Graulus Geert-Jan, Ta Duy Tien, Tran Huong, Hansen Rebekka, Billen Brecht, Royackers Erik, Noben Jean-Paul, Devoogdt Nick, Muyldermans Serge, Guedens Wanda, Adriaensens Peter
Biomolecule Design Group, Institute for Materials Research (IMO), Hasselt University, Diepenbeek, Belgium.
Downstream Processing Group, Bioprocessing Technology Institute, Agency for Science, Technology and Research (A∗STAR), Singapore, Singapore.
Methods Mol Biol. 2019;2033:117-130. doi: 10.1007/978-1-4939-9654-4_9.
An expression strategy is presented in order to produce nanobodies modified with a clickable alkyne functionality at their C-terminus via the intein-mediated protein ligation (IPL) technique. The protocol focuses on the cytoplasmic expression and extraction of a nanobody-intein-chitin binding domain (CBD) fusion protein in E. coli SHuffle T7 cells, in the commonly used Luria-Bertani (LB) medium. The combination of these factors results in a high yield and nearly complete alkynation of the nanobody at its C-terminus via IPL. The resulting alkynated nanobodies retain excellent binding capacity toward the nanobody targeted antigen. The presented protocol benefits from time- and cost-effectiveness and allows for a feasible upscaling of functionalized (here alkynated) nanobodies. The production of high quantities of site-specifically modified nanobodies paves the way to (1) novel biosurface applications that demand for homogeneously oriented nanobodies having their active site fully accessible for target (e.g., biomarker) binding, and (2) innovative applications such as localized drug delivery and image guided surgery by covalent "click" chemistry coupling of these alkynated nanobodies to a multitude of azide-containing counterparts as there are drug containing polymers and contrast labeling agents.
本文提出了一种表达策略,旨在通过内含肽介导的蛋白质连接(IPL)技术,在纳米抗体的C端产生带有可点击炔基功能的修饰纳米抗体。该方案聚焦于在常用的Luria-Bertani(LB)培养基中,在大肠杆菌SHuffle T7细胞中进行纳米抗体-内含肽-几丁质结合域(CBD)融合蛋白的胞质表达和提取。这些因素的结合通过IPL实现了纳米抗体C端的高产率和几乎完全的炔基化。所得的炔基化纳米抗体对纳米抗体靶向抗原保留了优异的结合能力。所提出的方案具有时间和成本效益,并允许对功能化(此处为炔基化)纳米抗体进行可行的放大生产。大量位点特异性修饰纳米抗体的产生为以下方面铺平了道路:(1)新型生物表面应用,这些应用需要具有均匀取向且其活性位点可完全用于与靶标(如生物标志物)结合的纳米抗体;(2)创新应用,如通过将这些炔基化纳米抗体与多种含叠氮化物的对应物(如含药聚合物和造影剂)进行共价“点击”化学偶联实现局部药物递送和图像引导手术。