Biomaterials Research Center, Biomedical Research Division, Korea Institute of Science and Technology, Seoul 02792, Republic of Korea.
Center for Nanoparticle Research, Institute for Basic Science (IBS), Seoul 08826, Republic of Korea.
ACS Nano. 2024 May 14;18(19):12025-12048. doi: 10.1021/acsnano.4c02171. Epub 2024 May 5.
Cardiac interfacing devices are essential components for the management of cardiovascular diseases, particularly in terms of electrophysiological monitoring and implementation of therapies. However, conventional cardiac devices are typically composed of rigid and bulky materials and thus pose significant challenges for effective long-term interfacing with the curvilinear surface of a dynamically beating heart. In this regard, the recent development of intrinsically soft bioelectronic devices using nanocomposites, which are fabricated by blending conductive nanofillers in polymeric and elastomeric matrices, has shown great promise. The intrinsically soft bioelectronics not only endure the dynamic beating motion of the heart and maintain stable performance but also enable conformal, reliable, and large-area interfacing with the target cardiac tissue, allowing for high-quality electrophysiological mapping, feedback electrical stimulations, and even mechanical assistance. Here, we explore next-generation cardiac interfacing strategies based on soft bioelectronic devices that utilize elastic conductive nanocomposites. We first discuss the conventional cardiac devices used to manage cardiovascular diseases and explain their undesired limitations. Then, we introduce intrinsically soft polymeric materials and mechanical restraint devices utilizing soft polymeric materials. After the discussion of the fabrication and functionalization of conductive nanomaterials, the introduction of intrinsically soft bioelectronics using nanocomposites and their application to cardiac monitoring and feedback therapy follow. Finally, comments on the future prospects of soft bioelectronics for cardiac interfacing technologies are discussed.
心脏接口设备是心血管疾病管理的重要组成部分,特别是在电生理监测和治疗实施方面。然而,传统的心脏设备通常由刚性和体积庞大的材料组成,因此在与动态跳动心脏的曲面相有效长期接口方面存在重大挑战。在这方面,使用纳米复合材料的固有软生物电子设备的最新发展显示出巨大的潜力,这些纳米复合材料是通过在聚合物和弹性体基质中混合导电纳米填料来制造的。固有软生物电子不仅能够承受心脏的动态跳动运动并保持稳定的性能,而且还能够实现与目标心脏组织的贴合、可靠和大面积接口,从而实现高质量的电生理映射、反馈电刺激,甚至机械辅助。在这里,我们探讨基于利用弹性导电纳米复合材料的下一代心脏接口策略。我们首先讨论用于管理心血管疾病的传统心脏设备,并解释其不理想的局限性。然后,我们介绍利用软聚合物材料的固有软聚合物材料和机械约束装置。在讨论了导电纳米材料的制造和功能化之后,接下来介绍使用纳米复合材料的固有软生物电子及其在心脏监测和反馈治疗中的应用。最后,讨论了软生物电子在心脏接口技术方面的未来前景。