Structure-based validation can drastically underestimate error rate in proteome-wide cross-linking mass spectrometry studies

基于结构的验证可能会大大低估蛋白质组范围交联质谱研究中的错误率

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作者:Kumar Yugandhar, Ting-Yi Wang, Shayne D Wierbowski, Elnur Elyar Shayhidin, Haiyuan Yu

Abstract

Thorough quality assessment of novel interactions identified by proteome-wide cross-linking mass spectrometry (XL-MS) studies is critical. Almost all current XL-MS studies have validated cross-links against known three-dimensional structures of representative protein complexes. Here, we provide theoretical and experimental evidence demonstrating that this approach can drastically underestimate error rates for proteome-wide XL-MS datasets, and propose a comprehensive set of four data-quality metrics to address this issue.

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