Additive manufacturing and in vitro study of biological characteristics of sulfonated polyetheretherketone-bioactive glass porous bone scaffolds.

Fangyu Zhang, Han Qu, Guiwei Li, Xinhao Zhu, Yitong Sun, Qiyuan Cao, Wenzheng Wu
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Abstract

Polyetheretherketone (PEEK), a high-performance special engineering plastic, has gradually been used in bone substitutes due to its wear resistance, acid and alkali resistance, non-toxicity, radiolucency, and modulus close to that of human bone. However, its stable biphenyl structure determines strong biological inertness, thus artificial interventions are required to improve the biological activity of fabricated PEEK parts for better clinical applications. This study developed a novel strategy for grafting bioactive glass (BAG) onto the surface of PEEK through sulfonation reaction with concentrated sulfuric acid (H2SO4), aiming to improve the bioactivity of printed porous bone scaffolds manufactured by fused deposition modeling (FDM) to meet clinical individual needs. In vitro biological study was conducted on sulfonated polyetheretherketone-bioactive glass (SPEEK-BAG) scaffolds obtained by this strategy. The results demonstrated that the optimal modification condition was a 4-hour sulfonation reaction with 1 mol/L concentrated H2SO4 at high temperature and high pressure. The scaffold obtained under this condition showed minimal cytotoxicity, and the Ca/P molar ratio, yield compressive strength, and compressive modulus of this scaffold were 2.94 ± 0.02, 62.78 MPa, and 0.186 GPa respectively. The hydrophilicity and the biomineralization ability of PEEK modified by the proposed strategy were substantially improved. The SPEEK-BAG bone scaffolds exhibited excellent biocompatible properties, suggesting that the sulfonation reaction and BAG effectively enhanced the proliferation and differentiation of osteoblasts. The presented method provides an innovative, highly effective, and customized strategy to improve the biocompatibility and bone repair ability of printed PEEK bone scaffolds for virous biomedical applications.

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磺化聚醚醚酮-生物活性玻璃多孔骨支架的增材制造和生物特性体外研究。
聚醚醚酮(PEEK)是一种高性能特种工程塑料,因其耐磨、耐酸碱、无毒、无辐射、模量接近人体骨骼而逐渐被用于骨替代物。然而,其稳定的联苯结构决定了其较强的生物惰性,因此需要进行人工干预,以提高 PEEK 制件的生物活性,从而更好地应用于临床。本研究开发了一种新策略,通过与浓硫酸(H2SO4)发生磺化反应,将生物活性玻璃(BAG)嫁接到聚醚醚酮(PEEK)表面,旨在提高通过熔融沉积成型(FDM)制造的印刷多孔骨支架的生物活性,以满足临床个性化需求。研究人员对通过该策略获得的磺化聚醚醚酮生物活性玻璃(SPEEK-BAG)支架进行了体外生物研究。结果表明,最佳的改性条件是在高温高压下用 1 mol/L 浓 H2SO4 进行 4 小时的磺化反应。在此条件下获得的支架具有最小的细胞毒性,其 Ca/P 摩尔比、屈服抗压强度和压缩模量分别为 2.94 ± 0.02、62.78 MPa 和 0.186 GPa。采用所提议的策略改性的聚醚醚酮的亲水性和生物矿化能力得到了大幅提高。SPEEK-BAG 骨支架具有良好的生物相容性,表明磺化反应和 BAG 能有效促进成骨细胞的增殖和分化。所提出的方法提供了一种创新、高效和定制化的策略,可用于提高印刷 PEEK 骨支架的生物相容性和骨修复能力,从而实现病毒性生物医学应用。
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