IF 6.1 2区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS
Tomas Koudelka, Claudio Bassot, Ilaria Piazza
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引用次数: 0

摘要

有限蛋白水解与质谱联用(LiP-MS)已成为在整个蛋白质组范围内检测蛋白质结构变化和药物-蛋白质相互作用的一种强大技术。然而,对于分析 LiP-MS 数据的最佳定量蛋白质组学工作流程还没有达成共识。在本研究中,我们以药物-靶标解旋测定为模型系统,对两种主要的定量方法--数据独立获取(DIA)和串联质量标签(TMT)等位标记--与 LiP-MS 的结合进行了全面的基准测试。我们的研究结果表明,虽然 TMT 标记能以较低的变异系数 (CV) 对更多肽段和蛋白质进行定量,但 DIA-MS 在识别真正药物靶标方面表现出更高的准确性,而且在蛋白质靶标肽段中表现出更强的剂量-反应相关性。此外,我们还评估了用于 DIA-MS 分析的免费软件工具(FragPipe)和商业软件工具(Spectronaut)的性能,发现在精确度(FragPipe)和灵敏度(Spectronaut)之间的选择主要取决于具体的实验环境。我们的发现强调了根据研究目标选择合适的 LiP-MS 定量策略的重要性。这项工作为结构蛋白质组学和药物发现领域的研究人员提供了有价值的指导,并强调了 Astral 质谱仪等质谱仪器的进步如何进一步提高灵敏度和蛋白质序列覆盖率,从而减少对 TMT 标记的需求。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Benchmarking of quantitative proteomics workflows for Limited proteolysis mass spectrometry.

Limited proteolysis coupled with mass spectrometry (LiP-MS) has emerged as a powerful technique for detecting protein structural changes and drug-protein interactions on a proteome-wide scale. However, there is no consensus on the best quantitative proteomics workflow for analyzing LiP-MS data. In this study, we comprehensively benchmarked two major quantification approaches-data-independent acquisition (DIA) and tandem mass tag (TMT) isobaric labeling-in combination with LiP-MS, using a drug-target deconvolution assay as a model system. Our results show that while TMT labeling enabled the quantification of more peptides and proteins with lower coefficients of variation (CVs), DIA-MS exhibited greater accuracy in identifying true drug targets and stronger dose-response correlation in protein targets peptides. Additionally, we evaluated the performance of freely available (FragPipe) versus commercial (Spectronaut) software tools for DIA-MS analysis, revealing that the choice between precision (FragPipe) and sensitivity (Spectronaut) largely depends on the specific experimental context. Our findings underscore the importance of selecting the appropriate LiP-MS quantification strategy based on the study objectives. This work provides valuable guidelines for researchers in structural proteomics and drug discovery, and highlights how advancements in mass spectrometry instrumentation, such as the Astral mass spectrometer, may further improve sensitivity and protein sequence coverage, potentially reducing the need for TMT labeling.

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来源期刊
Molecular & Cellular Proteomics
Molecular & Cellular Proteomics 生物-生化研究方法
CiteScore
11.50
自引率
4.30%
发文量
131
审稿时长
84 days
期刊介绍: The mission of MCP is to foster the development and applications of proteomics in both basic and translational research. MCP will publish manuscripts that report significant new biological or clinical discoveries underpinned by proteomic observations across all kingdoms of life. Manuscripts must define the biological roles played by the proteins investigated or their mechanisms of action. The journal also emphasizes articles that describe innovative new computational methods and technological advancements that will enable future discoveries. Manuscripts describing such approaches do not have to include a solution to a biological problem, but must demonstrate that the technology works as described, is reproducible and is appropriate to uncover yet unknown protein/proteome function or properties using relevant model systems or publicly available data. Scope: -Fundamental studies in biology, including integrative "omics" studies, that provide mechanistic insights -Novel experimental and computational technologies -Proteogenomic data integration and analysis that enable greater understanding of physiology and disease processes -Pathway and network analyses of signaling that focus on the roles of post-translational modifications -Studies of proteome dynamics and quality controls, and their roles in disease -Studies of evolutionary processes effecting proteome dynamics, quality and regulation -Chemical proteomics, including mechanisms of drug action -Proteomics of the immune system and antigen presentation/recognition -Microbiome proteomics, host-microbe and host-pathogen interactions, and their roles in health and disease -Clinical and translational studies of human diseases -Metabolomics to understand functional connections between genes, proteins and phenotypes
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