Sree Chitra Tirunal Institute for Medical Sciences and Technology, Polymer Division, BMT Wing, Thiruvananthapuram 695 012, Kerala State, India.
Acta Biomater. 2010 Mar;6(3):763-75. doi: 10.1016/j.actbio.2009.09.015. Epub 2009 Sep 27.
The effect of hydroxyapatite (HAP) on the performance of nanocomposites of an unsaturated polyester, i.e., hydroxy-terminated high molecular weight poly(proplyene fumarate) (HT-PPFhm), was investigated. A thermoset nanocomposite was prepared with nanoparticles of calcined HAP (<100 nm, rod-like shape, filler content 30 wt.%), HT-PPFhm and N-vinyl pyrrolidone, dibenzoyl peroxide and N,N-dimethyl aniline. Two more nanocomposites were prepared with precipitated HAP nanoparticles (<100 nm rod-like shape) and commercially available HAP nanoparticles (<200 nm spherical shape), respectively. Calcined HAP nanoparticles resulted in very good crosslinking in the resin matrix with high crosslinking density and interfacial bonding with the polymer, owing to the rod-like shape of the nanoparticles; this gave improved biomechanical strength and modulus and also controlled degradation of the nanocomposite for scaffold formation. The tissue compatibility and osteocompatibility of the nanocomposite containing calcined HAP nanoparticles was evaluated. The tissue compatibility was studied by intramuscular implantation in a rabbit animal model for 3 months as per ISO standard 10993/6. The in vivo femoral bone repair was also carried out in the rabbit animal model as per ISO standard 10993/6. The nanocomposite containing calcined HAP nanoparticles is both biocompatible and osteocompatible.
研究了羟磷灰石(HAP)对不饱和聚酯纳米复合材料性能的影响,即端羟基高分子量聚(反丁烯二酸丙烯酯)(HT-PPFhm)。用煅烧 HAP(<100nm,棒状,填充剂含量 30wt%)、HT-PPFhm 和 N-乙烯基吡咯烷酮、过氧化二苯甲酰和 N,N-二甲基苯胺制备了热固性纳米复合材料。用沉淀 HAP 纳米颗粒(<100nm 棒状)和市售 HAP 纳米颗粒(<200nm 球形)分别制备了另外两种纳米复合材料。煅烧 HAP 纳米颗粒由于其棒状形状,在树脂基质中产生了非常好的交联,具有高交联密度和与聚合物的界面结合,从而提高了生物机械强度和模量,并控制了纳米复合材料的降解,用于支架形成。评估了含有煅烧 HAP 纳米颗粒的纳米复合材料的组织相容性和骨相容性。根据 ISO 标准 10993/6,通过在兔子动物模型中的肌肉内植入研究了组织相容性。根据 ISO 标准 10993/6,还在兔子动物模型中进行了股骨内修复的体内研究。含有煅烧 HAP 纳米颗粒的纳米复合材料既具有生物相容性又具有骨相容性。