首页> 外文期刊>Proceedings of the National Academy of Sciences of the United States of America >EVIDENCE THAT THE PATHWAY OF DISULFIDE BOND FORMATION IN ESCHERICHIA COLI INVOLVES INTERACTIONS BETWEEN THE CYSTEINES OF DSBB AND DSBA
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EVIDENCE THAT THE PATHWAY OF DISULFIDE BOND FORMATION IN ESCHERICHIA COLI INVOLVES INTERACTIONS BETWEEN THE CYSTEINES OF DSBB AND DSBA

机译:有证据表明大肠埃希氏菌中二硫键的形成途径涉及DSBB和DSBA的半胱氨酸之间的相互作用

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Disulfide bond formation is catalyzed in the periplasm of Escherichia coli. This process involves at least two proteins: DsbA and DsbB. Recent evidence suggests that DsbA, a soluble periplasmic protein directly catalyzes disulfide bond formation in proteins, whereas DsbB, an inner membrane protein, is involved in the reoxidation of DsbA, Here,ve present direct evidence of an interaction between DsbA and DsbB, (Kishigami et al. [Kishigami, S,, Kanaya, E,, Kikuchi, M. & Ito, K, (1995) J. Biol, Chem. 270, 17072-17074] have described similar findings.) We isolated a dominant negative mutant of dsbA, dsbA(d), where Cys-33 of the DsbA active site is changed to tyrosine. Both DsbA(d) and DsbA are able to form a mixed disulfide with DsbB, which may be an intermediate in the reoxidation of DsbA, This complex is more stable with DsbA(d), The dominance can be suppressed by increasing the production of DsbB, By using mutants of DsbB in which one or two cysteines have been changed to alanine, we show that only Cys-104 is important for complex formation, Therefore, we suggest that in vivo, reduced DsbA forms a complex with DsbB in which Cys-30 of DsbA is disulfide-bonded to Cys-104 of DsbB. Cys-104 is rapidly replaced by Cys-33 of DsbA to generate the oxidized form of this protein. [References: 34]
机译:在大肠杆菌的周质中催化二硫键的形成。该过程涉及至少两种蛋白质:DsbA和DsbB。最近的证据表明,可溶性周质蛋白DsbA直接催化蛋白质中的二硫键形成,而内膜蛋白DsbB参与了DsbA的再氧化反应。在此,本文提供了DsbA与DsbB之间相互作用的直接证据(Kishigami等[Kishigami,S ,, Kanaya,E ,, Kikuchi,M。和Ito,K,(1995)J.Biol,Chem.270,17072-17074]已经描述了类似的发现。 dsbA,dsbA(d),其中DsbA活性位点的Cys-33变为酪氨酸。 DsbA(d)和DsbA都能够与DsbB形成混合的二硫键,这可能是DsbA再氧化的中间体。该配合物对DsbA(d)更加稳定,可以通过增加DsbB的产量来抑制优势。 ,通过使用其中一个或两个半胱氨酸已变为丙氨酸的DsbB突变体,我们显示只有Cys-104对复合物形成很重要,因此,我们建议在体内还原的DsbA与DsbB形成复合物,其中Cys- DsbA的30被二硫键结合到DsbB的Cys-104。 Cys-104迅速被DsbA的Cys-33取代,以生成该蛋白质的氧化形式。 [参考:34]

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