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Methionine-R-sulfoxide reductases and biological importance of free methionine sulfoxide reduction.

机译:蛋氨酸-R-亚砜还原酶和游离蛋氨酸亚砜还原的生物学重要性。

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摘要

We identified and functionally characterized yeast fRMsr homolog which showed specificity for reduction of free Met-R-SO and contributed to oxidative stress resistance of yeast cells. We further identified three conserved Cys which participate in catalysis through disulfide exchange. Evolutionary analyses revealed that the occurrence of fRMSr is restricted to unicellular organisms.;We further found that mammalian MsrA can reduce free Met-S-SO, whereas MsrBs do not reduce free Met-R-SO. Consistent with these findings and the lack of fRMsr, mammalian cells could not grow in media that replaced Met with Met-R-SO. However, they grew in the presence of free Met-S-SO, which was reduced by MsrA. Expression of yeast fRMsr in mammalian cells supported the growth of mammalian cells on Met-R-SO, increased resistamce to oxidative stress, and affected expression levels of proteins that are regulated by Met availability.;We extended the finding of deficiency in free Met-R-SO reduction in mammals to examine the ability of Msrs to reduce compounds containing methylsulfinyls. Methylsulfide group has a prochiral sulfur, resulting in two diastereomers upon sulfoxidation. We found that methylsulfinyls in sulmazole sulfoxide, triclabendazole sulfoxide, and mesoridazine could be stereospecifically reduced by MsrA, but MsrB and fRMsr were not active. We also found that dimethylsulfoxide (DMSO), which has a methylsulfinyl group, can only be reduced by MsrA.;To examine the role of Met in aging, we performed lifespan analyses in fruit flies. There was no difference in lifespan of flies maintained on restricted (0.1 mM Met) and regular (1 mM) Met diets. Instead, we observed uncoupling between reproduction and longevity. A popular theory of aging suggests that dietary restriction is inversely proportional to reproduction due to nutritional redistribution of resources from egg generation to somatic maintenance, but we found that this theory did not follow our data that are based on variation in Met concentration.;Overall, our studies characterized all three known types of methionine sulfoxide reductase and uncovered biological significance of free methionine sulfoxide reduction and its deficiency in mammals.
机译:我们鉴定并在功能上表征了酵母fRMsr同源物,该同源物显示了降低游离Met-R-SO的特异性,并有助于酵母细胞的抗氧化应激作用。我们进一步确定了通过二硫键交换参与催化的三个保守的半胱氨酸。进化分析表明fRMSr的发生仅限于单细胞生物。我们进一步发现,哺乳动物MsrA可以减少游离的Met-S-SO,而MsrBs不能减少游离的Met-R-SO。与这些发现和缺乏fRMsr一致,哺乳动物细胞无法在用Met-R-SO取代Met的培养基中生长。但是,它们在游离的Met-S-SO存在下生长,而MsrA使其减少。酵母fRMsr在哺乳动物细胞中的表达支持哺乳动物细胞在Met-R-SO上的生长,增加了对氧化应激的抵抗力,并影响了受Met可用性调节的蛋白质的表达水平。哺乳动物中的R-SO还原,以检查Msrs还原含有甲基亚磺酰基的化合物的能力。甲基硫醚基具有手性硫,经硫氧化后生成两个非对映异构体。我们发现,MsrA可以立体定向还原舒马唑亚砜,三苯达唑亚砜和美拉达嗪中的甲基亚磺酰基,但MsrB和fRMsr没有活性。我们还发现,具有甲基亚磺酰基的二甲基亚砜(DMSO)只能被MsrA还原。为了研究Met在衰老中的作用,我们对果蝇进行了寿命分析。限制饮食(0.1 mM Met)和常规饮食(1 mM)的果蝇的寿命没有差异。取而代之的是,我们观察到生殖与寿命之间的脱钩。流行的衰老理论表明,由于从蛋的生成到体细胞维持的资源的营养再分配,饮食限制与繁殖成反比,但我们发现该理论并未遵循基于Met浓度变化的数据。我们的研究表征了三种已知类型的蛋氨酸亚砜还原酶,并发现了游离蛋氨酸亚砜还原及其在哺乳动物中的缺乏的生物学意义。

著录项

  • 作者

    Lee, Byung Cheon.;

  • 作者单位

    The University of Nebraska - Lincoln.;

  • 授予单位 The University of Nebraska - Lincoln.;
  • 学科 Chemistry Biochemistry.;Chemistry Pharmaceutical.;Health Sciences Aging.
  • 学位 Ph.D.
  • 年度 2010
  • 页码 184 p.
  • 总页数 184
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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