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Nitroso group transfer in S-nitrosocysteine: Evidence of a new decomposition pathway for nitrosothiols

机译:S-亚硝基半胱氨酸中亚硝基的转移:亚硝基硫醇新分解途径的证据

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The rate of S-nitrosocysteine decomposition in a pH range between 0.7 < pH < 13 exhibits firstand second-order dependence on total cysteine concentration. The second-order term is only observed for pH values between 6.9 < pH < 12. Both first- and second-order terms show a complex dependence on the acidity of the medium. They increase with increasing pH, reaching a maximum value around pH = 8 and then decrease with further increase in pH. An analysis of the reaction products reveals the absence of nitrite ion and ammonia. No evidence of catalysis by copper ions is observed. These results suggest the existence of a new decomposition pathway for S-nitrosocysteine, which proceeds via an intramolecular nitroso group transfer producing a primary N-nitrosamine that decomposes rapidly to give the corresponding diazonium salt. The nitroso group transfer reaction occurs intermolecularly for the decomposition pathway exhibiting a quadratic dependence on cysteine concentration. Both nitroso group transfer pathways are subject to acid catalysis by cysteine. Kinetic results indicate that the extent of S center dot center dot center dot NO bond cleavage in the transition state is ahead of protonation of the AH center dot center dot center dot S sulfur atom. The results obtained show the existence of a new decomposition pathway for the S-nitrosocysteine where NO is not released, and hence, it has a significant biological impact due to the potential use of nitrosothiols as NO donors.
机译:在0.7 H <13的pH范围内,S-亚硝基半胱氨酸的分解速率表现出对总半胱氨酸浓度的一阶和二阶依赖性。仅在6.9 H <12的pH值下才观察到第二项。第一和第二项都显示出对介质酸度的复杂依赖性。它们随着pH值的增加而增加,在pH = 8附近达到最大值,然后随着pH值的进一步增加而降低。反应产物的分析表明不存在亚硝酸根离子和氨。没有观察到铜离子催化的证据。这些结果表明存在S-亚硝基半胱氨酸的新分解途径,其通过分子内亚硝基基团转移进行,产生伯N-亚硝胺,该伯N-亚硝胺迅速分解以产生相应的重氮盐。亚硝基基团转移反应发生在分子间,对于分解路径表现出对半胱氨酸浓度的二次依赖性。两个亚硝基基团转移途径均受到半胱氨酸的酸催化。动力学结果表明,在过渡态中S中心点中心点中心点NO键的裂解程度在AH中心点中心点中心点S硫原子的质子化之前。所获得的结果表明,存在不释放NO的S-亚硝基半胱氨酸新的分解途径,因此,由于潜在使用亚硝基硫醇作为NO供体,因此具有重要的生物学影响。

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