八肽重复蛋白Raa8是叶绿体反式剪接所必需的。

Eukaryotic Cell Pub Date : 2015-10-01 Epub Date: 2015-07-24 DOI:10.1128/EC.00096-15
Christina Marx, Christiane Wünsch, Ulrich Kück
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引用次数: 19

摘要

莱茵衣藻(Chlamydomonas reinhardtii)叶绿体psaA基因的mRNA成熟依赖于参与两个II族内含子反式剪接的各种核编码因子。最近,一个多蛋白复合物被确定参与加工psaA前体mRNA。利用耦合串联亲和纯化(TAP)和质谱分析,以反式剪接因子Raa4作为诱饵蛋白,我们最近鉴定了一个多亚基核糖核蛋白(RNP)复合物,该复合物由先前表征的反式剪接因子Raa1、Raa3、Raa4和Rat2以及新的组分组成。Raa1和Rat2共享一个结构基序,一个八肽重复序列(OPR),可能作为RNA相互作用模块。两个新的RNP复合物组分也表现出预测的OPR基序,因此被认为是潜在的反式剪接因子。在这项研究中,我们选择了编码这些OPR蛋白的细菌人工染色体(BAC)克隆,并使用先前生成的反式剪接突变体进行了功能互补分析。我们的实验表明,突变体F19的反式剪接缺陷被一个我们命名为RAA8的新因子修复;互补菌株的分子表征证实Raa8参与了第一个psaA II族内含子的剪接。6个OPR基序中有3个位于Raa8的c端,这对恢复psaA mRNA反式剪接至关重要。我们的研究结果支持OPR蛋白在叶绿体RNA代谢中发挥的重要作用,并表明将TAP和质谱与功能互补研究相结合是鉴定反式剪接因子的有力工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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The Octatricopeptide Repeat Protein Raa8 Is Required for Chloroplast trans Splicing.

The mRNA maturation of the tripartite chloroplast psaA gene from the green alga Chlamydomonas reinhardtii depends on various nucleus-encoded factors that participate in trans splicing of two group II introns. Recently, a multiprotein complex was identified that is involved in processing the psaA precursor mRNA. Using coupled tandem affinity purification (TAP) and mass spectrometry analyses with the trans-splicing factor Raa4 as a bait protein, we recently identified a multisubunit ribonucleoprotein (RNP) complex comprising the previously characterized trans-splicing factors Raa1, Raa3, Raa4, and Rat2 plus novel components. Raa1 and Rat2 share a structural motif, an octatricopeptide repeat (OPR), that presumably functions as an RNA interaction module. Two of the novel RNP complex components also exhibit a predicted OPR motif and were therefore considered potential trans-splicing factors. In this study, we selected bacterial artificial chromosome (BAC) clones encoding these OPR proteins and conducted functional complementation assays using previously generated trans-splicing mutants. Our assay revealed that the trans-splicing defect of mutant F19 was restored by a new factor we named RAA8; molecular characterization of complemented strains verified that Raa8 participates in splicing of the first psaA group II intron. Three of six OPR motifs are located in the C-terminal end of Raa8, which was shown to be essential for restoring psaA mRNA trans splicing. Our results support the important role played by OPR proteins in chloroplast RNA metabolism and also demonstrate that combining TAP and mass spectrometry with functional complementation studies represents a vigorous tool for identifying trans-splicing factors.

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Eukaryotic Cell
Eukaryotic Cell 生物-微生物学
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期刊介绍: Eukaryotic Cell (EC) focuses on eukaryotic microbiology and presents reports of basic research on simple eukaryotic microorganisms, such as yeasts, fungi, algae, protozoa, and social amoebae. The journal also covers viruses of these organisms and their organelles and their interactions with other living systems, where the focus is on the eukaryotic cell. Topics include: - Basic biology - Molecular and cellular biology - Mechanisms, and control, of developmental pathways - Structure and form inherent in basic biological processes - Cellular architecture - Metabolic physiology - Comparative genomics, biochemistry, and evolution - Population dynamics - Ecology
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