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在对高阶RNA连接的分析中揭示的三级基序。

Tertiary motifs revealed in analyses of higher-order RNA junctions.

作者信息

Laing Christian, Jung Segun, Iqbal Abdul, Schlick Tamar

机构信息

Department of Chemistry, New York University, 251 Mercer Street, New York, NY 10012, USA.

出版信息

J Mol Biol. 2009 Oct 16;393(1):67-82. doi: 10.1016/j.jmb.2009.07.089. Epub 2009 Aug 3.

Abstract

RNA junctions are secondary-structure elements formed when three or more helices come together. They are present in diverse RNA molecules with various fundamental functions in the cell. To better understand the intricate architecture of three-dimensional (3D) RNAs, we analyze currently solved 3D RNA junctions in terms of base-pair interactions and 3D configurations. First, we study base-pair interaction diagrams for solved RNA junctions with 5 to 10 helices and discuss common features. Second, we compare these higher-order junctions to those containing 3 or 4 helices and identify global motif patterns such as coaxial stacking and parallel and perpendicular helical configurations. These analyses show that higher-order junctions organize their helical components in parallel and helical configurations similar to lower-order junctions. Their sub-junctions also resemble local helical configurations found in three- and four-way junctions and are stabilized by similar long-range interaction preferences such as A-minor interactions. Furthermore, loop regions within junctions are high in adenine but low in cytosine, and in agreement with previous studies, we suggest that coaxial stacking between helices likely forms when the common single-stranded loop is small in size; however, other factors such as stacking interactions involving noncanonical base pairs and proteins can greatly determine or disrupt coaxial stacking. Finally, we introduce the ribo-base interactions: when combined with the along-groove packing motif, these ribo-base interactions form novel motifs involved in perpendicular helix-helix interactions. Overall, these analyses suggest recurrent tertiary motifs that stabilize junction architecture, pack helices, and help form helical configurations that occur as sub-elements of larger junction networks. The frequent occurrence of similar helical motifs suggest nature's finite and perhaps limited repertoire of RNA helical conformation preferences. More generally, studies of RNA junctions and tertiary building blocks can ultimately help in the difficult task of RNA 3D structure prediction.

摘要

RNA连接点是由三个或更多螺旋聚集在一起时形成的二级结构元件。它们存在于多种RNA分子中,在细胞中具有各种基本功能。为了更好地理解三维(3D)RNA的复杂结构,我们从碱基对相互作用和3D构型方面分析了目前已解析的3D RNA连接点。首先,我们研究了具有5至10个螺旋的已解析RNA连接点的碱基对相互作用图,并讨论了其共同特征。其次,我们将这些高阶连接点与包含3或4个螺旋的连接点进行比较,并识别出诸如同轴堆积以及平行和垂直螺旋构型等全局基序模式。这些分析表明,高阶连接点以与低阶连接点相似的平行和螺旋构型来组织其螺旋组件。它们的子连接点也类似于在三向和四向连接点中发现的局部螺旋构型,并通过类似的长程相互作用偏好(如A- minor相互作用)得以稳定。此外,连接点内的环区域腺嘌呤含量高而胞嘧啶含量低,并且与先前的研究一致,我们认为当共同的单链环尺寸较小时,螺旋之间可能会形成同轴堆积;然而,其他因素,如涉及非规范碱基对和蛋白质的堆积相互作用,可极大地决定或破坏同轴堆积。最后,我们介绍了核糖碱基相互作用:当与沿沟堆积基序结合时,这些核糖碱基相互作用形成了参与垂直螺旋-螺旋相互作用的新型基序。总体而言,这些分析表明存在反复出现的三级基序,它们稳定连接点结构、堆积螺旋,并有助于形成作为更大连接点网络子元件出现的螺旋构型。相似螺旋基序的频繁出现表明自然界中RNA螺旋构象偏好的种类有限且可能受限。更一般地说,对RNA连接点和三级构建模块的研究最终有助于完成RNA 3D结构预测这项艰巨任务。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/79b7/3174529/9d95ab161669/nihms-143836-f0001.jpg

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