Department of Structural Biology, Weizmann Institute of Science, Rehovot, Israel.
Protein Sci. 2010 Oct;19(10):1863-76. doi: 10.1002/pro.473.
Ero1p is the primary catalyst of disulfide bond formation in the yeast endoplasmic reticulum (ER). Ero1p contains a pair of essential disulfide bonds that participate directly in the electron transfer pathway from substrate thiol groups to oxygen. Remarkably, elimination of certain other Ero1p disulfides by mutation enhances enzyme activity. In particular, the C150A/C295A Ero1p mutant exhibits increased thiol oxidation in vitro and in vivo and interferes with redox homeostasis in yeast cells by hyperoxidizing the ER. Inhibitory disulfides of Ero1p are thus important for enzyme regulation. To visualize the differences between de-regulated and wild-type Ero1p, we determined the crystal structure of Ero1p C150A/C295A. The structure revealed local changes compared to the wild-type enzyme around the sites of mutation, but no conformational transitions within 25 A of the active site were observed. To determine how the C150--C295 disulfide nonetheless participates in redox regulation of Ero1p, we analyzed using mass spectrometry the changes in Ero1p disulfide connectivity as a function of time after encounter with reducing substrates. We found that the C150--C295 disulfide sets a physiologically appropriate threshold for enzyme activation by guarding a key neighboring disulfide from reduction. This study illustrates the diverse and interconnected roles that disulfides can play in redox regulation of protein activity.
Ero1p 是酵母内质网(ER)中二硫键形成的主要催化剂。Ero1p 包含一对必需的二硫键,直接参与从底物巯基到氧的电子转移途径。值得注意的是,通过突变消除 Ero1p 的某些其他二硫键会增强酶活性。特别是,C150A/C295A Ero1p 突变体在体外和体内表现出增强的巯基氧化,并且通过过度氧化 ER 干扰酵母细胞中的氧化还原稳态。因此,Ero1p 的抑制性二硫键对于酶调节很重要。为了可视化去调节和野生型 Ero1p 之间的差异,我们确定了 Ero1p C150A/C295A 的晶体结构。与野生型酶相比,该结构在突变部位周围显示出局部变化,但在活性位点 25 A 内没有观察到构象转变。为了确定 C150--C295 二硫键如何参与 Ero1p 的氧化还原调节,我们使用质谱分析了在与还原底物相遇后随时间变化的 Ero1p 二硫键连接性的变化。我们发现,C150--C295 二硫键通过保护关键的相邻二硫键免受还原,为酶激活设定了一个生理上适当的阈值。这项研究说明了二硫键在氧化还原调节蛋白质活性方面可以发挥的多样化和相互关联的作用。