半胱氨酸
蛋白质组学
化学
酮
生物化学
计算生物学
有机化学
生物
酶
基因
作者
Yuan‐Fei Zhou,Ling Zhang,Zhuoyi L. Niu,Xin Wang,Ryan Hunt,Yingming Zhao,Nima Sharifi,Zhipeng A. Wang
出处
期刊:
[Cold Spring Harbor Laboratory]
日期:2025-05-28
标识
DOI:10.1101/2025.05.25.655943
摘要
Abstract All the studies of ketone body-dependent post-translational modifications (PTMs), notably those mediated by ketone bodies, β-hydroxybutyrate (Bhb) and acetoacetate (Acac), have focused on lysine acylations. However, given the chemically diverse and reactive nature of metabolites generated, it remains unclear whether non-lysine modifications can also happen. Here, we report the synthesis of an acetoacetate-alkyne (Acac-alkyne) chemical probe that enables efficient metabolic labeling, robust fluorescent visualization, and mass spectrometry-based identification of Acac-modified proteins. By combining chemical proteomics with open-search strategy, we showed that Acac will induce previously uncharacterized cysteine modifications in mammalian cells. Notably, cysteine S-crotonation (Ccr) is validated by employing both probe-based and standard peptide-based co-elution assays. Metabolic pathway tracing further identifies BDH1 and ECHS1 as key enzymes that generate Ccr formation. Together, these findings establish ketone metabolism as a novel source of cysteine modifications and provide an alternative mechanistic pathway to explain the profound biological effects of ketone body.
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