首页> 美国卫生研究院文献>other >The Response of Ω-Loop D Dynamics to Truncation of Trimethyllysine 72of Yeast Iso-1-cytochrome c Depends on the Nature of LoopDeformation
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The Response of Ω-Loop D Dynamics to Truncation of Trimethyllysine 72of Yeast Iso-1-cytochrome c Depends on the Nature of LoopDeformation

机译:Ω循环D动力学对三甲基赖氨酸72截短的响应酵母异-1-细胞色素c的数量取决于环的性质形变

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摘要

Trimethyllysine 72 (tmK72) has been suggested to play a role in sterically constraining the heme crevice dynamics of yeast iso-1-cytochrome c mediated by the Ω-loop D cooperative substructure (residues 70 to 85). A tmK72A mutation causes a gain in peroxidase activity, a function of cytochrome c that is important early in apoptosis. More than one higher energy state is accessible for the Ω-loop D substructure via tier 0 dynamics. Two of these are alkaline conformers mediated by Lys73 and Lys79. In the current work, the effect of the tmK72A mutation on the thermodynamic and kinetic properties of wild type iso-1-cytochrome c (yWT versus WT*) and on variants carrying a K73H mutation (yWT/K73H versus WT*/K73H) is studied. Whereas the tmK72A mutation confers increased peroxidase activity in wild type yeast iso-1-cytochrome c and increased dynamics for formation of a previously studied His79-heme alkaline conformer, the tmK72A mutation speeds return of the His73-heme alkaline conformer to the native state through destabilization of the His73-heme alkaline conformer relative to the native conformer. These opposing behaviors demonstrate that the response of the dynamics of a protein substructure to mutation depends on the nature of the perturbation to the substructure. For a protein substructure which mediates more than one function of a protein through multiple non-native structures,a mutation could change the partitioning between these functions. The current resultssuggest that the tier 0 dynamics of Ω-loop D that mediates peroxidase activity hassimilarities to the tier 0 dynamics required to form the His79-heme alkalineconformer.
机译:已建议三甲基赖氨酸72(tmK72)在空间上限制由Ω环D协作亚结构介导的酵母异1细胞色素c的血红素缝隙动力学(残基70至85)。 tmK72A突变导致过氧化物酶活性增加,这是细胞色素c的功能,在细胞凋亡的早期很重要。 Ω环D子结构可通过层0动力学访问多个高能态。其中两个是由Lys73和Lys79介导的碱性构象体。在当前的工作中,tmK72A突变对野生型异-1-细胞色素c(yWT与WT *)以及带有K73H突变的变体(yWT / K73H与WT * / K73H)的热力学和动力学特性的影响是研究。尽管tmK72A突变赋予野生型酵母iso-1-cytochrome c更高的过氧化物酶活性,并增加形成先前研究过的His79-血红素碱性构象异构体的动力学,但tmK72A突变可加速His73-血红素碱性构象异构体通过自然恢复相对于天然构象异构体,His73-血红素碱性构象异构体不稳定。这些相反的行为表明,蛋白质亚结构的动力学对突变的响应取决于对亚结构的扰动的性质。对于通过多个非天然结构介导蛋白质的一种以上功能的蛋白质亚结构,突变可能会改变这些功能之间的划分。当前结果表明介导过氧化物酶活性的Ω环D的0级动力学具有与形成His79-血红素碱性所需的0级动力学相似适形者。

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