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用于电活性组织的纤维素基导电水凝胶:综述摘要

Cellulosic-Based Conductive Hydrogels for Electro-Active Tissues: A Review Summary.

作者信息

Gebeyehu Esubalew Kasaw, Sui Xiaofeng, Adamu Biruk Fentahun, Beyene Kura Alemayehu, Tadesse Melkie Getnet

机构信息

Key Lab of Science and Technology of Eco-Textile, Ministry of Education, College of Chemistry, Chemical Engineering and Biotechnology, Donghua University, Shanghai 201620, China.

Textile Engineering Department, Ethiopian Institute of Textile and Fashion Technology, Bahir Dar University, Bahir Dar 1037, Ethiopia.

出版信息

Gels. 2022 Feb 23;8(3):140. doi: 10.3390/gels8030140.

Abstract

The use of hydrogel in tissue engineering is not entirely new. In the last six decades, researchers have used hydrogel to develop artificial organs and tissue for the diagnosis of real-life problems and research purposes. Trial and error dominated the first forty years of tissue generation. Nowadays, biomaterials research is constantly progressing in the direction of new materials with expanded capabilities to better meet the current needs. Knowing the biological phenomenon at the interaction among materials and the human body has promoted the development of smart bio-inert and bio-active polymeric materials or devices as a result of vigorous and consistent research. Hydrogels can be tailored to contain properties such as softness, porosity, adequate strength, biodegradability, and a suitable surface for adhesion; they are ideal for use as a scaffold to provide support for cellular attachment and control tissue shapes. Perhaps electrical conductivity in hydrogel polymers promotes the interaction of electrical signals among artificial neurons and simulates the physiological microenvironment of electro-active tissues. This paper presents a review of the current state-of-the-art related to the complete process of conductive hydrogel manufacturing for tissue engineering from cellulosic materials. The essential properties required by hydrogel for electro-active-tissue regeneration are explored after a short overview of hydrogel classification and manufacturing methods. To prepare hydrogel from cellulose, the base material, cellulose, is first synthesized from plant fibers or generated from bacteria, fungi, or animals. The natural chemistry of cellulose and its derivatives in the fabrication of hydrogels is briefly discussed. Thereafter, the current scenario and latest developments of cellulose-based conductive hydrogels for tissue engineering are reviewed with an illustration from the literature. Finally, the pro and cons of conductive hydrogels for tissue engineering are indicated.

摘要

水凝胶在组织工程中的应用并非全新的领域。在过去的六十年里,研究人员一直使用水凝胶来开发人造器官和组织,以诊断实际问题并用于研究目的。在组织生成的最初四十年里,主要是反复试验。如今,生物材料研究正不断朝着具有更广泛功能的新材料方向发展,以更好地满足当前需求。由于持续深入的研究,了解材料与人体相互作用中的生物学现象推动了智能生物惰性和生物活性聚合物材料或装置的发展。水凝胶可以进行定制,使其具有柔软性、孔隙率、足够的强度、生物可降解性以及适合粘附的表面等特性;它们非常适合用作支架,为细胞附着提供支撑并控制组织形状。或许水凝胶聚合物中的导电性促进了人工神经元之间电信号的相互作用,并模拟了电活性组织的生理微环境。本文综述了从纤维素材料制造用于组织工程的导电水凝胶的完整过程的当前技术水平。在简要概述水凝胶的分类和制造方法之后,探讨了水凝胶用于电活性组织再生所需的基本特性。为了从纤维素制备水凝胶,首先要从植物纤维合成基础材料纤维素,或者由细菌、真菌或动物生成纤维素。简要讨论了纤维素及其衍生物在水凝胶制造中的天然化学性质。此后,结合文献中的示例,综述了用于组织工程的纤维素基导电水凝胶的现状和最新进展。最后,指出了用于组织工程的导电水凝胶的优缺点。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/29a5/8953959/c565d4253939/gels-08-00140-g001.jpg

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