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3D 打印聚醚醚酮/羟基磷灰石复合材料在骨组织工程中的应用:材料配方对力学性能和生物活性的影响。

3D printed PEEK/HA composites for bone tissue engineering applications: Effect of material formulation on mechanical performance and bioactive potential.

机构信息

Department of Mechanical Engineering, School of Engineering, Ulster University, Shore Road, BT37 0QB, Newtownabbey, United Kingdom.

Department of Mechanical Engineering, School of Engineering, Ulster University, Shore Road, BT37 0QB, Newtownabbey, United Kingdom.

出版信息

J Mech Behav Biomed Mater. 2021 Sep;121:104601. doi: 10.1016/j.jmbbm.2021.104601. Epub 2021 May 26.

Abstract

Polyetheretherketone (PEEK) is a biocompatible polymer widely used for biomedical applications. Because it is biologically inert, bioactive phases, such as nano-hydroxyapatite (HA), have been added to PEEK in order to improve its bioactivity. 3D printing (3DP) technologies are being increasingly used today to manufacture patient specific devices and implants. However, processing of PEEK is challenging due to its high melting point which is above 340 °C. In this study, PEEK-based filaments containing 10 wt% of pure nano-HA, strontium (Sr)- doped nano-HA and Zinc (Zn)-doped nano-HA were produced via hot-melt extrusion and subsequently 3D printed via fused deposition modelling (FDM), following an initial optimization process. The raw materials, extruded filaments and 3D printed samples were characterized in terms of physicochemical, thermal and morphological analysis. Moreover, the mechanical performance of 3D printed specimens was assessed via tensile tensing. Although an increase in the melting point and a reduction in crystallization temperature was observed with the addition of HA and doped HA to pure PEEK, there was no noticeable increase in the degree of crystallinity. Regarding the mechanical behavior, no significant differences were detected following the addition of the inorganic phases to the polymeric matrix, although a small reduction in the ultimate tensile strength (14%) and Young's modulus (5%) in PEEK/HA was observed in comparison to pure PEEK. Moreover, in vitro bioactivity of 3D printed samples was evaluated via a simulated body fluid immersion test for up to 28 days; the formation of apatite was observed on the surfaces of sample surfaces containing HA, SrHA and ZnHA. These results indicate the potential to produce bioactive, 3DP PEEK composites for challenging applications such as in craniofacial bone repair.

摘要

聚醚醚酮(PEEK)是一种生物相容性聚合物,广泛用于生物医学应用。由于其具有生物惰性,因此已经在 PEEK 中添加了生物活性相,如纳米羟基磷灰石(HA),以提高其生物活性。3D 打印(3DP)技术如今越来越多地用于制造针对患者的特定设备和植入物。然而,由于其熔点高于 340°C,因此加工 PEEK 具有挑战性。在这项研究中,通过热熔挤出法制备了含有 10wt%纯纳米 HA、锶(Sr)掺杂纳米 HA 和锌(Zn)掺杂纳米 HA 的 PEEK 基长丝,然后通过熔融沉积建模(FDM)进行 3D 打印,随后进行了初始优化过程。对原材料、挤出长丝和 3D 打印样品进行了物理化学、热和形态分析。此外,通过拉伸测试评估了 3D 打印样品的机械性能。尽管在纯 PEEK 中添加 HA 和掺杂 HA 会导致熔点升高和结晶温度降低,但结晶度没有明显增加。关于机械性能,在向聚合物基质中添加无机相后,没有检测到明显的差异,尽管与纯 PEEK 相比,PEEK/HA 的极限拉伸强度(14%)和杨氏模量(5%)略有降低。此外,通过模拟体液浸泡试验评估了 3D 打印样品的体外生物活性,在长达 28 天的时间内观察到了含 HA、SrHA 和 ZnHA 的样品表面形成了磷灰石。这些结果表明,有可能生产用于挑战性应用的生物活性 3DP PEEK 复合材料,例如在颅面骨修复中。

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