Preparation of nano-nacre artificial bone.
- Author:
Jian-ting CHEN
1
;
Yong-zhi TANG
;
Jian-gang ZHANG
;
Jian-jun WANG
;
Ying XIAO
Author Information
- Publication Type:Journal Article
- MeSH: Absorbable Implants; Animals; Biocompatible Materials; chemistry; Bivalvia; chemistry; Bone Substitutes; chemistry; Calcium Carbonate; chemistry; Drug Compounding; methods; Humans; Lactic Acid; chemistry; Materials Testing; Nanoparticles; chemistry; Polyesters; Polymers; chemistry; Porosity; Tensile Strength
- From: Journal of Southern Medical University 2008;28(12):2171-2173
- CountryChina
- Language:Chinese
-
Abstract:
OBJECTIVETo assess the improvements in the properties of nano-nacre artificial bone prepared on the basis of nacre/polylactide acid composite artificial bone and its potential for clinical use.
METHODSThe compound of nano-scale nacre powder and poly-D, L-lactide acid (PDLLA) was used to prepare the cylindrical hollow artificial bone, whose properties including raw material powder scale, pore size, porosity and biomechanical characteristics were compared with another artificial bone made of micron-scale nacre powder and PDLLA.
RESULTSScanning electron microscope showed that the average particle size of the nano-nacre powder was 50.4-/+12.4 nm, and the average pore size of the artificial bone prepared using nano-nacre powder was 215.7-/+77.5 microm, as compared with the particle size of the micron-scale nacre powder of 5.0-/+3.0 microm and the pore size of the resultant artificial bone of 205.1-/+72.0 microm. The porosities of nano-nacre artificial bone and the micron-nacre artificial bone were (65.4-/+2.9)% and (53.4-/+2.2)%, respectively, and the two artificial bones had comparable compressive strength and Young's modulus, but the flexural strength of the nano-nacre artificial bone was lower than that of the micro-nacre artificial bone.
CONCLUSIONSThe nano-nacre artificial bone allows better biodegradability and possesses appropriate pore size, porosity and biomechanical properties for use as a promising material in bone tissue engineering.