Institute of Polymer Science and Engineering, National Taiwan University, No. 1, Sec. 4 Roosevelt Road, Taipei 10617, Taiwan.
Institute of Cellular and System Medicine, National Health Research Institutes, No. 35 Keyan Road, Miaoli 35053, Taiwan.
Molecules. 2020 Nov 13;25(22):5296. doi: 10.3390/molecules25225296.
Conductive hydrogel, with electroconductive properties and high water content in a three-dimensional structure is prepared by incorporating conductive polymers, conductive nanoparticles, or other conductive elements, into hydrogel systems through various strategies. Conductive hydrogel has recently attracted extensive attention in the biomedical field. Using different conductivity strategies, conductive hydrogel can have adjustable physical and biochemical properties that suit different biomedical needs. The conductive hydrogel can serve as a scaffold with high swelling and stimulus responsiveness to support cell growth in vitro and to facilitate wound healing, drug delivery and tissue regeneration in vivo. Conductive hydrogel can also be used to detect biomolecules in the form of biosensors. In this review, we summarize the current design strategies of conductive hydrogel developed for applications in the biomedical field as well as the perspective approach for integration with biofabrication technologies.
导电水凝胶通过各种策略将导电聚合物、导电纳米粒子或其他导电元件掺入水凝胶系统中,制备出具有导电性能和三维结构高含水量的材料。导电水凝胶最近在生物医学领域引起了广泛关注。通过不同的导电策略,导电水凝胶可以具有可调的物理和生化特性,以满足不同的生物医学需求。导电水凝胶可用作支架,具有高溶胀性和刺激响应性,可支持体外细胞生长,并促进体内伤口愈合、药物输送和组织再生。导电水凝胶还可以用作生物传感器形式的生物分子检测。在本文中,我们总结了目前为应用于生物医学领域而开发的导电水凝胶的设计策略,以及与生物制造技术相结合的方法。