Özder Melike Nur, Yelkenci Aslihan, Kucak Mine, Altinbay Aylin, Ustündag Cem Bülent, Ciftci Fatih
Department of Bioengineering, Faculty of Chemical and Metallurgical Engineering, Yıldız Technical University, Istanbul 34210, Turkey.
Department of Pediatric Dentistry, Faculty of Dentistry, University of Health Sciences, Istanbul 34668, Turkey.
Pharmaceutics. 2025 Mar 7;17(3):346. doi: 10.3390/pharmaceutics17030346.
Meniscus injuries represent a critical challenge in orthopedic medicine due to the limited self-healing capacity of the tissue. This study presents the development and characterization of polycaprolactone/graphene oxide (PCL/GO) scaffolds fabricated using 3D bioprinting technology for meniscus cartilage regeneration. GO was incorporated at varying concentrations (1%, 3%, 5% /) to enhance the bioactivity, mechanical, thermal, and rheological properties of PCL scaffolds. Rheological analyses revealed that GO significantly improved the storage modulus (G') from 36.1 Pa to 97.1 Pa and the yield shear stress from 97.2 Pa to 507.1 Pa, demonstrating enhanced elasticity and flow resistance. Mechanical testing showed that scaffolds with 1% GO achieved an optimal balance, with an elastic modulus of 614 MPa and ultimate tensile strength of 46.3 MPa, closely mimicking the native meniscus's mechanical behavior. FTIR analysis confirmed the successful integration of GO into the PCL matrix without disrupting its chemical integrity, while DSC analysis indicated improved thermal stability, with increases in melting temperatures. SEM analysis demonstrated a roughened surface morphology conducive to cellular adhesion and proliferation. Fluorescence microscopy using DAPI staining revealed enhanced cell attachment and regular nuclear distribution on PCL/GO scaffolds, particularly at lower GO concentrations. Antibacterial assays exhibited larger inhibition zones against and , while cytotoxicity tests confirmed the biocompatibility of the PCL/GO scaffolds with fibroblast cells. This study highlights the potential of PCL/GO 3D-printed scaffolds as biofunctional platforms for meniscus tissue engineering, combining favorable mechanical, rheological, biological, and antibacterial properties.
由于半月板组织的自我修复能力有限,半月板损伤是骨科医学面临的一项严峻挑战。本研究展示了使用3D生物打印技术制造的聚己内酯/氧化石墨烯(PCL/GO)支架的开发与特性,用于半月板软骨再生。以不同浓度(1%、3%、5%)加入GO,以增强PCL支架的生物活性、机械性能、热性能和流变性能。流变学分析表明,GO显著提高了储能模量(G'),从36.1 Pa提高到97.1 Pa,屈服剪切应力从97.2 Pa提高到507.1 Pa,表明弹性和流动阻力增强。力学测试表明,含1% GO的支架达到了最佳平衡,弹性模量为614 MPa,极限拉伸强度为46.3 MPa, closely mimicking the native meniscus's mechanical behavior(此处原文有误,应是closely mimicking the native meniscus's mechanical behavior,意为“紧密模拟天然半月板的力学行为”)。FTIR分析证实GO成功整合到PCL基质中,而不破坏其化学完整性,而DSC分析表明热稳定性提高,熔点温度升高。SEM分析显示表面形态粗糙,有利于细胞黏附和增殖。使用DAPI染色的荧光显微镜显示,PCL/GO支架上细胞附着增强,核分布规则,尤其是在较低GO浓度下。抗菌试验对 和 表现出更大的抑菌圈,而细胞毒性试验证实了PCL/GO支架与成纤维细胞的生物相容性。本研究强调了PCL/GO 3D打印支架作为半月板组织工程生物功能平台的潜力,它结合了良好的机械、流变、生物学和抗菌性能。