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真核生物酸性磷酸蛋白通过其氨基末端结构域与核糖体相互作用。

Eukaryotic acidic phosphoproteins interact with the ribosome through their amino-terminal domain.

作者信息

Jose M P, Santana-Roman H, Remacha M, Ballesta J P, Zinker S

机构信息

Centro de Biologia Molecular Severo Ochoa, CSIC-UAM, Canto Blanco, Madrid.

出版信息

Biochemistry. 1995 Jun 20;34(24):7941-8. doi: 10.1021/bi00024a019.

Abstract

Variable-size fragments of the four yeast acidic ribosomal protein genes rpYP1 alpha, rpYP1 beta, rpYP2 alpha and rpYP2 beta were fused to the LacZ gene in the vector series YEp356-358. The constructs were used to transform wild-type Saccharomyces cerevisiae and several gene-disrupted strains lacking different acidic ribosomal protein genes. The distribution of the chimeric proteins between the cytoplasm and the ribosomes, tested as beta-galactosidase activity, was estimated. Hybrid proteins containing around a minimum of 65-75 amino acids from their amino-terminal domain are able to bind to the ribosomes in the presence of the complete native proteins. Hybrid proteins containing no more than 36 amino terminal amino acids bind to the ribosomes in the absence of a competing native protein. The fused YP1-beta-galactosidase proteins are also able to form a complex with the native YP2 type proteins, promoting their binding to the ribosome. The stability of the hybrid polypeptides seems to be inversely proportional to the size of their P protein fragment. These results indicate that only the amino-terminal domain of the eukaryotic P proteins is needed for the P1-P2 complex formation required for interaction with the ribosome. The highly conserved P protein carboxyl end is not implicated in the binding to the particles and is exposed to the medium.

摘要

将四个酵母酸性核糖体蛋白基因rpYP1α、rpYP1β、rpYP2α和rpYP2β的可变大小片段与载体系列YEp356 - 358中的LacZ基因融合。构建体用于转化野生型酿酒酵母和几种缺乏不同酸性核糖体蛋白基因的基因破坏菌株。通过β-半乳糖苷酶活性检测,估计嵌合蛋白在细胞质和核糖体之间的分布。含有来自其氨基末端结构域约至少65 - 75个氨基酸的杂合蛋白能够在完整天然蛋白存在的情况下与核糖体结合。含有不超过36个氨基末端氨基酸的杂合蛋白在没有竞争性天然蛋白的情况下与核糖体结合。融合的YP1 - β-半乳糖苷酶蛋白也能够与天然YP2型蛋白形成复合物,促进它们与核糖体的结合。杂合多肽的稳定性似乎与其P蛋白片段的大小成反比。这些结果表明,真核P蛋白与核糖体相互作用所需的P1 - P2复合物形成仅需要其氨基末端结构域。高度保守的P蛋白羧基末端不参与与颗粒的结合,而是暴露于培养基中。

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