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信号识别颗粒Alu结构域蛋白质亚基的突变分析

Mutational analysis of the protein subunits of the signal recognition particle Alu-domain.

作者信息

Bui N, Wolff N, Cusack S, Strub K

机构信息

Departement de biologie cellulaire, Université de Genève, Sciences III, Geneva, Switzerland.

出版信息

RNA. 1997 Jul;3(7):748-63.

Abstract

Two polypeptides of the murine signal recognition particle (SRP), SRP9 and SRP14, bind exclusively as a heterodimer to SRP RNA and their presence is required for elongation arrest activity of the particle. SRP9/14 also constitute a subunit of small cytoplasmic Alu RNPs. To identify RNA-binding determinants, we assayed the dimerization and RNA-binding capacities of altered proteins in vitro. Despite the structural homology of the two proteins, their requirements for dimerization differ substantially. In SRP9, an internal fragment of 43 amino acids is sufficient to allow dimer formation, whereas in SRP14 only few changes, such as removing an internal loop region, are tolerated without affecting its dimerization activity. The dimerization defect of the SRP14 proteins is most likely explained by a reduced stability or ability to fold of the proteins. Interestingly, SRP RNA can engage certain dimerization-defective SRP14 proteins into stable complexes, suggesting that low-affinity interactions between the RNA and SRP14 may help to overcome the folding defect or the reduced stability of the proteins. We identified two regions, one in each protein, that are essential for RNA-binding. In SRP9, acidic amino acid residues in the N-terminal alpha-helix and the adjacent loop and, in SRP14, a flexible internal loop region are critical for RNA-binding. In the heterodimer, the two regions are located in close proximity, consistent with the RNA-binding region being formed by both proteins.

摘要

小鼠信号识别颗粒(SRP)的两种多肽,即SRP9和SRP14,仅以异二聚体形式与SRP RNA结合,并且颗粒的延伸阻滞活性需要它们的存在。SRP9/14还构成小细胞质Alu核糖核蛋白的一个亚基。为了鉴定RNA结合决定因素,我们在体外检测了改变后的蛋白质的二聚化和RNA结合能力。尽管这两种蛋白质在结构上具有同源性,但它们对二聚化的要求却有很大差异。在SRP9中,43个氨基酸的内部片段足以形成二聚体,而在SRP14中,只有很少的变化(如去除一个内部环区域)不会影响其二聚化活性。SRP14蛋白质的二聚化缺陷很可能是由于蛋白质折叠稳定性降低或折叠能力下降所致。有趣的是,SRP RNA可以使某些二聚化缺陷的SRP14蛋白质形成稳定的复合物,这表明RNA与SRP14之间的低亲和力相互作用可能有助于克服蛋白质的折叠缺陷或稳定性降低。我们在每种蛋白质中鉴定出一个对RNA结合至关重要的区域。在SRP9中,N端α螺旋和相邻环中的酸性氨基酸残基,以及在SRP14中,一个灵活的内部环区域对RNA结合至关重要。在异二聚体中,这两个区域紧密相邻,这与RNA结合区域由两种蛋白质共同形成一致。

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