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首页> 外文期刊>Bioscience Reports >Role of tryptophan residues of Erv1: Trp95 and Trp183 are important for its folding and oxidase function
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Role of tryptophan residues of Erv1: Trp95 and Trp183 are important for its folding and oxidase function

机译:Erv1色氨酸残基的作用:Trp95和Trp183对于其折叠和氧化酶功能很重要

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摘要

Erv1 is an FAD-dependent thiol oxidase of the ERV (essential for respiration and viability)/ALR (augmenter of liver regeneration) sub-family and an essential component of the mitochondrial import and assembly pathway. Erv1 contains six tryptophan residues, which are all located in the highly conserved C-terminal FAD-binding domain. Though important structural roles were predicted for the invariable Trp95, no experimental study has been reported. In the present study, we investigated the structural and functional roles of individual tryptophan residues of Erv1. Six single tryptophan-to-phenylalanine yeast mutant strains were generated and their effects on cell viability were tested at various temperatures. Then, the mutants were purified from Escherichia coli. Their effects on folding, FAD-binding and Erv1 activity were characterized. Our results showed that Erv1W95F has the strongest effect on the stability and function of Erv1 and followed by Erv1W183F. Erv1W95F results in a decrease in the Tm of Erv1 by 23°C, a significant loss of the oxidase activity and thus causing cell growth defects at both 30°C and 37°C. Erv1W183F induces changes in the oligomerization state of Erv1, along with a pronounced effect on the stability of Erv1 and its function at 37°C, whereas the other mutants had no clear effect on the function of Erv1 including the highly conserved Trp157 mutant. Finally, computational analysis indicates that Trp95 plays a key role in stabilizing the isoalloxazine ring to interact with Cys133. Taken together, the present study provided important insights into the molecular mechanism of how thiol oxidases use FAD in catalysing disulfide bond formation.
机译:Erv1是ERV(对呼吸和活力至关重要)/ ALR(肝再生增强剂)亚家族的FAD依赖性硫醇氧化酶,是线粒体导入和组装途径的重要组成部分。 Erv1包含六个色氨酸残基,它们都位于高度保守的C端FAD结合域中。尽管预测了不变的Trp95的重要结构作用,但尚无实验研究报道。在本研究中,我们调查了Erv1的各个色氨酸残基的结构和功能作用。产生了六个单一的色氨酸至苯丙氨酸酵母突变体菌株,并在不同温度下测试了它们对细胞活力的影响。然后,从大肠杆菌中纯化突变体。表征了它们对折叠,FAD结合和Erv1活性的影响。我们的结果表明,Erv1W95F对Erv1的稳定性和功能影响最大,其次是Erv1W183F。 Erv1W95F导致Erv1的Tm降低23°C,氧化酶活性显着降低,因此在30°C和37°C时均引起细胞生长缺陷。 Erv1W183F诱导Erv1的低聚状态发生变化,并对Erv1的稳定性及其在37°C下的功能产生明显影响,而其他突变体对Erv1的功能没有明显的影响,包括高度保守的Trp157突变体。最后,计算分析表明,Trp95在稳定异恶嗪环与Cys133相互作用中起关键作用。综上所述,本研究为硫醇氧化酶如何利用FAD催化二硫键形成的分子机理提供了重要见解。

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