在低流量电喷雾中减少蛋白质氧化可以通过自上而下的蛋白质组学对蛋白质形态进行更深入的研究

Q4 Biochemistry, Genetics and Molecular Biology EuPA Open Proteomics Pub Date : 2015-09-01 DOI:10.1016/j.euprot.2015.05.005
Kyunggon Kim , Philip D. Compton , Timothy K. Toby , Paul M. Thomas , John T. Wilkins , R.Kannan Mutharasan , Neil L. Kelleher
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引用次数: 8

摘要

在临床工作流程中实现自上而下的蛋白质组学技术需要显著提高灵敏度。先前已经证明,电喷雾电离(ESI)随着发射器体积流量的降低而变得更有效。因此,窄内径(I.D.)柱用于前端色谱分离产生增加的灵敏度。然而,狭窄的I.D.柱的较小横截面积使得较大比例的洗脱液在高压联盟内与电极进行流体通信,从而促进电喷雾电离(ESI),导致溶液相蛋白质的氧化增加。蛋白质的氧化改变了蛋白质的化学状态,使数据分析复杂化,并降低了典型的自上而下的蛋白质组学实验中获得的蛋白质组覆盖深度。过量的蛋白质氧化导致MS1光谱的反褶积和精确的质量计算不佳,干扰MS/MS碎片的峰分离,并通过分裂离子电流有效降低灵敏度。所有这些因素都会降低质谱数据的质量,随着色谱柱直径的减小,这种影响会变得更加明显。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,所有这些效应都更加突出,因为随着质量的增加,在特定物种中具有可氧化残基的可能性增加。在这里,我们描述了一种配置(我们称之为“低蛋白氧化(LPOx)”),通过重新排列液相色谱(LC)管道创建的蛋白质组学实验,并介绍了它在人工蛋白质氧化中的应用,并显示出检测灵敏度的显着提高。使用五种完整蛋白质的标准混合物,我们证明与使用50 μm id柱的传统LC管道配置相比,使用50 μm id柱的LPOx配置可减少高达90%的蛋白质氧化。作为一项概念验证性研究,至少有11种不同的血清载脂蛋白A1蛋白被检测出具有LPOx结构。这种创新的LC配置可以应用于在低流量下被大量人工蛋白质氧化掩盖的蛋白质形态的自上而下的鉴定和表征,同时使用减少的有价值的蛋白质样品。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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

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 μm I.D. columns when compared to a conventional LC plumbing configuration with 50 μm 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.

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EuPA Open Proteomics
EuPA Open Proteomics Biochemistry, Genetics and Molecular Biology-Biochemistry
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Proceedings of the EuBIC-MS 2020 Developers’ Meeting Editorial: The next generation in (EuPA Open) Proteomics Aims & scope Proceedings of the EuBIC Winter School 2019 Introducing the YPIC challenge
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