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New Magnetic Graphitized Carbon Black TiO2 Composite for Phosphopeptide Selective Enrichment in Shotgun Phosphoproteomics

机译:用于Shot弹枪蛋白质组学中磷酸肽选择性富集的新型磁性石墨化炭黑TiO2复合材料

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摘要

Graphitized carbon black (GCB) has been employed for extraction of several classes of analytes, due to the large surface area and the unique chemistry of its surface groups that allows for extracting a wide range of analytes, including polar, acidic compounds. Despite the fact that structurally related materials, such as graphene, found application as hybrid-components in phosphoproteomics, surprisingly, GCB has never been used for the selective enrichment of phosphopeptides. For this purpose, in the present work we used GCB to prepare a magnetic composite with TiO2 (mGCB@TiO2) that was then applied to yeast total extracts. We exploited the high surface area provided by nanostructures, the presence of nano-TiO2 for selective binding of phosphopeptides, and the magnetic responsiveness of magnetite for solid-phase separation. The material was extensively characterized at each modification step by transmission electron microscopy, Fourier-transformed infrared spectroscopy, thermogravimetric analysis, Raman spectroscopy, and porosimetry. Next, the new system was applied for the enrichment of casein phosphopeptides from a simulated tryptic digest with bovine serum albumin (BSA:casein, 100:1). Finally, after assessing the potential applicability, the composite was employed for enriching phosphopeptides from yeast protein digests. This allowed us not only to optimize the enrichment protocol but also to fully compare its performance to commercial TiO2 spin columns. To achieve this aim, the optimized enrichment protocol was included in a typical shotgun proteomics analytical workflow based on nanoHPLC-MS/MS analysis.
机译:石墨化炭黑(GCB)由于具有大的表面积和独特的表面基团化学性质,可用于提取多种类型的分析物,从而可提取各种分析物,包括极性酸性化合物。尽管事实证明与结构相关的材料(例如石墨烯)已在磷酸化蛋白质组学中用作杂化组分,但令人惊讶的是,GCB从未用于选择性富集磷酸肽。为此,在本工作中,我们使用GCB制备了具有TiO2的磁性复合材料(mGCB @ TiO2),然后将其应用于酵母总提取物中。我们利用了由纳米结构提供的高表面积,纳米TiO2的存在以选择性结合磷酸肽以及磁铁矿的磁响应性以进行固相分离。在每个改性步骤中,通过透射电子显微镜,傅立叶变换红外光谱,热重分析,拉曼光谱和孔隙率对材料进行了广泛的表征。接下来,将新系统应用于牛血清白蛋白(BSA:酪蛋白,100:1)从模拟胰蛋白酶消化物中富集酪蛋白磷酸肽。最后,在评估潜在的适用性之后,将复合材料用于从酵母蛋白质消化物中富集磷酸肽。这不仅使我们可以优化富集方案,而且可以将其性能与商用TiO2旋转柱进行全面比较。为了实现这一目标,在基于nanoHPLC-MS / MS分析的典型shot弹枪蛋白质组学分析工作流程中包括了优化的富集方案。

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