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Selective conjugation of proteins by mining active proteomes through click-functionalized magnetic nanoparticles

机译:通过单击功能化的磁性纳米粒子挖掘活性蛋白质组,从而选择性地结合蛋白质

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Superparamagnetic iron oxide nanoparticles (SPIONs) coated with azide groups were functionalized at the surface with biotin (biotin@SPIONs) and cysteine protease inhibitor E-64 (E-64@SPIONs) with the purpose of developing nanoparticle-based assays for identifying cysteine proteases in proteomes. Magnetite particles (ca. 6 nm) were synthesized by microwave-assisted thermal decomposition of iron acetylacetonate and subsequently functionalized following a click chemistry protocol to obtain biotin and E-64 labeled particulate systems. Successful surface modification and covalent attachment of functional groups and molecules were confirmed by FT-IR spectroscopy and thermal gravimetric analysis. The ability of the surface-grafted biotin terminal groups to specifically interact with streptavidin (either horseradish peroxidase [(HRP)-luminol-H_2O_2] or rhodamine) was confirmed by chemiluminescent assay. A quantitative assessment showed a capture limit of 0.55-1.65 μg protein/100 μg particles. Furthermore, E-64@SPIONs were successfully used to specifically label papain-like cysteine proteases from crude plant extracts. Owing to the simplicity and versatility of the technique, together with the superparamagnetic behavior of FeOx-nanoparticles, the results demonstrate that click chemistry on surface anchored azide group is a viable approach toward bioconjugations that can be extended to other nanoparticles surfaces with different functional groups to target specific therapeutic and diagnostic applications.
机译:用生物素(biotin @ SPIONs)和半胱氨酸蛋白酶抑制剂E-64(E-64 @ SPIONs)在表面上官能化了叠氮化物基团的超顺磁性氧化铁纳米颗粒(SPIONs),目的是开发基于纳米颗粒的半胱氨酸蛋白酶检测方法在蛋白质组学中。通过微波辅助乙酰丙酮铁的热分解合成磁铁矿颗粒(约6 nm),然后按照点击化学方案进行功能化,以获得生物素和E-64标记的颗粒系统。 FT-IR光谱和热重分析证实了官能团和分子的成功表面修饰和共价连接。表面发光的生物素末端基团与链霉亲和素(辣根过氧化物酶[(HRP)-luminol-H_2O_2]或若丹明)特异性相互作用的能力已通过化学发光法得以证实。定量评估显示捕获限为0.55-1.65μg蛋白质/ 100μg颗粒。此外,E-64 @ SPIONs已成功用于从粗植物提取物中特异性标记木瓜蛋白酶样半胱氨酸蛋白酶。由于该技术的简单性和多功能性以及FeOx纳米粒子的超顺磁性行为,结果表明,表面固定的叠氮化物基团上的点击化学反应是一种生物共轭的可行方法,可以扩展到具有不同官能团的其他纳米粒子表面针对特定的治疗和诊断应用。

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