Properties of Osteoconductive Biomaterials: Calcium Phosphates
Top Cited Papers
- 1 February 2002
- journal article
- review article
- Published by Wolters Kluwer Health in Clinical Orthopaedics and Related Research
- Vol. 395 (395) , 81-98
- https://doi.org/10.1097/00003086-200202000-00009
Abstract
Bone is formed by a series of complex events involving the mineralization of extracellular matrix proteins rigidly orchestrated by cells with specific functions of maintaining the integrity of the bone. Bone, similar to other calcified tissues, is an intimate composite of the organic (collagen and noncollagenous proteins) and inorganic or mineral phases. The bone mineral idealized as calcium hydroxyapatite, Ca10(PO4)6(OH)2, is a carbonatehydroxyapatite, approximated by the formula: (Ca,X)10(PO4,HPO4,CO3)6(OH,Y)2, where X are cations (magnesium, sodium, strontium ions) that can substitute for the calcium ions, and Y are anions (chloride or fluoride ions) that can substitute for the hydroxyl group. The current author presents a brief review of CaP biomaterials that now are used as grafts for bone repair, augmentation, or substitution. Commercially-available CaP biomaterials differ in origin (natural or synthetic), composition (hydroxyapatite, beta-tricalcium phosphate, and biphasic CaP), or physical forms (particulates, blocks, cements, coatings on metal implants, composites with polymers), and in physicochemical properties. CaP biomaterials have outstanding properties: similarity in composition to bone mineral; bioactivity (ability to form bone apatitelike material or carbonate hydroxyapatite on their surfaces), ability to promote cellular function and expression leading to formation of a uniquely strong boneCaP biomaterial interface; and osteoconductivity (ability to provide the appropriate scaffold or template for bone formation). In addition, CaP biomaterials with appropriate three-dimensional geometry are able to bind and concentrate endogenous bone morphogenetic proteins in circulation, and may become osteoinductive (capable of osteogenesis), and can be effective carriers of bone cell seeds. Therefore, CaP biomaterials potentially are useful in tissue engineering for regeneration of hard tissues.Keywords
This publication has 83 references indexed in Scilit:
- Comparative bone growth behavior in granules of bioceramic materials of various sizesJournal of Biomedical Materials Research, 1999
- Osteoclastic resorption of biphasic calcium phosphate ceramicin vitroJournal of Biomedical Materials Research, 1997
- Coral Derived Porous Framework Having Different Chemical Compositions as a Scaffold for Osteoblastic DifferentitationMaterials Science Forum, 1997
- Formation of biologically active bone-like apatite on metals and polymers by a biomimetic processThermochimica Acta, 1996
- Biodegradation and bioresorption of calcium phosphate ceramicsClinical Materials, 1993
- Crystal Size and Organization in BoneConnective Tissue Research, 1989
- Apatites in biological systemsProgress in Crystal Growth and Characterization, 1981
- Identification of brushite in newly deposited bone mineral from embryonic chicksJournal of Ultrastructure Research, 1979
- Pathological calcifications associated with uremiaCalcified Tissue International, 1973
- Bone formation at a ceramic implant interfaceCalcified Tissue International, 1971