Nanocrystalline silicon substituted hydroxyapatite effects on osteoclast differentiation and resorptive activity
Author(s) -
María Concepción Matesanz,
Javier Linares,
Isabel Lilue,
Sandra SánchezSalcedo,
María José Feito,
Daniel Arcos,
Maria ValletRegí,
María Teresa Portolés
Publication year - 2014
Publication title -
journal of materials chemistry b
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.316
H-Index - 101
eISSN - 2050-7518
pISSN - 2050-750X
DOI - 10.1039/c3tb21697g
Subject(s) - osteoclast , bone resorption , nanocrystalline material , proinflammatory cytokine , biomaterial , resorption , chemistry , population , macrophage , microbiology and biotechnology , in vitro , materials science , medicine , biochemistry , inflammation , nanotechnology , biology , environmental health
In the present study, the effects of nanocrystalline hydroxyapatite (nano-HA) and nanocrystalline Si-substituted hydroxyapatite (nano-SiHA) on osteoclast differentiation and resorptive activity have been evaluated in vitro using osteoclast-like cells. The action of these materials on proinflammatory and reparative macrophage populations was also studied. Nano-SiHA disks delayed the osteoclast differentiation and decreased the resorptive activity of these cells on their surface, as compared to nano-HA samples, without affecting cell viability. Powdered nano-SiHA also induced an increase of the reparative macrophage population. These results along with the beneficial effects on osteoblasts previously observed with powdered nano-SiHA suggest the potential of this biomaterial for modulating the fundamental processes of bone formation and turnover, preventing bone resorption and enhancing bone formation at implantation sites in treatment of osteoporotic bone and in bone repair and regeneration.
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