电泳剂
半胱氨酸
生物
免疫系统
小分子
蛋白质组
生物化学
细胞生物学
酶
免疫学
催化作用
作者
Ekaterina V. Vinogradova,Xiaoyu Zhang,David Remillard,Daniel C. Lazar,Radu M. Suciu,Yujia Wang,Giulia Bianco,Yu Yamashita,Vincent M. Crowley,Michael A. Schafroth,Minoru Yokoyama,David B. Konrad,Kenneth M. Lum,Gabriel M. Simon,Esther K. Kemper,Michael R. Lazear,Sifei Yin,Megan M. Blewett,Melissa M. Dix,Nhan Nguyen
出处
期刊:Cell
[Elsevier]
日期:2020-07-29
卷期号:182 (4): 1009-1026.e29
被引量:332
标识
DOI:10.1016/j.cell.2020.07.001
摘要
Electrophilic compounds originating from nature or chemical synthesis have profound effects on immune cells. These compounds are thought to act by cysteine modification to alter the functions of immune-relevant proteins; however, our understanding of electrophile-sensitive cysteines in the human immune proteome remains limited. Here, we present a global map of cysteines in primary human T cells that are susceptible to covalent modification by electrophilic small molecules. More than 3,000 covalently liganded cysteines were found on functionally and structurally diverse proteins, including many that play fundamental roles in immunology. We further show that electrophilic compounds can impair T cell activation by distinct mechanisms involving the direct functional perturbation and/or degradation of proteins. Our findings reveal a rich content of ligandable cysteines in human T cells and point to electrophilic small molecules as a fertile source for chemical probes and ultimately therapeutics that modulate immunological processes and their associated disorders.
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