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Network-based inference from complex proteomic mixtures using SNIPE

机译:使用SNIPE从复杂蛋白质组学混合物进行基于网络的推断

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Motivation: Proteomics presents the opportunity to provide novel insights about the global biochemical state of a tissue. However, a significant problem with current methods is that shotgun proteomics has limited success at detecting many low abundance proteins, such as transcription factors from complex mixtures of cells and tissues. The ability to assay for these proteins in the context of the entire proteome would be useful in many areas of experimental biology. Results: We used network-based inference in an approach named SNIPE (Software for Network Inference of Proteomics Experiments) that selectively highlights proteins that are more likely to be active but are otherwise undetectable in a shotgun proteomic sample. SNIPE integrates spectral counts from paired case–control samples over a network neighbourhood and assesses the statistical likelihood of enrichment by a permutation test. As an initial application, SNIPE was able to select several proteins required for early murine tooth development. Multiple lines of additional experimental evidence confirm that SNIPE can uncover previously unreported transcription factors in this system. We conclude that SNIPE can enhance the utility of shotgun proteomics data to facilitate the study of poorly detected proteins in complex mixtures.
机译:动机:蛋白质组学提供了提供有关组织的整体生物化学状态的新颖见解的机会。但是,当前方法的一个重大问题是shot弹枪蛋白质组学在检测许多低丰度蛋白质(例如来自细胞和组织的复杂混合物的转录因子)中的成功有限。在整个蛋白质组中检测这些蛋白质的能力将在实验生物学的许多领域中发挥作用。结果:我们在名为SNIPE(蛋白质组学实验网络推理软件)的方法中使用了基于网络的推理,该方法有选择地突出显示了在gun弹蛋白质组样本中更有可能具有活性但无法检测到的蛋白质。 SNIPE整合了网络邻居中配对病例对照样本的光谱计数,并通过置换测试评估了富集的统计可能性。作为最初的应用,SNIPE能够选择早期鼠齿发育所需的几种蛋白质。多行其他实验证据证实SNIPE可以发现该系统中以前未报告的转录因子。我们得出的结论是,SNIPE可以增强of弹枪蛋白质组学数据的实用性,以促进复杂混合物中蛋白质检测不良的研究。

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