Hui James Zhe, Al Zaki Ajlan, Cheng Zhiliang, Popik Vladimir, Zhang Hongtao, Luning Prak Eline T, Tsourkas Andrew
Department of Bioengineering, University of Pennsylvania, 210 S. 33rd Street, 240 Skirkanich Hall, Philadelphia, PA, 19104, USA.
Small. 2014 Aug 27;10(16):3354-63. doi: 10.1002/smll.201303629. Epub 2014 Apr 14.
Antibodies, most commonly IgGs, have been widely used as targeting ligands in research and therapeutic applications due to their wide array of targets, high specificity and proven efficacy. Many of these applications require antibodies to be conjugated onto surfaces (e.g. nanoparticles and microplates); however, most conventional bioconjugation techniques exhibit low crosslinking efficiencies, reduced functionality due to non-site-specific labeling and random surface orientation, and/or require protein engineering (e.g. cysteine handles), which can be technically challenging. To overcome these limitations, we have recombinantly expressed Protein Z, which binds the Fc region of IgG, with an UV active non-natural amino acid benzoylphenyalanine (BPA) within its binding domain. Upon exposure to long wavelength UV light, the BPA is activated and forms a covalent link between the Protein Z and the bound Fc region of IgG. This technology was combined with expressed protein ligation (EPL), which allowed for the introduction of a fluorophore and click chemistry-compatible azide group onto the C-terminus of Protein Z during the recombinant protein purification step. This enabled the crosslinked-Protein Z-IgG complexes to be efficiently and site-specifically attached to aza-dibenzocyclooctyne-modified nanoparticles, via copper-free click chemistry.
抗体,最常见的是免疫球蛋白G(IgG),由于其广泛的靶点、高特异性和已证实的疗效,已在研究和治疗应用中被广泛用作靶向配体。这些应用中的许多都需要将抗体偶联到表面(例如纳米颗粒和微孔板);然而,大多数传统的生物偶联技术表现出低交联效率、由于非位点特异性标记和随机表面取向导致的功能降低,和/或需要蛋白质工程(例如半胱氨酸处理),这在技术上可能具有挑战性。为了克服这些限制,我们重组表达了与IgG的Fc区域结合的蛋白Z,在其结合域内含有一个具有紫外线活性的非天然氨基酸苯甲酰苯丙氨酸(BPA)。在暴露于长波长紫外光时,BPA被激活并在蛋白Z和结合的IgG的Fc区域之间形成共价连接。该技术与表达蛋白连接(EPL)相结合,这允许在重组蛋白纯化步骤期间将荧光团和与点击化学兼容的叠氮基团引入到蛋白Z的C末端。这使得交联的蛋白Z-IgG复合物能够通过无铜点击化学有效地且位点特异性地连接到氮杂二苯并环辛炔修饰的纳米颗粒上。