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Expression of the Maize Mnsod (Sod3) Gene in Mnsod-Deficient Yeast Rescues the Mutant Yeast under Oxidative Stress

机译:Mnsod缺乏型酵母中玉米Mnsod(Sod3)基因的表达拯救了氧化应激下的突变酵母

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摘要

Superoxide dismutases (SOD) are ubiquitous in aerobic organisms and are believed to play a significant role in protecting cells against the toxic, often lethal, effect of oxygen free radicals. However, direct evidence that SOD does in fact participate in such a protective role is scant. The MnSOD-deficient yeast strain (Sod2d) offered an opportunity to test the functional role of one of several SOD isozymes from the higher plant maize in hopes of establishing a functional bioassay for other SODs. Herein, we present evidence that MnSOD functions to protect cells from oxidative stress and that this function is conserved between species. The maize Sod3 gene was introduced into the yeast strain Sod2d where it was properly expressed and its product processed into the yeast mitochondrial matrix and assembled into the functional homotetramer. Most significantly, expression of the maize Sod3 transgene in yeast rendered the transformed yeast cells resistant to paraquat-induced oxidative stress by complementing the MnSOD deficiency. Furthermore, analyses with various deletion mutants of the maize SOD-3 transit peptide in the MnSOD-deficient yeast strain indicate that the initial portion (about 8 amino acids) of the maize transit peptide is required to direct the protein into the yeast mitochondrial matrix in vivo to function properly. These findings indicate that the functional role of maize MnSOD is conserved and dependent on its proper subcellular location in the mitochondria of a heterologous system.
机译:超氧歧化酶(SOD)在有氧生物中无处不在,并且被认为在保护细胞免受氧自由基的毒性作用(通常是致命的作用)方面起着重要作用。但是,很少有SOD确实参与这种保护作用的直接证据。 MnSOD缺陷型酵母菌株(Sod2d)提供了一个机会,可以测试来自高等植物玉米的几种SOD同工酶之一的功能,以期为其他SOD建立功能性生物检测方法。在本文中,我们提供了MnSOD的功能来保护细胞免受氧化应激的影响,并且该功能在物种之间是保守的。将玉米Sod3基因导入酵母菌株Sod2d中,在其中进行正确表达,并将其产物加工到酵母线粒体基质中,并组装成功能同源四聚体。最重要的是,玉米中Sod3转基因在酵母中的表达通过补充MnSOD不足,使转化酵母细胞对百草枯诱导的氧化应激具有抗性。此外,用MnSOD缺陷型酵母菌株中玉米SOD-3转运肽的各种缺失突变体进行的分析表明,需要玉米转运肽的起始部分(约8个氨基酸)将蛋白质导入酵母线粒体基质中。体内功能正常。这些发现表明,玉米MnSOD的功能作用是保守的,并取决于其在异源系统线粒体中的适当亚细胞位置。

著录项

  • 期刊名称 Genetics
  • 作者

    D. Zhu; J. G. Scandalios;

  • 作者单位
  • 年(卷),期 1992(131),4
  • 年度 1992
  • 页码 803–809
  • 总页数 7
  • 原文格式 PDF
  • 正文语种
  • 中图分类 遗传学;
  • 关键词

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