酵母质膜质子泵能量耦合的分子遗传学探测。

P Soteropoulos, G Wang, D S Perlin
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引用次数: 0

摘要

对编码质膜H(+)- atp酶的PMA1的遗传探测,突出了该酶的n端半部分在偶联过程中的假定作用。最近的第二位点抑制子研究表明,磷酸化位点附近的区域、茎段3 (S3)和n端跨膜段之间发生了显著的相互作用。利用饱和诱变技术研究了S2中的I183,它在转化为丙氨酸时部分地解除了质子输运。在这个位置上可以进行许多次替换。然而,与Arg、Tyr或Asn的稳定取代通常伴随着极端c端第二位点突变,表明这些区域之间存在密切的相互作用。已知在假定的茎结构域中有几个突变会改变偶联,并使用扫描甘氨酸和脯氨酸诱变来探测预测的茎段α -螺旋特征。结果表明,在S2、S4或S5中引入脯氨酸或甘氨酸会严重破坏酶的功能,往往导致细胞死亡。在3号茎上进行类似的替换,产生了活性但显著改变的酶。这些结果表明,这些片段的螺旋性质可能对催化很重要。最后,茎区域被建模为螺旋束,这有助于解释该区域特定扰动的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Molecular genetic probing of energy coupling by the yeast plasma membrane proton pump.

Genetic probing of PMA1, which encodes the plasma membrane H(+)-ATPase, has highlighted the putative role of the N-terminal half of the enzyme in the coupling process. Recent second-site suppressor studies indicate that significant interactions occur between the region near the site of phosphorylation, stalk segment 3 (S3), and the N-terminal transmembrane segments. Saturation mutagenesis was used to explore I183 in S2, which partially uncouples proton transport when converted to alanine. Numerous substitutions could be made at this position. However, stable substitutions with Arg, Tyr or Asn were often accompanied by second-site mutations at the extreme C-terminus, suggesting a close interaction between these regions. Several mutations in the putative stalk domain are known to alter coupling, and scanning glycine and proline mutagenesis was used to probe the predicted alpha-helical character of the stalk segments. The results indicate that the introduction of proline or glycine in S2, S4 or S5, was highly disruptive to enzyme function often resulting in cell death. Similar substitutions in stalk 3 yielded viable but significantly altered enzymes. These results suggest that the helical properties of these segments may be important for catalysis. Finally, the stalk region has been modeled as a helical bundle, which helps account for the effects of specific perturbations in this region.

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