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The mechanism of thioredoxin reductase from human placenta is similar to the mechanisms of lipoamide dehydrogenase and glutathione reductase and is distinct from the mechanism of thioredoxin reductase from Escherichia coli

机译:人胎盘中硫氧还蛋白还原酶的作用机理与脂酰胺脱氢酶和谷胱甘肽还原酶的作用机理相似与大肠埃希氏大肠杆菌的硫氧还蛋白还原酶的作用机理不同。

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摘要

Thioredoxin reductase, lipoamide dehydrogenase, and glutathione reductase are members of the pyridine nucleotide–disulfide oxidoreductase family of dimeric flavoenzymes. The mechanisms and structures of lipoamide dehydrogenase and glutathione reductase are alike irrespective of the source (subunit Mr ≈55,000). Although the mechanism and structure of thioredoxin reductase from Escherichia coli are distinct (Mr ≈35,000), this enzyme must be placed in the same family because there are significant amino acid sequence similarities with the other two enzymes, the presence of a redox-active disulfide, and the substrate specificities. Thioredoxin reductase from higher eukaryotes on the other hand has a Mr of ≈55,000 [Luthman, M. & Holmgren, A. (1982) Biochemistry 21, 6628–6633; Gasdaska, P. Y., Gasdaska, J. R., Cochran, S. & Powis, G. (1995) FEBS Lett 373, 5–9; Gladyshev, V. N., Jeang, K. T. & Stadtman, T.C. (1996) Proc. Natl. Acad. Sci. USA 93, 6146–6151]. Thus, the evolution of this family is highly unusual. The mechanism of thioredoxin reductase from higher eukaryotes is not known. As reported here, thioredoxin reductase from human placenta reacts with only a single molecule of NADPH, which leads to a stable intermediate similar to that observed in titrations of lipoamide dehydrogenase or glutathione reductase. Titration of thioredoxin reductase from human placenta with dithionite takes place in two spectral phases: formation of a thiolate–flavin charge transfer complex followed by reduction of the flavin, just as with lipoamide dehydrogenase or glutathione reductase. The first phase requires more than one equivalent of dithionite. This suggests that the penultimate seleno-cysteine [Tamura, T. & Stadtman, T.C. (1996) Proc. Natl. Acad. Sci. USA 93, 1006–1011] is in redox communication with the active site disulfide/dithiol. Nitrosoureas of the carmustine type inhibit only the NADPH reduced form of human thioredoxin reductase. These compounds are widely used as cytostatic agents, so this enzyme should be studied as a target in cancer chemotherapy. In conclusion, three lines of evidence indicate that the mechanism of human thioredoxin reductase is like the mechanisms of lipoamide dehydrogenase and glutathione reductase and differs fundamentally from the mechanism of E. coli thioredoxin reductase.
机译:硫氧还蛋白还原酶,脂酰胺脱氢酶和谷胱甘肽还原酶是二聚黄酮酶的吡啶核苷酸-二硫键氧化还原酶家族的成员。脂酰胺脱氢酶和谷胱甘肽还原酶的机制和结构与来源无关(Mr≈55,000)。尽管来自大肠杆菌的硫氧还蛋白还原酶的机理和结构是不同的(Mr≈35,000),但由于与其他两种酶存在显着的氨基酸序列相似性(存在氧化还原活性的二硫化物),该酶必须置于同一家族中以及底物特异性。另一方面,来自高级真核生物的硫氧还蛋白还原酶的Mr≈55,000[Luthman,M.&Holmgren,A.(1982)Biochemistry 21,6628–6633; Gasdaska,P. Y.,Gasdaska,J. R.,Cochran,S.&Powis,G.(1995)FEBS Lett 373,5–9; V.N.格拉季雪夫,K.T。让格和T.C.Stadtman (1996)美国国家科学院院刊。 Natl。学院科学美国93,6146–6151]。因此,这个家庭的进化是非常不寻常的。来自高级真核生物的硫氧还蛋白还原酶的机理尚不清楚。如此处报道的那样,来自人胎盘的硫氧还蛋白还原酶仅与单个NADPH分子发生反应,这产生了一种稳定的中间体,类似于在脂酰胺脱氢酶或谷胱甘肽还原酶的滴定中观察到的中间体。用连二亚硫酸盐滴定人胎盘中的硫氧还蛋白还原酶的过程在两个光谱阶段进行:形成硫醇盐-黄素电荷转移复合物,然后还原黄素,就像脂酰胺脱氢酶或谷胱甘肽还原酶一样。第一阶段需要超过一个当量的连二亚硫酸盐。这表明倒数第二个硒代半胱氨酸[Tamura,T.&Stadtman,T.C. (1996)美国国家科学院院刊。 Natl。学院科学USA 93,1006–1011]与活性位点二硫键/二硫醇进行氧化还原通讯。卡莫司汀型亚硝基脲仅抑制NADPH还原形式的人硫氧还蛋白还原酶。这些化合物被广泛用作细胞抑制剂,因此该酶应作为癌症化疗的靶标进行研究。总之,三点证据表明,人硫氧还蛋白还原酶的机理与脂酰胺脱氢酶和谷胱甘肽还原酶的机理相似,并且与大肠杆菌硫氧还蛋白还原酶的机理有根本不同。

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