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参与大核糖体亚基生物合成的酵母DEXD/H盒RNA解旋酶的全面突变分析。

Comprehensive mutational analysis of yeast DEXD/H box RNA helicases involved in large ribosomal subunit biogenesis.

作者信息

Bernstein Kara A, Granneman Sander, Lee Alicia V, Manickam Swarnameenakshi, Baserga Susan J

机构信息

Molecular Biophysics & Biochemistry Department, Yale University School of Medicine, 333 Cedar St., SHM C-114, New Haven, CT 06520-8024, USA.

出版信息

Mol Cell Biol. 2006 Feb;26(4):1195-208. doi: 10.1128/MCB.26.4.1195-1208.2006.

Abstract

DEXD/H box putative RNA helicases are required for pre-rRNA processing in Saccharomyces cerevisiae, although their exact roles and substrates are unknown. To characterize the significance of the conserved motifs for helicase function, a series of five mutations were created in each of the eight essential RNA helicases (Has1, Dbp6, Dbp10, Mak5, Mtr4, Drs1, Spb4, and Dbp9) involved in 60S ribosomal subunit biogenesis. Each mutant helicase was screened for the ability to confer dominant negative growth defects and for functional complementation. Different mutations showed different degrees of growth inhibition among the helicases, suggesting that the conserved regions do not function identically in vivo. Mutations in motif I and motif II (the DEXD/H box) often conferred dominant negative growth defects, indicating that these mutations do not interfere with substrate binding. In addition, mutations in the putative unwinding domains (motif III) demonstrated that conserved amino acids are often not essential for function. Northern analysis of steady-state RNA from strains expressing mutant helicases showed that the dominant negative mutations also altered pre-rRNA processing. Coimmunoprecipitation experiments indicated that some RNA helicases associated with each other. In addition, we found that yeasts disrupted in expression of the two nonessential RNA helicases, Dbp3 and Dbp7, grew worse than when either one alone was disrupted.

摘要

DEXD/H盒假定RNA解旋酶在酿酒酵母的前体rRNA加工过程中是必需的,尽管它们的确切作用和底物尚不清楚。为了表征保守基序对解旋酶功能的重要性,在参与60S核糖体亚基生物合成的八个必需RNA解旋酶(Has1、Dbp6、Dbp10、Mak5、Mtr4、Drs1、Spb4和Dbp9)中的每一个中创建了一系列五个突变。对每个突变解旋酶进行筛选,以确定其赋予显性负生长缺陷的能力和功能互补能力。不同的突变在解旋酶中表现出不同程度的生长抑制,这表明保守区域在体内的功能并不相同。基序I和基序II(DEXD/H盒)中的突变通常会导致显性负生长缺陷,这表明这些突变不会干扰底物结合。此外,假定解旋结构域(基序III)中的突变表明保守氨基酸通常对功能并非必不可少。对表达突变解旋酶的菌株的稳态RNA进行Northern分析表明,显性负突变也改变了前体rRNA加工。免疫共沉淀实验表明一些RNA解旋酶相互关联。此外,我们发现,在两个非必需RNA解旋酶Dbp3和Dbp7的表达中被破坏的酵母,其生长情况比单独破坏其中任何一个时更差。

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