首页> 美国卫生研究院文献>Biochemical Journal >Novel application of S-nitrosoglutathione-Sepharose to identify proteins that are potential targets for S-nitrosoglutathione-induced mixed-disulphide formation.
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Novel application of S-nitrosoglutathione-Sepharose to identify proteins that are potential targets for S-nitrosoglutathione-induced mixed-disulphide formation.

机译:S-亚硝基谷胱甘肽-Sepharose在鉴定作为S-亚硝基谷胱甘肽诱导的混合二硫化物潜在靶标的蛋白质方面的新应用。

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摘要

Site-specific S-glutathionylation is emerging as a novel mechanism by which S-nitrosoglutathione (GSNO) may modify functionally important protein thiols. Here, we show that GSNO-Sepharose mimicks site-specific S-glutathionylation of the transcription factors c-Jun and p50 by free GSNO in vitro. Both c-Jun and p50 were found to bind to immobilized GSNO through the formation of a mixed disulphide, involving a conserved cysteine residue located in the DNA-binding domains of these transcription factors. Furthermore, we show that c-Jun, p50, glycogen phosphorylase b, glyceraldehyde-3-phosphate dehydrogenase, creatine kinase, glutaredoxin and caspase-3 can be precipitated from a mixture of purified thiol-containing proteins by the formation of a mixed-disulphide bond with GSNO-Sepharose. With few exceptions, protein binding to this matrix correlated well with the susceptibility of the investigated proteins to undergo GSNO- but not diamide-induced mixed-disulphide formation in vitro. Finally, it is shown that covalent GSNO-Sepharose chromatography of HeLa cell nuclear extracts results in the enrichment of proteins which incorporate glutathione in response to GSNO treatment. As suggested by DNA-binding assays, this group of nuclear proteins include the transcription factors activator protein-1, nuclear factor-kappaB and cAMP-response-element-binding protein. In conclusion, we introduce GSNO-Sepharose as a probe for site-specific S-glutathionylation and as a novel and potentially useful tool to isolate and identify proteins which are candidate targets for GSNO-induced mixed-disulphide formation.
机译:位点特异性S-谷胱甘肽酰化作为一种​​新的机制正在出现,S-亚硝基谷胱甘肽(GSNO)可以通过它修饰功能上重要的蛋白质硫醇。在这里,我们显示了GSNO-Sepharose模仿了游离GSNO在体外对转录因子c-Jun和p50的位点特异性S-谷胱甘肽化。发现c-Jun和p50都通过形成混合的二硫化物与固定的GSNO结合,所述混合的二硫化物涉及位于这些转录因子的DNA结合结构域中的保守半胱氨酸残基。此外,我们表明c-Jun,p50,糖原磷酸化酶b,甘油醛3-磷酸脱氢酶,肌酸激酶,戊二醛和caspase-3可以通过混合二硫化物的形成从纯化的含硫醇蛋白的混合物中沉淀出来。与GSNO-Sepharose结合。除少数例外,与该基质结合的蛋白质与被研究蛋白质体外易受GSNO-而不是二酰胺诱导的混合二硫化物形成的敏感性相关。最后,表明HeLa细胞核提取物的共价GSNO-Sepharose色谱法可富集掺入谷胱甘肽的蛋白质,以响应GSNO处理。正如DNA结合测定所表明的那样,这组核蛋白包括转录因子激活蛋白1,核因子kappaB和cAMP反应元件结合蛋白。总之,我们介绍了GSNO-琼脂糖作为位点特异性S-谷胱甘肽化的探针,并且是一种新颖和潜在有用的工具,用于分离和鉴定蛋白质,它们是GSNO诱导的混合二硫化物形成的候选目标。

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