Chen Baojin, Zhu Yan, Yu Renjie, Feng Yunxiang, Han Zhenpeng, Liu Chang, Zhu Pengcheng, Lu Lijun, Mao Yanchao
Key Laboratory of Materials Physics of Ministry of Education, School of Physics, Zhengzhou University, Zhengzhou 450001, China.
Gels. 2025 Jun 9;11(6):442. doi: 10.3390/gels11060442.
Bioelectronics for wearable and implantable biomedical devices has attracted significant attention due to its potential for continuous health monitoring, early disease diagnosis, and real-time therapeutic interventions. Among the various materials explored for bioelectronic applications, hydrogels derived from natural biopolymers have emerged as highly promising candidates, owing to their inherent biocompatibility, mechanical compliance akin to biological tissues, and tunable structural properties. This review provides a comprehensive overview of recent advancements in the design and application of protein-based hydrogels, including gelatin, collagen, silk fibroin, and gluten, as well as carbohydrate-based hydrogels such as chitosan, cellulose, alginate, and starch. Particular emphasis is placed on elucidating their intrinsic material characteristics, modification strategies to improve electrical and mechanical performance, and their applicability for bioelectronic interfaces. The review further explores their diverse applications in physiological and biochemical signal sensing, bioelectric signal recording, and electrical stimulation. Finally, current challenges and future perspectives are discussed to guide the ongoing innovation of hydrogel-based systems for next-generation bioelectronic technologies.
用于可穿戴和植入式生物医学设备的生物电子学因其在连续健康监测、疾病早期诊断和实时治疗干预方面的潜力而备受关注。在为生物电子应用探索的各种材料中,源自天然生物聚合物的水凝胶已成为极具潜力的候选材料,这归因于其固有的生物相容性、类似于生物组织的机械顺应性以及可调节的结构特性。本综述全面概述了基于蛋白质的水凝胶(包括明胶、胶原蛋白、丝素蛋白和麸质)以及基于碳水化合物的水凝胶(如壳聚糖、纤维素、藻酸盐和淀粉)在设计和应用方面的最新进展。特别强调阐明它们的内在材料特性、改善电学和机械性能的改性策略以及它们在生物电子界面中的适用性。该综述进一步探讨了它们在生理和生化信号传感、生物电信号记录以及电刺激方面的多样应用。最后,讨论了当前的挑战和未来的前景,以指导基于水凝胶的系统在下一代生物电子技术方面的持续创新。