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Structure of a self-splicing group II intron catalytic effector domain 5: parallels with spliceosomal U6 RNA.

机译:自我剪裁的第II组内含子催化效应子结构域5的结构:与剪接体U6 RNA平行。

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Domain 5 (D5) is absolutely required for all catalytic functions of group II introns. Here we describe the solution NMR structure, electrostatic calculations, and detailed magnesium ion-binding surface of D5 RNA from the Pylaiella littoralis large ribosomal RNA intron (D5-PL). The overall structure consists of a hairpin capped by a GNRA tetraloop. The stem is divided into lower and upper helices of 8 and 5 bp, respectively, separated by an internal bulge. The D5-PL internal bulge nucleotides stack into the helical junction, resulting in a coupling between the bulge A25 and the closing base pair (G8-C27) of the lower helix. Comparison of the D5-PL structure to previously reported related structures indicates that our structure is most similar, in the helical regions, to the crystal structure of D5 from yeast Ai5gamma (D5-Ai5gamma) and the NMR structure of the U6 snRNA stem-loop region. Our structure differs in many respects from both the NMR and X-ray structures of D5-Ai5gamma in the bulge region. Electrostatic calculations and NMR chemical shift perturbation analyses reveal magnesium ion-binding sites in the tetraloop, internal bulge, and the AGC triad in the lower stem. Our results suggest that the structure, electrostatic environment, and the magnesium ion-binding sites within the tetraloop, bulge, and triad regions are conserved features of the splicing machinery of both the group II introns and the spliceosome that are likely key for catalytic function.
机译:II类内含子的所有催化功能绝对需要域5(D5)。在这里,我们描述了溶液的NMR结构,静电计算和详细的P5产卵大核糖体RNA内含子(D5-PL)D5 RNA的镁离子结合表面。总体结构由发夹组成,发夹由GNRA四环封盖。茎分为8和5 bp的下螺旋和上螺旋,分别由内部凸起分开。 D5-PL内部的凸起核苷酸堆积到螺旋连接处,导致凸起A25与下部螺旋的闭合碱基对(G8-C27)之间的偶联。 D5-PL结构与先前报道的相关结构的比较表明,我们的结构在螺旋区域中与酵母Ai5gamma(D5-Ai5gamma)的D5的晶体结构和U6 snRNA茎环的NMR结构最相似地区。我们的结构在许多方面与凸起区域中D5-Ai5gamma的NMR和X射线结构不同。静电计算和NMR化学位移扰动分析揭示了四环,内部凸起和下部茎中的AGC三联体中的镁离子结合位点。我们的结果表明,结构,静电环境以及四环,凸出和三合一区域内的镁离子结合位点是II类内含子和剪接体剪接机制的保守特征,可能是催化功能的关键。

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