基于石墨烯/明胶/海藻酸钠生物链接的3D打印仿生复合支架:细胞增殖效应和毒性评估。

IF 2.3 4区 医学 Q3 ENGINEERING, BIOMEDICAL
Zhenyu Wang, Jiayi Yang, Jun Peng, Jingjing Zhu, Xiangqin Li, Jiang Du, Yuen Yee Cheng, Jie Xu, Fei Song, Zhilin Jia, Kedong Song
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引用次数: 0

摘要

周围神经损伤是一个主要的全球健康问题,目前的治疗显示出显着的局限性。神经组织工程通过创造支持神经再生的环境提供了一个很有前途的解决方案。本研究采用先进的生物3D打印技术,利用石墨烯增强的生物墨水,整合细胞、支架材料和生长信号,制造出仿生支架。与传统方法相比,3D打印确保了精确的材料分布,提高了细胞密度。生物墨水由石墨烯(Gr)、明胶(Gel)和海藻酸钠(SA)制成,在0.02%、0.08%和0.2%的浓度下进行测试,以找到神经修复的最佳配方。在Gel/SA、0.02% Gr/Gel/SA、0.08% Gr/Gel/SA、0.2% Gr/Gel/SA四组支架中,0.08% Gr支架的机械强度、结构完整性和生物相容性最好。石墨烯提高了支架的抗压强度和降解平衡,但降低了吸水率、孔隙率,增加了接触角。在低石墨烯水平下,支架上的PC12细胞表现出良好的增殖能力和最小的毒性。0.08% Gr的支架在神经再生中最有效,突出了石墨烯增强3d打印支架在神经组织工程中的潜力。这项研究强调了3D生物打印在推进神经修复治疗中的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A 3D printed biomimetic composite scaffold based on graphene/gelatin/sodium alginate bioink: Cell proliferation effects and toxicity assessments.

Peripheral nerve injuries are a major global health issue, with current treatments showing significant limitations. Neural tissue engineering provides a promising solution by creating supportive environments for nerve regeneration. This study used advanced 3D bioprinting to produce biomimetic scaffolds from graphene-enhanced bio-inks, integrating cells, scaffold materials, and growth signals. Compared to traditional methods, 3D printing ensures precise material distribution, improving cell density. The bio-ink, made of graphene (Gr), gelatin (Gel), and sodium alginate (SA), was tested at concentrations of 0.02%, 0.08%, and 0.2% to find the best formula for neural repair. Among four scaffold groups (Gel/SA, 0.02% Gr/Gel/SA, 0.08% Gr/Gel/SA, 0.2% Gr/Gel/SA), the 0.08% Gr scaffold showed the best mechanical strength, structural integrity, and biocompatibility. Graphene improved the scaffolds' compressive strength and degradation balance but reduced water absorption, porosity and increased the contact angle at higher concentrations. PC12 cells on the scaffolds showed excellent proliferation and minimal toxicity at lower graphene levels. The 0.08% Gr scaffold was most effective in nerve regeneration, highlighting the potential of graphene-enhanced 3D-printed scaffolds for neural tissue engineering. This research underscores the importance of 3D bioprinting in advancing nerve repair treatments.

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来源期刊
Journal of Biomaterials Applications
Journal of Biomaterials Applications 工程技术-材料科学:生物材料
CiteScore
5.10
自引率
3.40%
发文量
144
审稿时长
1.5 months
期刊介绍: The Journal of Biomaterials Applications is a fully peer reviewed international journal that publishes original research and review articles that emphasize the development, manufacture and clinical applications of biomaterials. Peer-reviewed articles by biomedical specialists from around the world cover: New developments in biomaterials, R&D, properties and performance, evaluation and applications Applications in biomedical materials and devices - from sutures and wound dressings to biosensors and cardiovascular devices Current findings in biological compatibility/incompatibility of biomaterials The Journal of Biomaterials Applications publishes original articles that emphasize the development, manufacture and clinical applications of biomaterials. Biomaterials continue to be one of the most rapidly growing areas of research in plastics today and certainly one of the biggest technical challenges, since biomaterial performance is dependent on polymer compatibility with the aggressive biological environment. The Journal cuts across disciplines and focuses on medical research and topics that present the broadest view of practical applications of biomaterials in actual clinical use. The Journal of Biomaterial Applications is devoted to new and emerging biomaterials technologies, particularly focusing on the many applications which are under development at industrial biomedical and polymer research facilities, as well as the ongoing activities in academic, medical and applied clinical uses of devices.
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