Chen Wen-Cheng, Ju Chien-Ping, Wang Jen-Chyan, Hung Chun-Cheng, Chern Lin Jiin-Huey
Faculty of Dentistry, Kaohsiung Medical University, 807 Kaohsiung, Taiwan.
Dent Mater. 2008 Dec;24(12):1616-22. doi: 10.1016/j.dental.2008.03.032. Epub 2008 May 27.
Bone filler has been used over the years in dental and biomedical applications. The present work is to characterize a non-dispersive, fast setting, modulus adjustable, high bioresorbable composite bone cement derived from calcium phosphate-based cement combined with polymer and binding agents. This cement, we hope, will not swell in simulated body fluid and keep the osteogenetic properties of the dry bone and avoid its disadvantages of being brittle.
We developed a calcium phosphate cement (CPC) of tetracalcium phosphate/dicalcium phosphate anhydrous (TTCP/DCPA)-polyacrylic acid with tartaric acid, calcium fluoride additives and phosphate hardening solution.
The results show that while composite, the hard-brittle properties of 25wt% polyacrylic acid are proportional to CPC and mixing with additives is the same as those of the CPC without polyacrylic acid added. With an increase of polyacrylic acid/CPC ratio, the 67wt% samples revealed ductile-tough properties and 100wt% samples kept ductile or elastic properties after 24h of immersion. The modulus range of this development was from 200 to 2600MPa after getting immersed in simulated body fluid for 24h.
The TTCP/DCPA-polyacrylic acid based CPC demonstrates adjustable brittle/ductile strength during setting and after immersion, and the final reaction products consist of high bioresorbable monetite/brushite/calcium fluoride composite with polyacrylic acid.
多年来骨填充材料一直用于牙科和生物医学应用。目前的工作是对一种由磷酸钙基骨水泥与聚合物和粘结剂组合而成的非分散、快速凝固、模量可调、高生物可吸收的复合骨水泥进行表征。我们希望这种骨水泥在模拟体液中不会膨胀,能保持干燥骨的成骨特性,并避免其脆性缺点。
我们研发了一种由磷酸四钙/无水磷酸二钙(TTCP/DCPA)-聚丙烯酸与酒石酸、氟化钙添加剂和磷酸盐硬化溶液组成的磷酸钙骨水泥(CPC)。
结果表明,虽然是复合材料,但25wt%聚丙烯酸的硬脆特性与CPC成正比,且与添加剂混合后的特性与未添加聚丙烯酸的CPC相同。随着聚丙烯酸/CPC比例的增加,67wt%的样品在浸泡24小时后呈现出韧性-韧性特性,100wt%的样品保持韧性或弹性特性。在模拟体液中浸泡24小时后,这种研发材料的模量范围为200至2600MPa。
基于TTCP/DCPA-聚丙烯酸的CPC在凝固过程中和浸泡后表现出可调节的脆性/韧性强度,最终反应产物由具有聚丙烯酸的高生物可吸收的一水磷酸二钙/透钙磷石/氟化钙复合材料组成。