Improved Mass Spectrometry-Based Methods Reveal Abundant Propionylation and Tissue-Specific Histone Propionylation Profiles.

IF 6.1 2区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS
Molecular & Cellular Proteomics Pub Date : 2024-07-01 Epub Date: 2024-06-11 DOI:10.1016/j.mcpro.2024.100799
Alessandro Vai, Roberta Noberini, Chiara Ghirardi, Dieggo Rodrigues de Paula, Michele Carminati, Rani Pallavi, Nathália Araújo, Patrick Varga-Weisz, Tiziana Bonaldi
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引用次数: 0

Abstract

Histone posttranslational modifications (PTMs) have crucial roles in a multitude of cellular processes, and their aberrant levels have been linked with numerous diseases, including cancer. Although histone PTM investigations have focused so far on methylations and acetylations, alternative long-chain acylations emerged as new dimension, as they are linked to cellular metabolic states and affect gene expression through mechanisms distinct from those regulated by acetylation. Mass spectrometry is the most powerful, comprehensive, and unbiased method to study histone PTMs. However, typical mass spectrometry-based protocols for histone PTM analysis do not allow the identification of naturally occurring propionylation and butyrylation. Here, we present improved state-of-the-art sample preparation and analysis protocols to quantitate these classes of modifications. After testing different derivatization methods coupled to protease digestion, we profiled common histone PTMs and histone acylations in seven mouse tissues and human normal and tumor breast clinical samples, obtaining a map of propionylations and butyrylations found in different tissue contexts. A quantitative histone PTM analysis also revealed a contribution of histone acylations in discriminating different tissues, also upon perturbation with antibiotics, and breast cancer samples from the normal counterpart. Our results show that profiling only classical modifications is limiting and highlight the importance of using sample preparation methods that allow the analysis of the widest possible spectrum of histone modifications, paving the way for deeper insights into their functional significance in cellular processes and disease states.

基于质谱的改进方法揭示了丰富的丙酰化和组织特异性组蛋白丙酰化概况。
组蛋白翻译后修饰(PTM)在多种细胞过程中起着至关重要的作用,其异常水平与包括癌症在内的多种疾病有关。虽然迄今为止组蛋白 PTM 的研究主要集中在甲基化和乙酰化方面,但替代长链酰化成为新的研究领域,因为它们与细胞代谢状态有关,并通过不同于乙酰化的机制影响基因表达。质谱法(MS)是研究组蛋白 PTMs 最强大、最全面、最无偏见的方法。然而,典型的基于质谱的组蛋白 PTM 分析方案无法鉴定自然发生的丙酰化和丁酰化。在此,我们介绍了用于定量分析这两类修饰的最新样品制备和分析方案。在测试了不同的衍生化方法和蛋白酶消化后,我们分析了七种小鼠组织和人类正常及肿瘤乳腺临床样本中常见的组蛋白PTM和组蛋白酰化,获得了不同组织环境中丙酰化和丁酰化的分布图。组蛋白 PTM 定量分析还显示,组蛋白酰化有助于区分不同组织(也包括抗生素干扰)和乳腺癌样本与正常样本。我们的研究结果表明,仅对经典修饰进行分析是有局限性的,并强调了使用样品制备方法的重要性,这种方法可以分析尽可能广泛的组蛋白修饰,为深入了解它们在细胞过程和疾病状态中的功能意义铺平了道路。
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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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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