Development of 3D printable conductive cellulose-based hydrogel with incorporation of rGO for neural tissue engineering.

IF 9.7 1区 化学 Q1 CHEMISTRY, PHYSICAL
Elena Usala, Zoilo Gonzalez, Noelia Campillo, José Baena, Esther Rincón, Begoña Ferrari, Alejandro Rodríguez, E Espinosa
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引用次数: 0

Abstract

Biofabrication techniques such as extrusion-based 3D bioprinting have transformed tissue engineering by enabling the precise deposition of biomaterials bioinks, which can be used to create complex structures. However, the development of biomaterial bioinks that exhibit mechanical integrity, biocompatibility, and functional properties such as electrical conductivity remains a major challenge. In this study, a sustainable colloidal formulation strategy is proposed for incorporating reduced graphene oxide (rGO) into cellulose nanofiber (CNF) suspensions. This strategy eliminates the need for in situ chemical reduction and reduces the resulting toxicity. By leveraging electrostatic interactions and the intrinsic colloidal stability of the system, the method enhances control over the formulation process and facilitates the development of reproducible, efficient, and cytocompatible bioinks suitable for extrusion-based 3D bioprinting. For its validation, comprehensive rheological and printability analyses were carried out. Formulations containing 0.05 % and 0.1 % rGO were identified as the optimal for extrusion-based 3D bioprinting, demonstrating high structural fidelity and resolution. Preliminary biological assays using human astrocyte stem cells have confirmed excellent cytocompatibility, thereby promoting cell adhesion, proliferation, and survival, while minimizing cytotoxic effects. The incorporation of rGO into the hydrogels resulted in the enhancement of electrical conductivity, thereby expanding their application potential in the field of electrically active tissue regeneration. In summary, the CNF-rGO hybrid bioinks developed herein represent a promising, scalable, and cytocompatibility platform for advanced neural tissue engineering and other biomedical applications requiring electrically conductive scaffolds.

用于神经组织工程的含有氧化石墨烯的可3D打印导电纤维素水凝胶的开发。
生物制造技术,如基于挤压的3D生物打印,通过实现生物材料生物墨水的精确沉积,改变了组织工程,生物材料生物墨水可用于创建复杂的结构。然而,开发具有机械完整性、生物相容性和功能特性(如导电性)的生物材料生物墨水仍然是一个主要挑战。在这项研究中,提出了一种可持续的胶体配方策略,将还原氧化石墨烯(rGO)掺入纤维素纳米纤维(CNF)悬浮液中。这一策略消除了就地化学还原的需要,并降低了由此产生的毒性。通过利用静电相互作用和系统固有的胶体稳定性,该方法增强了对配方过程的控制,并促进了适用于挤压生物3D打印的可重复、高效和细胞兼容的生物墨水的开发。为了验证其有效性,进行了全面的流变学和印刷性分析。含有0.05%和0.1%还原氧化石墨烯的配方被确定为基于挤压的3D生物打印的最佳配方,具有高结构保真度和分辨率。使用人类星形胶质干细胞进行的初步生物学试验证实了良好的细胞相容性,从而促进细胞粘附、增殖和存活,同时最大限度地减少细胞毒性作用。将氧化石墨烯掺入水凝胶后,可增强其导电性,从而扩大其在电活性组织再生领域的应用潜力。总之,本文开发的CNF-rGO混合生物墨水为高级神经组织工程和其他需要导电支架的生物医学应用提供了一个有前途的、可扩展的和细胞相容性的平台。
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来源期刊
CiteScore
16.10
自引率
7.10%
发文量
2568
审稿时长
2 months
期刊介绍: The Journal of Colloid and Interface Science publishes original research findings on the fundamental principles of colloid and interface science, as well as innovative applications in various fields. The criteria for publication include impact, quality, novelty, and originality. Emphasis: The journal emphasizes fundamental scientific innovation within the following categories: A.Colloidal Materials and Nanomaterials B.Soft Colloidal and Self-Assembly Systems C.Adsorption, Catalysis, and Electrochemistry D.Interfacial Processes, Capillarity, and Wetting E.Biomaterials and Nanomedicine F.Energy Conversion and Storage, and Environmental Technologies
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