Center for Nanoparticle Research, Institute for Basic Science (IBS), Seoul, 08826, Republic of Korea.
School of Chemical and Biological Engineering, Institute of Chemical Processes, Seoul National University, Seoul, 08826, Republic of Korea.
Adv Healthc Mater. 2024 Sep;13(24):e2303563. doi: 10.1002/adhm.202303563. Epub 2023 Dec 25.
Soft bioelectronic technologies for neuroengineering have shown remarkable progress, which include novel soft material technologies and device design strategies. Such technological advances that are initiated from fundamental brain science are applied to clinical neuroscience and provided meaningful promises for significant improvement in the diagnosis efficiency and therapeutic efficacy of various brain diseases recently. System-level integration strategies in consideration of specific disease circumstances can enhance treatment effects further. Here, recent advances in soft implantable bioelectronics for neuroengineering, focusing on materials and device designs optimized for the treatment of intracranial disease environments, are reviewed. Various types of soft bioelectronics for neuroengineering are categorized and exemplified first, and then details for the sensing and stimulating device components are explained. Next, application examples of soft implantable bioelectronics to clinical neuroscience, particularly focusing on the treatment of brain tumor and epilepsy are reviewed. Finally, an ideal system of soft intracranial bioelectronics such as closed-loop-type fully-integrated systems is presented, and the remaining challenges for their clinical translation are discussed.
软生物电子技术在神经工程学领域取得了显著的进展,包括新型软物质技术和器件设计策略。这些从基础脑科学出发的技术进步被应用于临床神经科学,并为各种脑部疾病的诊断效率和治疗效果的显著提高提供了有意义的前景。在考虑特定疾病情况的系统级集成策略可以进一步增强治疗效果。在这里,我们回顾了神经工程学中软植入式生物电子学的最新进展,重点介绍了针对颅内疾病环境优化的材料和器件设计。首先将各种类型的软生物电子学进行分类举例,然后解释传感和刺激器件组件的详细信息。接下来,回顾软植入式生物电子学在临床神经科学中的应用实例,特别是针对脑肿瘤和癫痫的治疗。最后,提出了一个理想的软颅内生物电子系统,如闭环式完全集成系统,并讨论了其临床转化的剩余挑战。