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Reactivity of hypotaurine and cysteine sulfinic acid toward carbonate radical anion and nitrogen dioxide as explored by the peroxidase activity of Cu,Zn superoxide dismutase and by pulse radiolysis

机译:通过铜,锌超氧化物歧化酶的过氧化物酶活性和脉冲辐解研究了次牛磺酸和半胱氨酸亚磺酸对碳酸根阴离子和二氧化氮的反应性

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Hypotaurine and cysteine sulfinic acid are known to be readily oxidized to the respective sulfonates, taurine and cysteic acid, by several oxidative agents that may be present in biological systems. In this work, the relevance of both the carbonate anion and nitrogen dioxide radicals in the oxidation of hypotaurine and cysteine sulfinic acid has been explored by the peroxidase activity of Cu,Zn superoxide dismutase (SOD) and by pulse radiolysis. The extent of sulfinate oxidation induced by the system SOD/H2O2 in the presence of bicarbonate (CO3 center dot-. generation), or nitrite ((NO2)-N-center dot generation) has been evaluated. Hypotaurine is efficiently oxidized by the carbonate radical anion generated by the peroxidase activity of Cu,Zn SOD. Pulse radiolysis studies have shown that the carbonate radical anion reacts with hypotaurine more rapidly (k = 1.1 x 10(9) M(-1)s(-1)) than nitrogen dioxide (k = 1.6 x 10(7) M(-1)s(-1)). Regarding cysteine sulfinic acid, it is less reactive with the carbonate radical anion (k = 5.5 x 10(7) M(-1)s(-1)) than hypotaurine. It has also been observed that the one-electron transfer oxidation of both sulfinates by the radicals is accompanied by the generation of transient sulfonyl radicals (RSO2 center dot). Considering that the carbonate radical anion could be formed in vivo at high level from bicarbonate, this radical can be included in the oxidants capable of performing the last metabolic step of taurine biosynthesis. Moreover, the protective effect exerted by hypotaurine and cysteine sulfinate on the carbonate radical anion-mediated tyrosine dimerization indicates that both sulfinates have scavenging activity towards the carbonate radical anion. However, the formation of transient reactive intermediates during sulfinate oxidation by carbonate anion and nitrogen dioxide radical may at the same time promote oxidative reactions.
机译:已知牛磺酸和半胱氨酸亚磺酸容易被生物系统中可能存在的几种氧化剂氧化成各自的磺酸盐,牛磺酸和半胱氨酸。在这项工作中,通过铜,锌超氧化物歧化酶(SOD)的过氧化物酶活性和脉冲辐解研究了碳酸盐阴离子和二氧化氮自由基在次牛磺酸和半胱氨酸亚磺酸的氧化中的相关性。已经评估了在碳酸氢盐(CO3中心点生成)或亚硝酸盐((NO2)-N中心点生成)存在下,系统SOD / H2O2诱导亚硫酸盐氧化的程度。 Cu,Zn SOD的过氧化物酶活性产生的碳酸盐自由基阴离子可有效地氧化次牛磺酸。脉冲辐解研究表明,碳酸根自由基阴离子与次牛磺酸的反应速度比二氧化氮快(k = 1.1 x 10(9)M(-1)s(-1))(k = 1.6 x 10(7)M(- 1)s(-1))。关于半胱氨酸亚磺酸,它与碳酸根自由基阴离子(k = 5.5 x 10(7)M(-1)s(-1))的活性比次牛磺酸少。还已经观察到,两个亚磺酸根被基团的单电子转移氧化伴随有瞬时磺酰基基团(RSO 2中心点)的产生。考虑到碳酸根自由基阴离子可以在体内由碳酸氢根高水平形成,该自由基可以包含在能够进行牛磺酸生物合成的最后代谢步骤的氧化剂中。此外,次牛磺酸和半胱氨酸亚磺酸盐对碳酸根自由基阴离子介导的酪氨酸二聚作用的保护作用表明两种亚磺酸盐均具有清除碳酸根阴离子的活性。但是,在亚硫酸盐被碳酸根阴离子和二氧化氮自由基氧化的过程中,形成瞬态反应性中间体可能会同时促进氧化反应。

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