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首页> 外文期刊>Analytical chemistry >Membrane-based nanoscale proteolytic reactor enabling protein digestion, peptide separation, and protein identification using mass spectrometry
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Membrane-based nanoscale proteolytic reactor enabling protein digestion, peptide separation, and protein identification using mass spectrometry

机译:基于膜的纳米级蛋白水解反应器,可通过质谱法进行蛋白质消化,肽分离和蛋白质鉴定

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摘要

A miniaturized trypsin membrane reactor housed inside a commonly used capillary fitting is developed and demonstrated for enabling rapid and sensitive protein identification by on-line proteolytic digestion and analysis of protein digests using nano-ESI-MS and MALDI-MS. The design and assembly of the capillary fitting-based trypsin membrane reactor are straightforward and highly robust, without the need for expensive fabrication technology and procedures. The resultant protein digests can also be further concentrated and resolved using capillary reversed-phase liquid chromatography or transient capillary isotachophoresis/zone electrophoresis prior to the mass spectrometric analysis in an integrated platform. By comparing these results with the results obtained from our previous studies using plastic microfluidics (Gao et al., AnaL Chem. 2001, 73, 2648-2655), significant reduction in dead volume and sample consumption can be achieved using this newly developed tryptic digestion station. This nanoscale reaction system enables rapid proteolytic digestion in seconds instead of hours for a protein concentration of less than 10(-8) M, consumes very little sample (less than or equal to 5 fmol), and offers capillary interfaces with various separation and mass spectrometry techniques. The ultrafast enzymatic turnover for attaining complete peptide coverage in protein identification is contributed by the highly porous structure of the membrane media, providing excessive trypsin loading while eliminating the constraints of diffusion-limited reaction kinetics. [References: 37]
机译:研制并展示了一种安装在常用毛细管接头中的小型胰蛋白酶膜反应器,该反应器可通过在线蛋白水解消化和使用纳米ESI-MS和MALDI-MS分析蛋白质消化物,实现快速灵敏的蛋白质鉴定。基于毛细管接头的胰蛋白酶膜反应器的设计和组装简单,高度耐用,而无需昂贵的制造技术和程序。在集成平台中进行质谱分析之前,还可以使用毛细管反相液相色谱或瞬时毛细管等速电泳/区域电泳进一步浓缩和分离所得的蛋白质消化物。通过将这些结果与我们以前使用塑料微流体技术的研究结果进行比较(Gao等人,AnaL Chem。2001,73,2648-2655),使用这种新开发的胰蛋白酶消化可以显着减少死体积和样品消耗站。此纳米级反应系统可在数秒内而不是数小时内快速进行蛋白水解,蛋白质浓度低于10(-8)M,消耗的样品很少(小于或等于5 fmol),并提供具有各种分离度和质量的毛细管界面光谱技术。膜介质的高度多孔结构有助于在蛋白质鉴定中实现完整的肽覆盖,其超快的酶转化率是由膜介质的高度多孔结构造成的,可提供过量的胰蛋白酶负载,同时消除了扩散受限的反应动力学的限制。 [参考:37]

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