Siriphannon Punnama, Monvisade Pathavuth, Jinawath Supatra, Hemachandra Khemchai
Department of Chemistry, Faculty of Science, King Mongkut's Institute of Technology Ladkrabang, Chalongkrung Road, Ladkrabang, Bangkok 10520, Thailand.
J Biomed Mater Res A. 2007 May;81(2):381-91. doi: 10.1002/jbm.a.31032.
Hydroxyapatite/poly(ethylene glutarate) (HAp/PEG) biomaterial composites were prepared by ring-opening polymerization (ROP) of cyclic oligo(ethylene glutarate) (C-PEG) in porous HAp scaffolds. The HAp/C-PEG precomposites were prepared by immersing the porous HAp scaffolds in the mixture solution of C-PEG and dibutyl tinoxide catalyst overnight and polymerizing at 200 degrees C for 24, 48, and 72 h under vacuum. The successful ROP of C-PEG in the porous HAp scaffolds was corroborated by the signals of hydroxyl end-group of PEG shown in the (1)H NMR spectrum of the ROP-products extracted from the composites. PEG in the composites was present as a thin layer coating on the HAp grains and was evenly distributed throughout the samples. The PEG content was about 13-16 wt % and decreased with increasing polymerization time. Its molecular weight (M(w), weight average) measured by gel permeation chromatography was in the range of 4300-6800 g/mol. Compressive strength of the HAp/PEG composites was significantly increased from 3 MPa of the porous HAp scaffold to 11-15 MPa, depending on the PEG content in the composites. In vitro bioactivity of the HAp/PEG composites was studied by soaking in simulated body fluid (SBF) at 36.5 degrees C for 7-28 days. After prolonged soaking, the HAp nanocrystals precipitated from the SBF solution and formed as a layer of globular aggregates, coated on the composite surfaces. This result suggested that the HAp/PEG composite was a bioactive material.
通过在多孔羟基磷灰石(HAp)支架中进行环状低聚(乙烯戊二酸酯)(C-PEG)的开环聚合(ROP)制备了羟基磷灰石/聚(乙烯戊二酸酯)(HAp/PEG)生物材料复合材料。将多孔HAp支架浸入C-PEG和二丁基氧化锡催化剂的混合溶液中过夜,制备HAp/C-PEG预复合材料,并在200℃下于真空条件下聚合24、48和72小时。从复合材料中提取的ROP产物的¹H NMR谱图中显示的PEG羟基端基信号证实了C-PEG在多孔HAp支架中成功进行了ROP。复合材料中的PEG以薄层形式包覆在HAp颗粒上,并均匀分布于整个样品中。PEG含量约为13-16 wt%,并随聚合时间的增加而降低。通过凝胶渗透色谱法测得其分子量(Mw,重均分子量)在4300-6800 g/mol范围内。HAp/PEG复合材料的抗压强度从多孔HAp支架的3 MPa显著提高到11-15 MPa,这取决于复合材料中的PEG含量。通过在36.5℃的模拟体液(SBF)中浸泡7-28天来研究HAp/PEG复合材料的体外生物活性。长时间浸泡后,HAp纳米晶体从SBF溶液中沉淀出来,形成一层球状聚集体,包覆在复合材料表面。这一结果表明HAp/PEG复合材料是一种生物活性材料。