Department of Chemistry and Biochemistry, Utah State University, Logan, UT, USA.
EMBO J. 2010 Jul 7;29(13):2205-16. doi: 10.1038/emboj.2010.107. Epub 2010 May 28.
The essential RNA helicase, Mtr4, performs a critical role in RNA processing and degradation as an activator of the nuclear exosome. The molecular basis for this vital function is not understood and detailed analysis is significantly limited by the lack of structural data. In this study, we present the crystal structure of Mtr4. The structure reveals a new arch-like domain that is specific to Mtr4 and Ski2 (the cytosolic homologue of Mtr4). In vivo and in vitro analyses demonstrate that the Mtr4 arch domain is required for proper 5.8S rRNA processing, and suggest that the arch functions independently of canonical helicase activity. In addition, extensive conservation along the face of the putative RNA exit site highlights a potential interface with the exosome. These studies provide a molecular framework for understanding fundamental aspects of helicase function in exosome activation, and more broadly define the molecular architecture of Ski2-like helicases.
必需的 RNA 解旋酶 Mtr4 作为核 exosome 的激活物,在 RNA 加工和降解中发挥着关键作用。其重要功能的分子基础尚不清楚,详细分析受到严重限制,因为缺乏结构数据。在这项研究中,我们展示了 Mtr4 的晶体结构。该结构揭示了一种新的拱形结构域,该结构域仅存在于 Mtr4 和 Ski2(Mtr4 的细胞质同源物)中。体内和体外分析表明,Mtr4 拱形结构域对于正确的 5.8S rRNA 加工是必需的,并表明拱形结构域独立于典型的解旋酶活性发挥作用。此外,假定的 RNA 出口位点表面的广泛保守性突出了与 exosome 的潜在接口。这些研究为理解 exosome 激活中解旋酶功能的基本方面提供了分子框架,并且更广泛地定义了 Ski2 样解旋酶的分子结构。