3D生物打印半月板软骨再生用聚己内酯/氧化石墨烯支架的研制与表征。

IF 4.9 3区 医学 Q1 PHARMACOLOGY & PHARMACY
Melike Nur Özder, Aslihan Yelkenci, Mine Kucak, Aylin Altinbay, Cem Bülent Ustündag, Fatih Ciftci
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引用次数: 0

摘要

背景/目的:由于组织的自我修复能力有限,半月板损伤是骨科医学的一个关键挑战。本研究介绍了利用生物3D打印技术制备的用于半月板软骨再生的聚己内酯/氧化石墨烯(PCL/GO)支架的开发和表征。方法:加入不同浓度的氧化石墨烯(1%、3%、5% w/w),以增强PCL支架的生物活性、力学、热学和流变性能。结果:流变学分析表明,氧化石墨烯显著提高了材料的储存模量(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,增强了材料的弹性和流动阻力。力学试验表明,添加1%氧化石墨烯的支架达到最佳平衡状态,弹性模量为614 MPa,极限抗拉强度为46.3 MPa,与天然半月板力学行为接近。FTIR分析证实,氧化石墨烯成功整合到PCL基体中,而没有破坏其化学完整性,而DSC分析表明,随着熔融温度的升高,热稳定性得到改善。扫描电镜分析表明,粗糙的表面形态有利于细胞粘附和增殖。使用DAPI染色的荧光显微镜显示,PCL/GO支架上的细胞附着增强,细胞核分布规律,特别是在低氧化石墨烯浓度下。抑菌试验显示对大肠杆菌和金黄色葡萄球菌有较大的抑制区,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。结论: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,其具有良好的力学、流变、生物学和抗菌特性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development and Characterization of a Polycaprolactone/Graphene Oxide Scaffold for Meniscus Cartilage Regeneration Using 3D Bioprinting.

Background/Objectives: 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. Methods: GO was incorporated at varying concentrations (1%, 3%, 5% w/w) to enhance the bioactivity, mechanical, thermal, and rheological properties of PCL scaffolds. Results: 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 E. coli and S. aureus, while cytotoxicity tests confirmed the biocompatibility of the PCL/GO scaffolds with fibroblast cells. Conclusions: 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.

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来源期刊
Pharmaceutics
Pharmaceutics Pharmacology, Toxicology and Pharmaceutics-Pharmaceutical Science
CiteScore
7.90
自引率
11.10%
发文量
2379
审稿时长
16.41 days
期刊介绍: Pharmaceutics (ISSN 1999-4923) is an open access journal which provides an advanced forum for the science and technology of pharmaceutics and biopharmaceutics. It publishes reviews, regular research papers, communications,  and short notes. Covered topics include pharmacokinetics, toxicokinetics, pharmacodynamics, pharmacogenetics and pharmacogenomics, and pharmaceutical formulation. Our aim is to encourage scientists to publish their experimental and theoretical details in as much detail as possible. There is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced.
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