RRC ID 61950
Author Xu HH, Carey LE, Simon CG Jr.
Title Premixed macroporous calcium phosphate cement scaffold.
Journal J Mater Sci Mater Med
Abstract Calcium phosphate cement (CPC) sets in situ to form resorbable hydroxyapatite and is promising for orthopaedic applications. However, it requires on-site powder-liquid mixing during surgery, which prolongs surgical time and raises concerns of inhomogeneous mixing. The objective of this study was to develop a premixed CPC scaffold with macropores suitable for tissue ingrowth. To avoid the on-site powder-liquid mixing, the CPC paste was mixed in advance and did not set in storage; it set only after placement in a physiological solution. Using 30% and 40% mass fractions of mannitol porogen, the premixed CPC scaffold with fibers had flexural strength (mean +/- sd; n = 5) of (3.9 +/- 1.4) MPa and (1.8 +/- 0.8) MPa, respectively. The scaffold porosity reached (68.6 +/- 0.7)% and (74.7 +/- 1.2)%, respectively. Osteoblast cells colonized in the surface macropores of the scaffold and attached to the hydroxyapatite crystals. Cell viability values for the premixed CPC scaffold was not significantly different from that of a conventional non-premixed CPC known to be biocompatible (P > 0.1). In conclusion, using fast-dissolving porogen and slow-dissolving fibers, a premixed macroporous CPC scaffold was developed with strength approaching the reported strengths of sintered porous hydroxyapatite implants and cancellous bone, and non-cytotoxicity similar to a biocompatible non-premixed CPC.
Volume 18(7)
Pages 1345-53
Published 2007-7-1
DOI 10.1007/s10856-007-0146-x
PMID 17277972
PMC PMC2645046
MeSH 3T3 Cells Adhesiveness Animals Bone Cements / chemistry* Bone Cements / pharmacology* Calcium Phosphates / administration & dosage* Calcium Phosphates / chemistry* Cell Survival / drug effects* Compressive Strength Elasticity Hardness Materials Testing Mice Porosity Stress, Mechanical
IF 2.489
Resource
Human and Animal Cells MC3T3-E1(RCB1126)