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Quenching of tryptophan fluorescence by the active-site disulfide bridge in the DsbA protein from Escherichia coli.

机译:大肠杆菌中DsbA蛋白中活性位点二硫键对色氨酸荧光的猝灭。

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摘要

The disulfide oxidoreductase DsbA is a strong oxidant of protein thiols and required for efficient disulfide bond formation in the bacterial periplasm. The enzyme consists of a thioredoxin-like domain and a second, alpha-helical domain which is inserted into the thioredoxin motif. Reduction of the active-site disulfide in the thioredoxin domain causes a more than 3-fold increase in tryptophan fluorescence. However, both tryptophan residues of the protein, W76 and W126, are not in contact with the disulfide and located in the alpha-helical domain. Analysis of the variants W76F and W126F revealed that the fluorescence of W126 is fully quenched in every redox state of DsbA. W126 is also a sink for nonradiative energy transfer from W76. In oxidized DsbA, W76 is quenched by an intramolecular, dynamic quenching process which involves energy transfer from W76 via F26 to the disulfide. The contributions of the disulfide bridge and the tryptophan residues to the near-UV CD spectra were also quantified. Analysisof the thermodynamic stabilities of the variants W76F and F26L revealed that the interdomain contact between W76 and F26 strongly contributes to the overall stability of DsbA, and selectively stabilizes its oxidized form. The DsbA variant F26L is the most oxidizing disulfide oxidoreductase known so far.
机译:二硫键氧化还原酶DsbA是蛋白质硫醇的强氧化剂,是细菌周质中有效形成二硫键的必需条件。该酶由硫氧还蛋白样结构域和插入硫氧还蛋白基序的第二个α-螺旋结构域组成。硫氧还蛋白结构域中活性位点二硫键的还原导致色氨酸荧光增加超过3倍。但是,蛋白质的两个色氨酸残基W76和W126都不与二硫键接触,并且位于α-螺旋结构域中。对变体W76F和W126F的分析表明,在DsbA的每个氧化还原状态下,W126的荧光均被完全淬灭。 W126还是来自W76的非辐射能量转移的汇。在氧化的DsbA中,W76通过分子内动态猝灭过程猝灭,该过程涉及从W76经由F26到二硫化物的能量转移。还量化了二硫键和色氨酸残基对近紫外CD光谱的贡献。对变体W76F和F26L的热力学稳定性的分析表明,W76和F26之间的域间接触极大地促进了DsbA的整体稳定性,并选择性地稳定了其氧化形式。 DsbA变体F26L是迄今为止已知的最具氧化性的二硫键氧化还原酶。

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