Department of Chemistry, National University of Singapore, 3 Science Drive 3, Singapore, 117543, Singapore.
College of Materials Science & Engineering, South China University of Technology, 510640, Guangzhou, China.
Angew Chem Int Ed Engl. 2017 Oct 2;56(41):12481-12485. doi: 10.1002/anie.201705578. Epub 2017 Sep 7.
Antibodies are important biopharmaceuticals, but almost all existing antibody-based drugs are limited to targeting antigens located at the cell exterior because of the inability of antibodies to enter the cell interior. Available methods for intracellular delivery of antibodies have major shortcomings. Herein, we report an approach to encapsulate native antibodies in a biodegradable silica nanoquencher (BS-qNP), which could undergo efficient cellular uptake and intracellular degradation to release antibodies only under hypoxic conditions. By coating the surface of BS-qNP with cell-penetrating poly(disulfide)s (CPD), the delivered antibodies (or other proteins) avoided endolysosomal trapping. Doping of the silica coating with a fluorescent dye and a dark hole quencher further endowed BS-qNP with hypoxia-responsive fluorescence turn-on property. Our antibody delivery system thus provides the first platform capable of stable encapsulation, efficient uptake, on-demand antibody release, and imaging of release/cell state.
抗体是重要的生物制药,但由于抗体无法进入细胞内部,几乎所有现有的基于抗体的药物都仅限于靶向位于细胞外表面的抗原。用于抗体细胞内递送的现有方法存在主要缺陷。在此,我们报告了一种将天然抗体封装在可生物降解的硅纳米猝灭剂(BS-qNP)中的方法,该方法可以在缺氧条件下通过有效的细胞摄取和细胞内降解来释放抗体。通过用穿透细胞的聚(二硫键)(CPD)修饰 BS-qNP 的表面,可以避免递送至细胞内的抗体(或其他蛋白质)被内溶酶体捕获。用荧光染料和暗腔猝灭剂掺杂硅涂层进一步赋予 BS-qNP 缺氧响应的荧光开启特性。因此,我们的抗体递送系统提供了第一个能够稳定封装、高效摄取、按需释放抗体以及释放/细胞状态成像的平台。