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The RNA backbone plays a crucial role in mediating the intrinsic stability of the GpU dinucleotide platform and the GpUpA/GpA miniduplex

机译:RNA骨架在介导GpU二核苷酸平台和GpUpA / GpA miniduplex的固有稳定性中起关键作用

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摘要

The side-by-side interactions of nucleobases contribute to the organization of RNA, forming the planar building blocks of helices and mediating chain folding. Dinucleotide platforms, formed by side-by-side pairing of adjacent bases, frequently anchor helices against loops. Surprisingly, GpU steps account for over half of the dinucleotide platforms observed in RNA-containing structures. Why GpU should stand out from other dinucleotides in this respect is not clear from the single well-characterized H-bond found between the guanine N2 and the uracil O4 groups. Here, we describe how an RNA-specific H-bond between O2′(G) and O2P(U) adds to the stability of the GpU platform. Moreover, we show how this pair of oxygen atoms forms an out-of-plane backbone ‘edge’ that is specifically recognized by a non-adjacent guanine in over 90% of the cases, leading to the formation of an asymmetric miniduplex consisting of ‘complementary’ GpUpA and GpA subunits. Together, these five nucleotides constitute the conserved core of the well-known loop-E motif. The backbone-mediated intrinsic stabilities of the GpU dinucleotide platform and the GpUpA/GpA miniduplex plausibly underlie observed evolutionary constraints on base identity. We propose that they may also provide a reason for the extreme conservation of GpU observed at most 5′-splice sites.
机译:核碱基的并排相互作用有助于RNA的组织,形成螺旋的平面结构单元并介导链折叠。通过相邻碱基的并排配对形成的二核苷酸平台经常将螺旋锚定在环上。令人惊讶地,GpU步骤占在含RNA的结构中观察到的二核苷酸平台的一半以上。从鸟嘌呤N2和尿嘧啶O4基团之间发现的单个特征明确的H键,尚不清楚为什么GpU在这方面应从其他二核苷酸中脱颖而出。在这里,我们描述了O2'(G)和O2P(U)之间的RNA特异性H键如何增加GpU平台的稳定性。此外,我们展示了这对氧原子如何形成面外骨架“边缘”,在超过90%的情况下,该邻域被不相邻的鸟嘌呤特异性识别,从而导致形成由“互补的GpUpA和GpA亚基。这五个核苷酸一起构成了众所周知的loop-E基序的保守核心。 GpU二核苷酸平台和GpUpA / GpA微型双链体的骨干介导的固有稳定性似乎是对碱基同一性观察到的进化限制。我们建议,它们也可能为在大多数5'剪接位点观察到的GpU的极端保守提供一个原因。

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