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Sensing Native Protein Solution Structures Using a Solid-state Nanopore: Unraveling the States of VEGF

机译:使用固态纳米孔感测天然蛋白质溶液结构:解开VEGF的状态

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Monitoring individual proteins in solution while simultaneously obtaining tertiary and quaternary structural information is challenging. In this study, translocation of the vascular endothelial growth factor (VEGF) protein through a solid-state nanopore (ssNP) produces distinct ion-current blockade amplitude levels and durations likely corresponding to monomer, dimer, and higher oligomeric states. Upon changing from a non-reducing to a reducing condition, ion-current blockage events from the monomeric state dominate, consistent with the expected reduction of the two inter-chain VEGF disulfide bonds. Cleavage by plasmin and application of either a positive or a negative NP bias results in nanopore signals corresponding either to the VEGF receptor recognition domain or to the heparin binding domain, accordingly. Interestingly, multi-level analysis of VEGF events reveals how individual domains affect their translocation pattern. Our study shows that careful characterization of ssNP results elucidates real-time structural information about the protein, thereby complementing classical techniques for structural analysis of proteins in solution with the added advantage of quantitative single-molecule resolution of native proteins.
机译:在解决方案中监测单个蛋白质,同时获得第三级和第四纪结构信息是具有挑战性的。在该研究中,通过固态纳米孔(SSNP)倾斜血管内皮生长因子(VEGF)蛋白质产生明显的离子电流阻滞振幅水平和可能对应于单体,二聚体和更高低聚状态的持续时间。在从非减少到还原条件下改变时,来自单体状态的离子电流阻塞事件支配,与两种间连锁间VEGF二硫键的预期减少一致。通过纤溶酶切割和阳性或负NP偏差的施用导致对应于VEGF受体识别结构域或肝素结合结构域的纳米孔信号。有趣的是,VEGF事件的多层次分析揭示了个体域如何影响其易位模式。我们的研究表明,SSNP结果的仔细表征阐明了有关蛋白质的实时结构信息,从而补充了溶液中蛋白质结构分析的经典技术,其具有本地蛋白的数量单分子分辨率的额外优点。

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