TY - JOUR
T1 - Evaluation of the chemical, physical, and biological properties of a newly developed bioceramic cement derived from cockle shells
T2 - An in vitro study
AU - Wannakajeepiboon, Monthip
AU - Sathorn, Chankhrit
AU - Kornsuthisopon, Chatvadee
AU - Santiwong, Busayarat
AU - Wasanapiarnpong, Thanakorn
AU - Linsuwanont, Pairoj
N1 - Funding Information:
The authors would like to thank Dental materials R&D center and Dental Stem Cell Biology Research Unit, Faculty of Dentistry, Chulalongkorn University, for the facilities and special machineries used in the study. Professor Thanaphum Osathanon’s expert assistance and recommendations are greatly appreciated. All advice and laboratory contributions from Dr. Kongthum Wimonsutthikul, Dr. Kanoot Kaewsuwanna and Theerapat Chanamuangkon are valuable for this project. We thank Dr. Kevin Tompkins for the language revision of the manuscript.
Funding Information:
This study was supported by The Chulalongkorn Academic Advancement into Its 2nd Century Project.
Publisher Copyright:
© 2023, The Author(s).
© 2023. The Author(s).
PY - 2023/12
Y1 - 2023/12
N2 - BACKGROUND: Tricalcium silicate is the main component of commercial bioceramic cements that are widely used in endodontic treatment. Calcium carbonate, which is manufactured from limestone, is one of the substrates of tricalcium silicate. To avoid the environmental impact of mining, calcium carbonate can be obtained from biological sources, such as shelled mollusks, one of which is cockle shell. The aim of this study was to evaluate and compare the chemical, physical, and biological properties of a newly developed bioceramic cement derived from cockle shell (BioCement) with those of a commercial tricalcium silicate cement (Biodentine). METHODS: BioCement was prepared from cockle shells and rice husk ash and its chemical composition was determined by X-ray diffraction and X-ray fluorescence spectroscopy. The physical properties were evaluated following the International Organization for Standardization (ISO) 9917-1;2007 and 6876;2012. The pH was tested after 3 h to 8 weeks. The biological properties were assessed using extraction medium from BioCement and Biodentine on human dental pulp cells (hDPCs) in vitro. The 2,3-bis(2-methoxy-4-nitro-5-sulfophenyl)-5[(phenylamino)carbonyl]-2 H-tetrazolium hydroxide assay was used to evaluate cell cytotoxicity following ISO 10993-5;2009. Cell migration was examined using a wound healing assay. Alizarin red staining was performed to detect osteogenic differentiation. The data were tested for a normal distribution. Once confirmed, the physical properties and pH data were analyzed using the independent t-test, and the biological property data were analyzed using one way ANOVA and Tukey's multiple comparisons test at a 5% significance level. RESULTS: The main components of BioCement and Biodentine were calcium and silicon. BioCement's and Biodentine's setting time and compressive strength were not different. The radiopacity of BioCement and Biodentine was 5.00 and 3.92 mmAl, respectively (p < 0.05). BioCement's solubility was significantly higher than Biodentine. Both materials exhibited alkalinity (pH ranged from 9 to 12) and demonstrated > 90% cell viability with cell proliferation. The highest mineralization was found in the BioCement group at 7 days (p < 0.05).CONCLUSIONS: BioCement exhibited acceptable chemical and physical properties and was biocompatible to human dental pulp cells. BioCement promotes pulp cell migration and osteogenic differentiation.
AB - BACKGROUND: Tricalcium silicate is the main component of commercial bioceramic cements that are widely used in endodontic treatment. Calcium carbonate, which is manufactured from limestone, is one of the substrates of tricalcium silicate. To avoid the environmental impact of mining, calcium carbonate can be obtained from biological sources, such as shelled mollusks, one of which is cockle shell. The aim of this study was to evaluate and compare the chemical, physical, and biological properties of a newly developed bioceramic cement derived from cockle shell (BioCement) with those of a commercial tricalcium silicate cement (Biodentine). METHODS: BioCement was prepared from cockle shells and rice husk ash and its chemical composition was determined by X-ray diffraction and X-ray fluorescence spectroscopy. The physical properties were evaluated following the International Organization for Standardization (ISO) 9917-1;2007 and 6876;2012. The pH was tested after 3 h to 8 weeks. The biological properties were assessed using extraction medium from BioCement and Biodentine on human dental pulp cells (hDPCs) in vitro. The 2,3-bis(2-methoxy-4-nitro-5-sulfophenyl)-5[(phenylamino)carbonyl]-2 H-tetrazolium hydroxide assay was used to evaluate cell cytotoxicity following ISO 10993-5;2009. Cell migration was examined using a wound healing assay. Alizarin red staining was performed to detect osteogenic differentiation. The data were tested for a normal distribution. Once confirmed, the physical properties and pH data were analyzed using the independent t-test, and the biological property data were analyzed using one way ANOVA and Tukey's multiple comparisons test at a 5% significance level. RESULTS: The main components of BioCement and Biodentine were calcium and silicon. BioCement's and Biodentine's setting time and compressive strength were not different. The radiopacity of BioCement and Biodentine was 5.00 and 3.92 mmAl, respectively (p < 0.05). BioCement's solubility was significantly higher than Biodentine. Both materials exhibited alkalinity (pH ranged from 9 to 12) and demonstrated > 90% cell viability with cell proliferation. The highest mineralization was found in the BioCement group at 7 days (p < 0.05).CONCLUSIONS: BioCement exhibited acceptable chemical and physical properties and was biocompatible to human dental pulp cells. BioCement promotes pulp cell migration and osteogenic differentiation.
KW - BioCement
KW - Bioceramic
KW - Biological properties
KW - Chemical properties
KW - Cockle shell
KW - Dental pulp
KW - Physical properties
KW - Tricalcium silicate
KW - Glass Ionomer Cements
KW - Humans
KW - Cardiidae
KW - Materials Testing
KW - Calcium Carbonate
KW - Calcium Compounds/pharmacology
KW - Dental Cements/pharmacology
KW - Oxides/chemistry
KW - Animals
KW - Silicates/pharmacology
KW - Osteogenesis
KW - Drug Combinations
UR - https://www.scopus.com/pages/publications/85160887876
UR - https://www.scopus.com/pages/publications/85160887876#tab=citedBy
U2 - 10.1186/s12903-023-03073-0
DO - 10.1186/s12903-023-03073-0
M3 - Article
C2 - 37270491
AN - SCOPUS:85160887876
SN - 1472-6831
VL - 23
SP - 1
EP - 11
JO - BMC Oral Health
JF - BMC Oral Health
IS - 1
M1 - 354
ER -