Title of article :
Addition of Wollastonite Fibers to Calcium Phosphate Cement Increases Cell Viability and Stimulates Differentiation of Osteoblast-Like Cells
Author/Authors :
Almeida Domingues, Juliana Department of Structural and Functional Biology - Biology Institute - University of Campinas (UNICAMP) - Campinas - SP - Brazil - Department of Physiological Science - Biomaterials Laboratory - Pontifical Catholic University of Sao Paulo (PUC-SP) - Sorocaba - SP - Brazil , Motisuke, Mariana Bioceramics Laboratory - Science and Technology Institute - Federal University of Sao Paulo (UNIFESP) - ˜ Sao Jos ˜ e dos Campos - SP - Brazil , Aparecido Bertran, Celso Department of Physical Chemistry - Chemistry Institute - University of Campinas (UNICAMP) - Campinas - SP - Brazil , Hausen, Moema A Department of Physiological Science - Biomaterials Laboratory - Pontifical Catholic University of Sao Paulo (PUC-SP) - Sorocaba - SP - Brazil , de Rezende Duek, Eliana Aparecida Department of Materials Engineering - Faculty of Mechanical Engineering - University of Campinas (UNICAMP) - Campinas - SP - Brazil , Angelo Camilli, José Department of Structural and Functional Biology - Biology Institute - University of Campinas (UNICAMP) - Campinas - SP - Brazil
Abstract :
Calcium phosphate cement (CPC) that is based on 𝛼-tricalcium phosphate (𝛼-TCP) is considered desirable for bone tissue engineering because of its relatively rapid degradation properties. However, such cement is relatively weak, restricting its use to areas of low mechanical stress. Wollastonite fibers (WF) have been used to improve the mechanical strength of biomaterials. However,
the biological properties of WF remain poorly understood. Here, we tested the response of osteoblast-like cells to being cultured on CPC reinforced with 5% of WF (CPC-WF). We found that both types of cement studied achieved an ion balance for calcium and
phosphate after 3 days of immersion in culture medium and this allowed subsequent long-term cell culture. CPC-WF increased cell
viability and stimulated cell differentiation, compared to nonreinforced CPC. We hypothesize that late silicon release by CPC-WF induces increased cell proliferation and differentiation. Based on our findings, we propose that CPC-WF is a promising material for bone tissue engineering applications.
Keywords :
Wollastonite Fibers , Calcium phosphate cement (CPC) , Cement Increases Cell Viability , Stimulates Differentiation , Osteoblast-Like Cells
Journal title :
The Scientific World Journal