Lv Qiying, Li Qilin, Cao Peng, Wei Chunyu, Li Yuyu, Wang Zheng, Wang Lin
Hubei Key Laboratory of Regenerative Medicine and Multi-disciplinary Translational Research, Hubei Provincial Engineering Research Center of Clinical Laboratory and Active Health Smart Equipment, Research Center for Tissue Engineering and Regenerative Medicine, Union Hospital, Tongji Medical College, Huazhong University of Science and Technology, Wuhan, 430022, China.
Hubei Provincial Engineering Research Center of Clinical Laboratory and Active Health Smart Equipment; Department of Clinical Laboratory, Union Hospital, Tongji Medical College, Huazhong University of Science and Technology, Wuhan, 430022, China.
Adv Mater. 2025 Feb;37(8):e2411946. doi: 10.1002/adma.202411946. Epub 2024 Dec 17.
Implantable medical electronic devices (IMEDs) have attracted great attention and shown versatility for solving clinical problems ranging from real-time monitoring of physiological/ pathological states to electrical stimulation therapy and from monitoring brain cell activity to deep brain stimulation. The ongoing challenge is to select appropriate materials in target device configuration for biomedical applications. Currently, silk-based biomaterials have been developed for the design of diagnostic and therapeutic electronic devices due to their excellent properties and abundant active sites in the structure. Herein, the aim is to summarize the structural characteristics, physicochemical properties, and bioactivities of natural silk biomaterials as well as their derived materials, with a particular focus on the silk-based implantable biomedical electronic devices, such as implantable devices for invasive brain-computer interfaces, neural recording, and in vivo electrostimulation. In addition, future opportunities and challenges are also envisioned, hoping to spark the interests of researchers in interdisciplinary fields such as biomaterials, clinical medicine, and electronics.
植入式医疗电子设备(IMEDs)已引起广泛关注,并在解决临床问题方面展现出多功能性,涵盖从生理/病理状态的实时监测到电刺激治疗,以及从监测脑细胞活动到深部脑刺激等领域。当前面临的挑战是在目标设备配置中为生物医学应用选择合适的材料。目前,基于丝绸的生物材料因其优异的性能和结构中丰富的活性位点,已被用于诊断和治疗电子设备的设计。在此,目的是总结天然丝绸生物材料及其衍生材料的结构特征、物理化学性质和生物活性,特别关注基于丝绸的植入式生物医学电子设备,如用于侵入性脑机接口、神经记录和体内电刺激的植入式设备。此外,还展望了未来的机遇和挑战,希望激发生物材料、临床医学和电子学等跨学科领域研究人员的兴趣。