Park Yoonseok, Chung Ted S, Rogers John A
Querrey Simpson Institute for Bioelectronics, Northwestern University, Evanston, IL 60208, USA.
Querrey Simpson Institute for Bioelectronics, Northwestern University, Evanston, IL 60208, USA; Department of Biomedical Engineering, Northwestern University, Evanston, IL 60208, USA.
Curr Opin Biotechnol. 2021 Dec;72:1-7. doi: 10.1016/j.copbio.2021.07.023. Epub 2021 Aug 3.
Recent advances in bio-interface technologies establish a rich range of electronic, optoelectronic, thermal, and chemical options for probing and modulating the behaviors of small-scale three dimensional (3D) biological constructs (e.g. organoids, spheroids, and assembloids). These approaches represent qualitative advances over traditional alternatives due to their ability to extend broadly into volumetric spaces and/or to wrap tightly curved surfaces of natural or artificial tissues. Thin deformable sheets, filamentary penetrating pins, open mesh structures and 3D interconnected networks represent some of the most effective design strategies in this emerging field of bioelectronics. This review focuses on recent developments, with an emphasis on multimodal interfaces in the form of tissue-embedding scaffolds and tissue-surrounding frameworks.
生物界面技术的最新进展为探测和调节小规模三维(3D)生物构建体(如类器官、球体和组装体)的行为建立了丰富多样的电子、光电、热学和化学方法。这些方法相较于传统方法有质的进步,因为它们能够广泛延伸到三维空间和/或紧密包裹天然或人造组织的弯曲表面。薄的可变形片材、丝状穿透针、开放网状结构和三维互连网络是这个新兴生物电子领域中一些最有效的设计策略。本综述聚焦于近期的发展,重点是组织嵌入支架和组织周围框架形式的多模态界面。