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首页> 外文期刊>Applied Microbiology and Biotechnology >Structure-function study of the amino-terminal stretch of the catalase subunit molecule in oligomerization, heme binding, and activity expression
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Structure-function study of the amino-terminal stretch of the catalase subunit molecule in oligomerization, heme binding, and activity expression

机译:过氧化氢酶亚基分子氨基末端延伸在寡聚,血红素结合和活性表达中的结构功能研究

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Analysis of the protein structure of bovine liver catalase suggested that the N-terminal region containing two a-helices may function as a linker binding to another subunit. The number of amino-acid residues in catalase from the n-alkane-assimilating yeast Candida tropicalis (CTC) is the lowest of any eukaryotic catalase molecule hitherto investigated, and only one helix, corresponding to the helix alpha2 in bovine liver catalase, is estimated to be present in the same region. In the present study, N-terminal-deleted mutants of CTC were characterized to evaluate the role of the a-helix structure in the N-terminal region. CTCDelta1-4 and CTCDelta1-24, whose N-terminal regions were shortened by four and 24 amino-acid residues, respectively, showed an 80% decrease in specific activity compared to wild-type CTC in spite of containing the same amount of heme as in the wild-type. Polyacrylamide gel electrophoresis under nondenaturing conditions revealed that the mutants contained large amounts of oligomeric forms with molecular masses less than 220 kDa (tetramer assembly). Although the smaller oligomers were found to be bound with heme, only the tetramer exhibited catalase activity in activity staining on nondenaturing gel. CTCDelta1-49, a mutant with deletion of the N-terminal 49 amino-acid residues which contain the conserved helix alpha2, showed no catalase activity and no heme binding. However, the CD spectrum profiles of CTCDelta1-49, CTCDelta1-4, and CTCDelta1-24 indicated that these mutant subunits could attain secondary conformations similar to that of wild-type CTC, regardless of their binding with heme. From these results, it was concluded that the N-terminal stretch of catalase is significant for complete assembly into active tetramer and that the conserved helix alpha2, although it has little effect on the formation of the subunit secondary structure, is indispensable not only in assembling tetramer but also in binding heme. [References: 18]
机译:牛肝过氧化氢酶蛋白质结构的分析表明,含有两个a螺旋的N末端区域可能充当与另一个亚基结合的连接子。在迄今为止研究的任何真核过氧化氢酶分子中,正构烷烃同化酵母热带假丝酵母(CTC)的过氧化氢酶中的氨基酸残基数量最少,据估计只有一个螺旋,相当于牛肝过氧化氢酶中的螺旋α2。出现在同一地区。在本研究中,特征在于CTC N末端缺失的突变体,以评估α螺旋结构在N末端区域中的作用。 CTCDelta1-4和CTCDelta1-24的N端区域分别缩短了4个和24个氨基酸残基,尽管与野生型CTC相比含有相同量的血红素,但比活性却降低了80%。在野生型。在非变性条件下的聚丙烯酰胺凝胶电泳显示,突变体包含大量的寡聚形式,分子量小于220 kDa(四聚体组装体)。尽管发现较小的寡聚体与血红素结合,但是在非变性凝胶上的活性染色中,只有四聚体表现出过氧化氢酶活性。 CTCDelta1-49,具有保守的螺旋α2的N末端49个氨基酸残基缺失的突变体,没有过氧化氢酶活性,也没有血红素结合。但是,CTCDelta1-49,CTCDelta1-4和CTCDelta1-24的CD谱图谱表明,这些突变亚基可以达到类似于野生型CTC的二级构象,而与它们与血红素的结合无关。从这些结果可以得出结论,过氧化氢酶的N-末端延伸对于完全组装成活性四聚体是重要的,并且保守的α2螺旋尽管对亚基二级结构的形成几乎没有影响,但不仅在组装中必不可少四聚体也能结合血红素。 [参考:18]

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