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无溶剂策略:将可降解、可植入金属封装于丝素蛋白中。

Solvent-Free Strategy To Encapsulate Degradable, Implantable Metals in Silk Fibroin.

作者信息

Hawker Morgan J, Guo Chengchen, Omenetto Fiorenzo G, Kaplan David L

机构信息

Department of Biomedical Engineering, Tufts University, 4 Colby Street, Medford, Massachusetts 02155, United States.

出版信息

ACS Appl Bio Mater. 2018 Nov 19;1(5):1677-1686. doi: 10.1021/acsabm.8b00498. Epub 2018 Oct 31.

Abstract

Implantable electronics hold enormous clinical potential for diagnosis and treatment of neurodegenerative and cardiac diseases and abnormalities. Transient devices are attractive alternatives to conventional silicon electrodes, as they can provide short-term electrical stimulation/recording followed by complete device degradation, mitigating the need for removal surgeries. Packaging transient metals is inherently challenging as they degrade upon contact with aqueous conditions. Development of new transient metal packaging strategies is a critical step toward transient device development. In this fundamental work, a solvent-free compression molding approach to encapsulate magnesium, a resorbable metal, in silk fibroin protein is reported. Silk fibroin was selected because of its processing versatility, desirable mechanical properties, compatibility with biological environments, and controllable degradation behavior in aqueous environments. The silk/magnesium composites were fabricated via compression molding, followed by water annealing to modify the secondary structure of the silk protein matrix to tune physical properties. Transient composite properties as a function of water annealing time are presented, which elucidate synergies between silk physical properties and degradation kinetics of the encapsulated magnesium, information useful in the design of multifunctional, transient metal-based constructs.

摘要

可植入电子设备在神经退行性疾病和心脏疾病及异常的诊断与治疗方面具有巨大的临床潜力。与传统的硅电极相比,瞬态设备是颇具吸引力的替代方案,因为它们能够提供短期电刺激/记录,随后设备完全降解,从而减少了移除手术的需求。对瞬态金属进行封装本质上具有挑战性,因为它们在与水性环境接触时会降解。开发新的瞬态金属封装策略是瞬态设备发展的关键一步。在这项基础研究中,报道了一种无溶剂压缩成型方法,用于将可吸收金属镁封装在丝素蛋白中。选择丝素蛋白是因其加工的多功能性、理想的机械性能、与生物环境的兼容性以及在水性环境中可控的降解行为。通过压缩成型制备丝/镁复合材料,随后进行水退火以改变丝蛋白基质的二级结构来调整物理性能。展示了瞬态复合材料性能随水退火时间的变化情况,这阐明了丝的物理性能与封装镁的降解动力学之间的协同作用,这些信息对于设计多功能、基于瞬态金属的构建体很有用。

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