Physicochemical and biological evaluation of chondroitin sulphate calcium phosphate cements using tetracalcium phosphate nanorod and microparticle powders

Abstract Tetracalcium phosphate (TTCP) is one of the main powder components in self‐setting calcium phosphate cements. In this study, two types of chondroitin sulphate calcium phosphate cements were prepared using nanoscale rod‐like (R‐TTCP) and conventional irregular shape (C‐TTCP) microscale powde...

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Main Authors: Rahim Jahandideh, Aliasghar Behnamghader, Saeed Hesaraki
Format: Article
Language:English
Published: Wiley 2022-12-01
Series:Micro & Nano Letters
Subjects:
Online Access:https://doi.org/10.1049/mna2.12147
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author Rahim Jahandideh
Aliasghar Behnamghader
Saeed Hesaraki
author_facet Rahim Jahandideh
Aliasghar Behnamghader
Saeed Hesaraki
author_sort Rahim Jahandideh
collection DOAJ
description Abstract Tetracalcium phosphate (TTCP) is one of the main powder components in self‐setting calcium phosphate cements. In this study, two types of chondroitin sulphate calcium phosphate cements were prepared using nanoscale rod‐like (R‐TTCP) and conventional irregular shape (C‐TTCP) microscale powders. R‐TTCP and C‐TTCP powders were synthesized by reverse microemulsion chemical process and conventional thermal method, respectively. Adequate analyses and experiments such as XRD, FE‐SEM, setting time, porosity, compressive strength, degradation, bioactivity, cytotoxicity, and MG63 cell adhesion were conducted to illustrate physicochemical and resorbable cements specific properties. According to the results, both cements formed hydroxyapatite through the cementation process. The R‐TTCP cement revealed a slightly longer initial but no difference in final setting time, less compressive strength, higher porosity and better degradation behaviour compared to C‐TTCP one. Taking into consideration the initial porosity, the cement made from R‐TTCP powder presented more aptness to participate in ion exchange in SBF resulting to fill the 15% more initial porosity via the precipitation of hydroxyapatite mineral. From the biological point of view, analysis of cytotoxicity and MG63 osteoblastic‐cell behaviour proved that both the cements had good viability and proper cell adhesion and activity.
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spelling doaj.art-5ec3eb1306674551a14f9faa89b3d6ef2022-12-22T04:17:39ZengWileyMicro & Nano Letters1750-04432022-12-01171438439510.1049/mna2.12147Physicochemical and biological evaluation of chondroitin sulphate calcium phosphate cements using tetracalcium phosphate nanorod and microparticle powdersRahim Jahandideh0Aliasghar Behnamghader1Saeed Hesaraki2Department of Nanotechnology and Advanced Materials Materials and Energy Research Center Alborz IranDepartment of Nanotechnology and Advanced Materials Materials and Energy Research Center Alborz IranDepartment of Nanotechnology and Advanced Materials Materials and Energy Research Center Alborz IranAbstract Tetracalcium phosphate (TTCP) is one of the main powder components in self‐setting calcium phosphate cements. In this study, two types of chondroitin sulphate calcium phosphate cements were prepared using nanoscale rod‐like (R‐TTCP) and conventional irregular shape (C‐TTCP) microscale powders. R‐TTCP and C‐TTCP powders were synthesized by reverse microemulsion chemical process and conventional thermal method, respectively. Adequate analyses and experiments such as XRD, FE‐SEM, setting time, porosity, compressive strength, degradation, bioactivity, cytotoxicity, and MG63 cell adhesion were conducted to illustrate physicochemical and resorbable cements specific properties. According to the results, both cements formed hydroxyapatite through the cementation process. The R‐TTCP cement revealed a slightly longer initial but no difference in final setting time, less compressive strength, higher porosity and better degradation behaviour compared to C‐TTCP one. Taking into consideration the initial porosity, the cement made from R‐TTCP powder presented more aptness to participate in ion exchange in SBF resulting to fill the 15% more initial porosity via the precipitation of hydroxyapatite mineral. From the biological point of view, analysis of cytotoxicity and MG63 osteoblastic‐cell behaviour proved that both the cements had good viability and proper cell adhesion and activity.https://doi.org/10.1049/mna2.12147calcium phosphate cementcell studychondroitin sulphatenanorodphysicochemical propertiestetracalcium phosphate
spellingShingle Rahim Jahandideh
Aliasghar Behnamghader
Saeed Hesaraki
Physicochemical and biological evaluation of chondroitin sulphate calcium phosphate cements using tetracalcium phosphate nanorod and microparticle powders
Micro & Nano Letters
calcium phosphate cement
cell study
chondroitin sulphate
nanorod
physicochemical properties
tetracalcium phosphate
title Physicochemical and biological evaluation of chondroitin sulphate calcium phosphate cements using tetracalcium phosphate nanorod and microparticle powders
title_full Physicochemical and biological evaluation of chondroitin sulphate calcium phosphate cements using tetracalcium phosphate nanorod and microparticle powders
title_fullStr Physicochemical and biological evaluation of chondroitin sulphate calcium phosphate cements using tetracalcium phosphate nanorod and microparticle powders
title_full_unstemmed Physicochemical and biological evaluation of chondroitin sulphate calcium phosphate cements using tetracalcium phosphate nanorod and microparticle powders
title_short Physicochemical and biological evaluation of chondroitin sulphate calcium phosphate cements using tetracalcium phosphate nanorod and microparticle powders
title_sort physicochemical and biological evaluation of chondroitin sulphate calcium phosphate cements using tetracalcium phosphate nanorod and microparticle powders
topic calcium phosphate cement
cell study
chondroitin sulphate
nanorod
physicochemical properties
tetracalcium phosphate
url https://doi.org/10.1049/mna2.12147
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AT aliasgharbehnamghader physicochemicalandbiologicalevaluationofchondroitinsulphatecalciumphosphatecementsusingtetracalciumphosphatenanorodandmicroparticlepowders
AT saeedhesaraki physicochemicalandbiologicalevaluationofchondroitinsulphatecalciumphosphatecementsusingtetracalciumphosphatenanorodandmicroparticlepowders