In Silico Proteome Cleavage Reveals Iterative Digestion Strategy for High Sequence Coverage.

ISRN computational biology Pub Date : 2014-01-01 Epub Date: 2014-04-22 DOI:10.1155/2014/960902
Jesse G Meyer
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引用次数: 7

Abstract

In the postgenome era, biologists have sought to measure the complete complement of proteins, termed proteomics. Currently, the most effective method to measure the proteome is with shotgun, or bottom-up, proteomics, in which the proteome is digested into peptides that are identified followed by protein inference. Despite continuous improvements to all steps of the shotgun proteomics workflow, observed proteome coverage is often low; some proteins are identified by a single peptide sequence. Complete proteome sequence coverage would allow comprehensive characterization of RNA splicing variants and all posttranslational modifications, which would drastically improve the accuracy of biological models. There are many reasons for the sequence coverage deficit, but ultimately peptide length determines sequence observability. Peptides that are too short are lost because they match many protein sequences and their true origin is ambiguous. The maximum observable peptide length is determined by several analytical challenges. This paper explores computationally how peptide lengths produced from several common proteome digestion methods limit observable proteome coverage. Iterative proteome cleavage strategies are also explored. These simulations reveal that maximized proteome coverage can be achieved by use of an iterative digestion protocol involving multiple proteases and chemical cleavages that theoretically allow 92.9% proteome coverage.

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硅蛋白组内裂解揭示了高序列覆盖率的迭代消化策略。
在后基因组时代,生物学家试图测量蛋白质的完整互补性,称为蛋白质组学。目前,测量蛋白质组最有效的方法是鸟枪式或自下而上的蛋白质组学,即蛋白质组被消化成肽,然后进行蛋白质推断。尽管鸟枪式蛋白质组学工作流程的所有步骤都在不断改进,但观察到的蛋白质组覆盖率通常很低;一些蛋白质是通过单个肽序列鉴定的。完整的蛋白质组序列覆盖将允许对RNA剪接变体和所有翻译后修饰进行全面表征,这将大大提高生物模型的准确性。序列覆盖率不足的原因有很多,但最终肽长度决定了序列的可观察性。太短的肽会丢失,因为它们与许多蛋白质序列匹配,而且它们的真实来源不明确。可观察到的最大肽长度是通过几个分析挑战来确定的。本文通过计算探讨了几种常见的蛋白质组消化方法产生的肽长度如何限制可观察的蛋白质组覆盖范围。还探索了迭代蛋白质组切割策略。这些模拟表明,通过使用迭代消化方案可以实现蛋白质组覆盖率的最大化,该方案涉及多个蛋白酶和化学裂解,理论上允许92.9%的蛋白质组覆盖。
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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