Program in Biomedical Science & Engineering, Inha University, 100, Inha-ro, Michuhol-gu, Incheon, Republic of Korea.
Department of Chemical Engineering, Inha University, 100, Inha-ro, Michuhol-gu, Incheon, Republic of Korea.
J Mater Chem B. 2022 Nov 3;10(42):8575-8595. doi: 10.1039/d2tb01475k.
Biodegradable polymers have been widely used in tissue engineering with the potential to be replaced by regenerative tissue. While conventional bionic interfaces are designed to be implanted in living tissue and organs permanently, biocompatible and biodegradable electronic materials are now progressing a paradigm shift towards transient and regenerative bionic engineering. For example, biodegradable bioelectronics can monitor physiologies in a body, transiently rehabilitate disease symptoms, and seamlessly form regenerative interfaces from synthetic electronic devices to tissues by reducing inflammatory foreign-body responses. Conventional electronic materials have not readily been considered biodegradable. However, several strategies have been adopted for designing electroactive and biodegradable materials systems: (1) conductive materials blended with biodegradable components, (2) molecularly engineered conjugated polymers with biodegradable moieties, (3) naturally derived conjugated biopolymers, and (4) aqueously dissolvable metals with encapsulating layers. In this review, we endeavor to present the technical bridges from electrically active and biodegradable material systems to edible and biodegradable electronics as well as transient bioelectronics with pre-clinical bio-instrumental applications, including biodegradable sensors, neural and tissue engineering, and intelligent drug delivery systems.
可生物降解聚合物已广泛应用于组织工程,具有替代再生组织的潜力。虽然传统的仿生界面设计用于永久性植入活体组织和器官,但现在生物相容和可生物降解的电子材料正在朝着瞬态和再生仿生工程的范式转变。例如,可生物降解的生物电子学可以监测体内的生理机能,暂时缓解疾病症状,并通过减少炎症性异物反应,从合成电子设备到组织无缝形成可再生接口。传统的电子材料尚未被认为是可生物降解的。然而,已经采用了几种策略来设计电活性和可生物降解材料系统:(1)与可生物降解成分混合的导电材料,(2)具有可生物降解部分的分子工程共轭聚合物,(3)天然衍生的共轭生物聚合物,以及(4)具有封装层的水溶胀金属。在这篇综述中,我们努力展示从电活性和可生物降解材料系统到可食用和可生物降解电子学以及具有临床前生物仪器应用的瞬态生物电子学的技术桥梁,包括可生物降解传感器、神经和组织工程以及智能药物输送系统。