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Reducing protein oxidation in low-flow electrospray enables deeper investigation of proteoforms by top down proteomics

机译:减少低流量电喷雾中的蛋白质氧化,可以通过自上而下的蛋白质组学更深入地研究蛋白质形式

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Enabling the implementation of top down proteomic techniques within clinical workflows requires a dramatic increase in sensitivity. It has been previously demonstrated that electrospray ionization (ESI) becomes more efficient with decreasing volumetric flow rates at the emitter. Therefore, narrow inner diameter (I.D.) columns used in front-end chromatographic separations yield increased sensitivity. However, the smaller cross-sectional area of a narrow I.D. column places a larger fraction of the eluent in fluid communication with the electrode within the high voltage union that facilitates electrospray ionization (ESI), leading to increased oxidation of solution-phase proteins. Oxidation of proteins alters their chemical state of the protein, complicates data analysis, and reduces the depth of proteome coverage attained in a typical top-down proteomics experiment. Excessive protein oxidation results in poor deconvolution and exact mass calculations from MS1 spectra, interferes with peak isolation for MS/MS fragmentation, and effectively reduces sensitivity by splitting ion current. All of these factors deteriorate top down mass spectral data quality, an effect that becomes more pronounced as column diameter decreases. Artificial protein oxidation can also mislead investigations of in vivo protein oxidation. All of these effects are accentuated in comparison to bottom up proteomics due to the increased probability of having oxidizable residues within a particular species with increasing mass. Herein, we describe a configuration (which we term ''Low Protein Oxidation (LPOx)'') for proteomics experiments created by re-arranging liquid chromatography (LC) plumbing and present its application to artificial protein oxidation and show a marked improvement in detection sensitivity. Using a standard mixture of five intact proteins, we demonstrate that the LPOx configuration reduces protein oxidation up to 90% using 50@mm I.D. columns when compared to a conventional LC plumbing configuration with 50@mm I.D. column. As a proof-of-concept study, at least 11 distinct proteoforms of serum Apolipoprotein A1 were detected with the LPOx configuration. This innovative LC configuration can be applied to the top down identification and characterization of proteoforms obscured by abundant artificial protein oxidation at low flowrates, all while using reduced amounts of valuable protein samples.
机译:要在临床工作流程中实现自上而下的蛋白质组学技术,需要大大提高敏感性。先前已经证明,随着喷射器处体积流量的减小,电喷雾电离(ESI)变得更加有效。因此,用于前端色谱分离的狭窄内径(I.D.)色谱柱可提高灵敏度。但是,窄内径的横截面面积较小。色谱柱将较大部分的洗脱液与高压接头内的电极流体连通,从而促进电喷雾电离(ESI),从而导致溶液相蛋白质的氧化增加。蛋白质的氧化会改变蛋白质的化学状态,使数据分析复杂化,并减少典型的自上而下的蛋白质组学实验中蛋白质组覆盖的深度。过度的蛋白质氧化会导致差的去卷积和MS1质谱图的精确质量计算,干扰MS / MS碎片的峰分离,并通过分离离子电流有效降低灵敏度。所有这些因素都会降低自上而下的质谱数据质量,这种影响随着色谱柱直径的减小而变得更加明显。人工蛋白质氧化也可能误导体内蛋白质氧化的研究。与自下而上的蛋白质组学相比,所有这些作用都得到了加强,这是由于特定物种中随着质量增加而具有可氧化残基的可能性增加。本文中,我们描述了通过重新排列液相色谱(LC)管线创建的蛋白质组学实验的配置(我们称之为``低蛋白氧化(LPOx)''),并将其应用于人工蛋白氧化并显示出显着的检测改进灵敏度。使用五个完整蛋白质的标准混合物,我们证明LPOx配置可在使用50mm mm内径的情况下将蛋白质氧化最多降低90%。与具有50 @ mm内径的常规LC管道配置相比柱。作为概念验证研究,使用LPOx配置检测到了至少11种不同的血清载脂蛋白A1蛋白形式。这种创新的液相色谱配置可应用于自上而下的鉴定和表征,因为在低流速下,大量的人工蛋白质氧化会掩盖蛋白质形式,而同时减少了有价值的蛋白质样品的量。

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