乙酰化
组蛋白
细胞培养中氨基酸的稳定同位素标记
赖氨酸
化学
生物化学
醋酸酐
蛋白质组学
同位素标记
胰蛋白酶
定量蛋白质组学
稳定同位素比值
等压标记
酶
计算生物学
生物
氨基酸
DNA
基因
有机化学
物理
催化作用
量子力学
作者
Peder J. Lund,Yekaterina Kori,Xiaolu Zhao,Simone Sidoli,Zuo‐Fei Yuan,Benjamin A. Garcia
标识
DOI:10.1007/978-1-4939-9232-4_5
摘要
Lysine acetylation is an important posttranslational modification (PTM) that regulates the function of proteins by affecting their localization, stability, binding, and enzymatic activity. Aberrant acetylation patterns have been observed in numerous diseases, most notably cancer, which has spurred the development of potential therapeutics that target acetylation pathways. Mass spectrometry (MS) has become the most adopted tool not only for the qualitative identification of acetylation sites but also for their large-scale quantification. By using heavy isotope labeling in cell culture combined with MS, it is now possible to accurately quantify newly synthesized acetyl groups and other PTMs, allowing differentiation between dynamically regulated and steady-state modifications. Here, we describe MS-based protocols to identify acetylation sites and quantify acetylation rates on both proteins in general and in the special case of histones. In the experimental approach for the former, 13C-glucose and D3-acetate are used to metabolically label protein acetylation in cells with stable isotopes, thus allowing isotope incorporation to be tracked over time. After protein extraction and digestion, acetylated peptides are enriched via immunoprecipitation and then analyzed by MS. For histones, a similar metabolic labeling approach is performed, followed by acid extraction, derivatization with propionic anhydride, and trypsin digestion prior to MS analysis. The procedures presented may be adapted to investigate acetylation dynamics in a broad range of experimental contexts, including different cell types and stimulation conditions.
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