Kharandiuk Tetiana, Tan Kok Hui, Xu Wenjing, Weitenhagen Fabian, Braun Susanne, Göstl Robert, Pich Andrij
DWI - Leibniz Institute for Interactive Materials Forckenbeckstr. 50 52056 Aachen Germany
Institute of Technical and Macromolecular Chemistry, RWTH Aachen University Worringerweg 1 52074 Aachen Germany.
Chem Sci. 2022 Aug 22;13(38):11304-11311. doi: 10.1039/d2sc03153a. eCollection 2022 Oct 5.
In the context of controlled delivery and release, proteins constitute a delicate class of cargo requiring advanced delivery platforms and protection. We here show that mechanoresponsive diselenide-crosslinked microgels undergo controlled ultrasound-triggered degradation in aqueous solution for the release of proteins. Simultaneously, the proteins are protected from chemical and conformational damage by the microgels, which disintegrate to water-soluble polymer chains upon sonication. The degradation process is controlled by the amount of diselenide crosslinks, the temperature, and the sonication amplitude. We demonstrate that the ultrasound-mediated cleavage of diselenide bonds in these microgels facilitates the release and activates latent functionality preventing the oxidation and denaturation of the encapsulated proteins (cytochrome C and myoglobin) opening new application possibilities in the targeted delivery of biomacromolecules.
在可控递送与释放的背景下,蛋白质是一类需要先进递送平台和保护措施的精细物质。我们在此表明,机械响应性二硒键交联微凝胶在水溶液中会经历可控的超声触发降解以释放蛋白质。同时,微凝胶可保护蛋白质免受化学和构象损伤,超声处理时微凝胶会分解为水溶性聚合物链。降解过程由二硒键交联量、温度和超声振幅控制。我们证明,这些微凝胶中二硒键的超声介导裂解有助于蛋白质释放并激活潜在功能,防止封装的蛋白质(细胞色素C和肌红蛋白)氧化和变性,为生物大分子的靶向递送开辟了新的应用可能性。