-rad, Faranak Noori

Published in: BMC Oral Health | Issue 1/2021

Login to get access

Abstract

Background

Biocompatibility and induction of mineralized tissue formation are the properties expected from a material used in vital pulp therapy and repair of perforations. Cold ceramic (SJM, Iran; CC) is a newly introduced calcium silicate-based cement for above mentioned therapeutic applications. This in-vitro study aimed to compare the effect of CC and White MTA-Angelus (MTA) on cell viability, attachment, odontogenic differentiation, and calcification potential of human dental pulp stem cells (DPSCs) and periodontal ligament fibroblasts (PDLFs).

Methods

Cell viability of DPSCs and PDLFs was assessed using MTT on days 1, 3, 7, and 14 (n = 9) in contact with freshly mixed and set states of CC and MTA. Field emission scanning electron micrographs (FESEM) were taken to evaluate cell-bioceramic interaction (n = 6). Gene expression levels of osteo/odontogenic markers (Dentin sialophosphoprotein, Dentin matrix protein 1, Collagen type I alpha 1, and Alkaline phosphatase (DSPP, DMP1, COL 1A1, and ALP, respectively) (n = 8) were assessed using qrt-PCR. ALP enzymatic activity was evaluated to assess the mineralization potential. A two-way ANOVA test was applied, and p < 0.05 was considered to be statistically significant.

Results

The effect of freshly mixed and set MTA and CC on the survival of DPSCs and PDLFs in all study groups was statistically similar and comparable to the positive control group (p > 0.05); the only exception was for the viability of PDLFs in contact with freshly mixed cements on day 1, showing a more significant cytotoxic effect compared to the control and the set state of materials (p < 0.05). PDLFs attached well on CC and MTA. The spread and pseudopodium formation of the cells increased on both samples from day 1 to day 14. Contact of MTA and CC with DPSCs similarly increased expression of all dentinogenesis markers studied on days 7 and 14 compared to the control group (p < 0.001), except for DSPP expression on day 7 (p = 0.46 and p = 0.99 for MTA and CC, respectively).

Conclusions

Within the limitation of this in-vitro study, cold ceramic and MTA-Angelus showed high biocompatibility and induced increased expression of osteo/dentinogenic markers. Therefore, cold ceramic can be a suitable material for vital pulp therapy and the repair of root perforations.
Appendix
Available only for authorised users
Literature
1.
go back to reference Ber BS, Hatton JF, Stewart GP. Chemical modification of proroot mta to improve handling characteristics and decrease setting time. J Endod. 2007;33(10):1231–4.CrossRef Ber BS, Hatton JF, Stewart GP. Chemical modification of proroot mta to improve handling characteristics and decrease setting time. J Endod. 2007;33(10):1231–4.CrossRef
2.
go back to reference Ahmed HMA, Luddin N, Kannan TP, Mokhtar KI, Ahmad A. Cell attachment properties of portland cement-based endodontic materials: biological and methodological considerations. J Endod. 2014;40(10):1517–23.CrossRef Ahmed HMA, Luddin N, Kannan TP, Mokhtar KI, Ahmad A. Cell attachment properties of portland cement-based endodontic materials: biological and methodological considerations. J Endod. 2014;40(10):1517–23.CrossRef
3.
go back to reference Torabinejad M, Chivian N. Clinical applications of mineral trioxide aggregate. J Endod. 1999;25(3):197–205.CrossRef Torabinejad M, Chivian N. Clinical applications of mineral trioxide aggregate. J Endod. 1999;25(3):197–205.CrossRef
4.
go back to reference Huang TH, Shie MY, Kao CT, Ding SJ. The effect of setting accelerator on properties of mineral trioxide aggregate. J Endod. 2008;34(5):590–3.CrossRef Huang TH, Shie MY, Kao CT, Ding SJ. The effect of setting accelerator on properties of mineral trioxide aggregate. J Endod. 2008;34(5):590–3.CrossRef
5.
go back to reference Ha WN, Nicholson T, Kahler B, Walsh LJ. Mineral trioxide aggregate—a review of properties and testing methodologies. Materials. 2017;10(11):1261.CrossRef Ha WN, Nicholson T, Kahler B, Walsh LJ. Mineral trioxide aggregate—a review of properties and testing methodologies. Materials. 2017;10(11):1261.CrossRef
6.
go back to reference Parirokh M, Farzaneh S, Hallajmofrad AR. Conservative management of unset mineral trioxide aggregate root-end filling: a case report. Iran Endod J. 2016;11(3):241–5.PubMedPubMedCentral Parirokh M, Farzaneh S, Hallajmofrad AR. Conservative management of unset mineral trioxide aggregate root-end filling: a case report. Iran Endod J. 2016;11(3):241–5.PubMedPubMedCentral
7.
go back to reference Bortoluzzi EA, da Silveira Teixeira C, Broon NJ, Consolaro A, Pinheiro TN, da Fonseca Roberti Garcia L, et al. Tissue response to white mineral aggregate-based cement containing barium sulfate as alternative radiopacifier: a randomized controlled animal study. Microsc Res Tech. 2021;84(4):705–11.CrossRef Bortoluzzi EA, da Silveira Teixeira C, Broon NJ, Consolaro A, Pinheiro TN, da Fonseca Roberti Garcia L, et al. Tissue response to white mineral aggregate-based cement containing barium sulfate as alternative radiopacifier: a randomized controlled animal study. Microsc Res Tech. 2021;84(4):705–11.CrossRef
8.
go back to reference Modaresi J, Hemati HR. The cold ceramic material. Dent Res J. 2018;15(2):85–8.CrossRef Modaresi J, Hemati HR. The cold ceramic material. Dent Res J. 2018;15(2):85–8.CrossRef
9.
go back to reference Hasheminia SM, Nejad SL, Dianat O, Modaresi J, Mahjour F. Comparing the sealing properties of mineral trioxide aggregate and an experimental ceramic based root end filling material in different environments. Indian J Dent Res. 2013;24(4):474–7.CrossRef Hasheminia SM, Nejad SL, Dianat O, Modaresi J, Mahjour F. Comparing the sealing properties of mineral trioxide aggregate and an experimental ceramic based root end filling material in different environments. Indian J Dent Res. 2013;24(4):474–7.CrossRef
10.
go back to reference Modaresi J, Yavari SAS, Dianat SO, Shahrabi S. A comparison of tissue reaction to MTA and an experimental root-end restorative material in rats. Aust Endod J. 2005;31(2):69–72.CrossRef Modaresi J, Yavari SAS, Dianat SO, Shahrabi S. A comparison of tissue reaction to MTA and an experimental root-end restorative material in rats. Aust Endod J. 2005;31(2):69–72.CrossRef
11.
go back to reference Wallin RF, Arscott E. A practical guide to ISO 10993-5: cytotoxicity. Med Device Diagnos Ind. 1998;20:96–8. Wallin RF, Arscott E. A practical guide to ISO 10993-5: cytotoxicity. Med Device Diagnos Ind. 1998;20:96–8.
12.
go back to reference Standardization IOf. ISO10993. Biological evaluation of medical devices. Geneva. 2009. Standardization IOf. ISO10993. Biological evaluation of medical devices. Geneva. 2009.
13.
go back to reference Petrović V, Opačić-Galić V, Živković S, Nikolić B, Danilović V, Miletić V, et al. Biocompatibility of new nanostructural materials based on active silicate systems and hydroxyapatite: in vitro and in vivo study. Int Endod J. 2015;48(10):966–75.CrossRef Petrović V, Opačić-Galić V, Živković S, Nikolić B, Danilović V, Miletić V, et al. Biocompatibility of new nanostructural materials based on active silicate systems and hydroxyapatite: in vitro and in vivo study. Int Endod J. 2015;48(10):966–75.CrossRef
14.
go back to reference AlAnezi AZ, Jiang J, Safavi KE, Spangberg LS, Zhu Q. Cytotoxicity evaluation of endosequence root repair material. Oral Surg Oral Med Oral Pathol Oral Radiol Endod. 2010;109(3):e122–5.CrossRef AlAnezi AZ, Jiang J, Safavi KE, Spangberg LS, Zhu Q. Cytotoxicity evaluation of endosequence root repair material. Oral Surg Oral Med Oral Pathol Oral Radiol Endod. 2010;109(3):e122–5.CrossRef
15.
go back to reference Khedmat S, Dehghan S, Hadjati J, Masoumi F, Nekoofar MH, Dummer PMH. In vitro cytotoxicity of four calcium silicate-based endodontic cements on human monocytes, a colorimetric MTT assay. Restor Dent Endod. 2014;39(3):149–54.CrossRef Khedmat S, Dehghan S, Hadjati J, Masoumi F, Nekoofar MH, Dummer PMH. In vitro cytotoxicity of four calcium silicate-based endodontic cements on human monocytes, a colorimetric MTT assay. Restor Dent Endod. 2014;39(3):149–54.CrossRef
16.
go back to reference Tomás-Catalá C, Collado-González M, García-Bernal D, Oñate-Sánchez R, Forner L, Llena C, et al. Comparative analysis of the biological effects of the endodontic bioactive cements MTA-Angelus, MTA Repair HP and NeoMTA Plus on human dental pulp stem cells. Int Endod J. 2017;50:e63–72.CrossRef Tomás-Catalá C, Collado-González M, García-Bernal D, Oñate-Sánchez R, Forner L, Llena C, et al. Comparative analysis of the biological effects of the endodontic bioactive cements MTA-Angelus, MTA Repair HP and NeoMTA Plus on human dental pulp stem cells. Int Endod J. 2017;50:e63–72.CrossRef
17.
go back to reference Pintor A, Queiroz L, Barcelos R, Primo L, Maia L, Alves G. MTT versus other cell viability assays to evaluate the biocompatibility of root canal filling materials: a systematic review. Int Endod J. 2020;53(10):1348–73.CrossRef Pintor A, Queiroz L, Barcelos R, Primo L, Maia L, Alves G. MTT versus other cell viability assays to evaluate the biocompatibility of root canal filling materials: a systematic review. Int Endod J. 2020;53(10):1348–73.CrossRef
18.
go back to reference Damas BA, Wheater MA, Bringas JS, Hoen MM. Cytotoxicity comparison of mineral trioxide aggregates and endosequence bioceramic root repair materials. J Endod. 2011;37(3):372–5.CrossRef Damas BA, Wheater MA, Bringas JS, Hoen MM. Cytotoxicity comparison of mineral trioxide aggregates and endosequence bioceramic root repair materials. J Endod. 2011;37(3):372–5.CrossRef
19.
go back to reference de Oliveira NG, de Souza Araújo PR, da Silveira MT, Sobral APV, de Vasconcelos CM. Comparison of the biocompatibility of calcium silicate-based materials to mineral trioxide aggregate: systematic review. Eur J Dent. 2018;12(02):317–26.CrossRef de Oliveira NG, de Souza Araújo PR, da Silveira MT, Sobral APV, de Vasconcelos CM. Comparison of the biocompatibility of calcium silicate-based materials to mineral trioxide aggregate: systematic review. Eur J Dent. 2018;12(02):317–26.CrossRef
20.
go back to reference Koulaouzidou EA, Economides N, Beltes P, Geromichalos G, Papazisis K. In vitro evaluation of the cytotoxicity of ProRoot MTA and MTA Angelus. J Oral Sci. 2008;50(4):397–402.CrossRef Koulaouzidou EA, Economides N, Beltes P, Geromichalos G, Papazisis K. In vitro evaluation of the cytotoxicity of ProRoot MTA and MTA Angelus. J Oral Sci. 2008;50(4):397–402.CrossRef
21.
go back to reference Sanz JL, Guerrero-Gironés J, Pecci-Lloret MP, Pecci-Lloret MR, Melo M. Biological interactions between calcium silicate-based endodontic biomaterials and periodontal ligament stem cells: a systematic review of in vitro studies. Int Endod J. 2021;54:2025–43.CrossRef Sanz JL, Guerrero-Gironés J, Pecci-Lloret MP, Pecci-Lloret MR, Melo M. Biological interactions between calcium silicate-based endodontic biomaterials and periodontal ligament stem cells: a systematic review of in vitro studies. Int Endod J. 2021;54:2025–43.CrossRef
22.
go back to reference Maru V, Dixit U, Patil RSB, Parekh R. Cytotoxicity and bioactivity of mineral trioxide aggregate and bioactive endodontic type cements: a systematic review. Int J Clin Pediatr Dent. 2021;14(1):30–9.CrossRef Maru V, Dixit U, Patil RSB, Parekh R. Cytotoxicity and bioactivity of mineral trioxide aggregate and bioactive endodontic type cements: a systematic review. Int J Clin Pediatr Dent. 2021;14(1):30–9.CrossRef
23.
go back to reference Zhang H-Y, Liu R, Xing Y-J, Xu P, Li Y, Li C-J. Effects of hypoxia on the proliferation, mineralization and ultrastructure of human periodontal ligament fibroblasts in vitro. Exp Ther Med. 2013;6(6):1553–9.CrossRef Zhang H-Y, Liu R, Xing Y-J, Xu P, Li Y, Li C-J. Effects of hypoxia on the proliferation, mineralization and ultrastructure of human periodontal ligament fibroblasts in vitro. Exp Ther Med. 2013;6(6):1553–9.CrossRef
24.
go back to reference Bae S, Kang B, Lee H, Luu H, Mullins E, Kingsley K. Characterization of dental pulp stem cell responses to functional biomaterials including mineralized trioxide aggregates. J Funct Biomater. 2021;12(1):15.CrossRef Bae S, Kang B, Lee H, Luu H, Mullins E, Kingsley K. Characterization of dental pulp stem cell responses to functional biomaterials including mineralized trioxide aggregates. J Funct Biomater. 2021;12(1):15.CrossRef
25.
go back to reference 10993-5. I. Biological evaluation of medical devices—part 5: test for in vitro cytotoxicity. International Organization for Standardization. 2009. 10993-5. I. Biological evaluation of medical devices—part 5: test for in vitro cytotoxicity. International Organization for Standardization. 2009.
26.
go back to reference Anselme K, Bigerelle M. Modelling approach in cell/material interactions studies. Biomaterials. 2006;27(8):1187–99.CrossRef Anselme K, Bigerelle M. Modelling approach in cell/material interactions studies. Biomaterials. 2006;27(8):1187–99.CrossRef
27.
go back to reference Zareidoost A, Yousefpour M, Ghaseme B, Amanzadeh A. The relationship of surface roughness and cell response of chemical surface modification of titanium. J Mater Sci Mater Med. 2012;23(6):1479–88.CrossRef Zareidoost A, Yousefpour M, Ghaseme B, Amanzadeh A. The relationship of surface roughness and cell response of chemical surface modification of titanium. J Mater Sci Mater Med. 2012;23(6):1479–88.CrossRef
28.
go back to reference 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(3):387–92.CrossRef 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(3):387–92.CrossRef
29.
go back to reference Sequeira DB, Seabra CM, Palma PJ, Cardoso AL, Peça J, Santos JM. Effects of a new bioceramic material on human apical papilla cells. J Funct Biomater. 2018;9(4):74.CrossRef Sequeira DB, Seabra CM, Palma PJ, Cardoso AL, Peça J, Santos JM. Effects of a new bioceramic material on human apical papilla cells. J Funct Biomater. 2018;9(4):74.CrossRef
30.
go back to reference Haniastuti T, Susilowati H, Rinastiti M. Viability and alkaline phosphatase activity of human dental pulp cells after exposure to yellowfin tuna bone-derived hydroxyapatite in vitro. Int J Dent. 2020;2020:8857534.CrossRef Haniastuti T, Susilowati H, Rinastiti M. Viability and alkaline phosphatase activity of human dental pulp cells after exposure to yellowfin tuna bone-derived hydroxyapatite in vitro. Int J Dent. 2020;2020:8857534.CrossRef
31.
go back to reference Bortoluzzi EA, Niu LN, Palani CD, El-Awady AR, Hammond BD, Pei DD, et al. Cytotoxicity and osteogenic potential of silicate calcium cements as potential protective materials for pulpal revascularization. Dent Mater. 2015;31(12):1510–22.CrossRef Bortoluzzi EA, Niu LN, Palani CD, El-Awady AR, Hammond BD, Pei DD, et al. Cytotoxicity and osteogenic potential of silicate calcium cements as potential protective materials for pulpal revascularization. Dent Mater. 2015;31(12):1510–22.CrossRef
32.
go back to reference Seo M-S, Hwang K-G, Lee J, Kim H, Baek S-H. The effect of mineral trioxide aggregate on odontogenic differentiation in dental pulp stem cells. J Endod. 2013;39(2):242–8.CrossRef Seo M-S, Hwang K-G, Lee J, Kim H, Baek S-H. The effect of mineral trioxide aggregate on odontogenic differentiation in dental pulp stem cells. J Endod. 2013;39(2):242–8.CrossRef
33.
go back to reference Okabe T, Sakamoto M, Takeuchi H, Matsushima K. Effects of pH on mineralization ability of human dental pulp cells. J Endod. 2006;32(3):198–201.CrossRef Okabe T, Sakamoto M, Takeuchi H, Matsushima K. Effects of pH on mineralization ability of human dental pulp cells. J Endod. 2006;32(3):198–201.CrossRef
34.
go back to reference 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(11):1805–17.CrossRef 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(11):1805–17.CrossRef
35.
go back to reference Wongwatanasanti N, Jantarat J, Sritanaudomchai H, Hargreaves KM. Effect of bioceramic materials on proliferation and odontoblast differentiation of human stem cells from the apical papilla. J Endod. 2018;44(8):1270–5.CrossRef Wongwatanasanti N, Jantarat J, Sritanaudomchai H, Hargreaves KM. Effect of bioceramic materials on proliferation and odontoblast differentiation of human stem cells from the apical papilla. J Endod. 2018;44(8):1270–5.CrossRef
36.
go back to reference Parirokh M, Torabinejad M, Dummer P. Mineral trioxide aggregate and other bioactive endodontic cements: an updated overview–part I: vital pulp therapy. Int Endod J. 2018;51(2):177–205.CrossRef Parirokh M, Torabinejad M, Dummer P. Mineral trioxide aggregate and other bioactive endodontic cements: an updated overview–part I: vital pulp therapy. Int Endod J. 2018;51(2):177–205.CrossRef
Metadata
Title
Comparative evaluation of the effect of cold ceramic and MTA-Angelus on cell viability, attachment and differentiation of dental pulp stem cells and periodontal ligament fibroblasts: an in vitro study
Authors
Sedigheh Khedmat
Pegah Sarraf
Ehsan Seyedjafari
Parisa Sanaei-rad
Faranak Noori
Publication date
01-12-2021
Publisher
BioMed Central
Published in
BMC Oral Health / Issue 1/2021
Electronic ISSN: 1472-6831
DOI
https://doi.org/10.1186/s12903-021-01979-1

Other articles of this Issue 1/2021

BMC Oral Health 1/2021 Go to the issue