State Key Laboratory of Proteomics, Beijing Proteome Research Center, National Center for Protein Sciences - Beijing, Beijing 102206, China.
State Key Laboratory of Proteomics, Beijing Proteome Research Center, National Center for Protein Sciences - Beijing, Beijing 102206, China; State Key Laboratory of Natural Medicines, Jiangsu Key Laboratory of Drug Discovery for Metabolic Disease, Center for New Drug Safety Evaluation and Research, China Pharmaceutical University, Nanjing 211198, China.
Cell Chem Biol. 2017 Nov 16;24(11):1416-1427.e5. doi: 10.1016/j.chembiol.2017.08.022. Epub 2017 Oct 5.
Electrophilic groups, such as Michael acceptors, expoxides, are common motifs in natural products (NPs). Electrophilic NPs can act through covalent modification of cysteinyl thiols on functional proteins, and exhibit potent cytotoxicity and anti-inflammatory/cancer activities. Here we describe a new chemoproteomic strategy, termed multiplexed thiol reactivity profiling (MTRP), and its use in target discovery of electrophilic NPs. We demonstrate the utility of MTRP by identifying cellular targets of gambogic acid, an electrophilic NP that is currently under evaluation in clinical trials as anticancer agent. Moreover, MTRP enables simultaneous comparison of seven structurally diversified α,β-unsaturated γ-lactones, which provides insights into the relative proteomic reactivity and target preference of diverse structural scaffolds coupled to a common electrophilic motif and reveals various potential druggable targets with liganded cysteines. We anticipate that this new method for thiol reactivity profiling in a multiplexed manner will find broad application in redox biology and drug discovery.
亲电基团,如迈克尔受体、环氧化物,是天然产物(NPs)中的常见结构。亲电 NPs 可以通过共价修饰功能蛋白上的半胱氨酸巯基而起作用,并表现出强大的细胞毒性和抗炎/抗癌活性。在这里,我们描述了一种新的化学蛋白质组学策略,称为多重巯基反应谱(MTRP),及其在亲电 NPs 靶标发现中的应用。我们通过鉴定藤黄酸的细胞靶标证明了 MTRP 的实用性,藤黄酸是一种亲电 NP,目前正在临床试验中作为抗癌剂进行评估。此外,MTRP 能够同时比较七种结构多样化的α,β-不饱和γ-内酯,这为我们提供了有关与常见亲电结构基序偶联的不同结构支架的相对蛋白质组反应性和靶标偏好的见解,并揭示了各种具有配体结合半胱氨酸的潜在可成药靶标。我们预计,这种以多重方式进行巯基反应谱分析的新方法将在氧化还原生物学和药物发现中得到广泛应用。