首页> 外文期刊>Journal of Molecular Biology >Minimum-energy path for a u6 RNA conformational change involving protonation, base-pair rearrangement and base flipping.
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Minimum-energy path for a u6 RNA conformational change involving protonation, base-pair rearrangement and base flipping.

机译:u6 RNA构象变化涉及质子化,碱基对重排和碱基翻转的最小能量路径。

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摘要

The U6 RNA internal stem-loop (U6 ISL) is a highly conserved domain of the spliceosome that is important for pre-mRNA splicing. The U6 ISL contains an internal loop that is in equilibrium between two conformations controlled by the protonation state of an adenine (pK(a)=6.5). Lower pH favors formation of a protonated C-A(+) wobble pair and base flipping of the adjacent uracil. Higher pH favors stacking of the uracil and allows an essential metal ion to bind at this position. Here, we define the minimal-energy path for this conformational transition. To do this, we solved the U6 ISL structure at higher pH (8.0) in order to eliminate interference from the low-pH conformer. This structure reveals disruption of the protonated C-A(+) pair and formation of a new C-U pair, which explains the preference for a stacked uracil at higher pH. Next, we used nudged elastic band molecular dynamics simulations to calculate the minimum-energy path between the two conformations. Our results indicate that the C-U pair is dynamic, which allows formation of the more stable C-A(+) pair upon adenine protonation. After formation of the C-A(+) pair, the unpaired uracil follows a minor-groove base-flipping pathway. Molecular dynamics simulations suggest that the extrahelical uracil is stabilized by contacts with the adjacent helix.
机译:U6 RNA内部茎环(U6 ISL)是剪接体的高度保守结构域,对于mRNA的预剪接非常重要。 U6 ISL包含一个内部环,该内部环在由腺嘌呤的质子化状态控制的两个构象之间处于平衡状态(pK(a)= 6.5)。较低的pH值有利于形成质子化的C-A(+)摆动对和相邻尿嘧啶的碱基翻转。较高的pH值有利于尿嘧啶的堆积,并使必需的金属离子在该位置结合。在这里,我们定义了此构象转变的最小能量路径。为此,我们解决了在较高pH(8.0)下的U6 ISL结构,以消除来自低pH构象异构体的干扰。这种结构揭示了质子化的C-A(+)对的破坏和新C-U对的形成,这说明了在较高pH值下优先使用堆叠式尿嘧啶。接下来,我们使用微调的弹性带分子动力学模拟来计算两个构象之间的最小能量路径。我们的结果表明,C-U对是动态的,可以在腺嘌呤质子化后形成更稳定的C-A(+)对。在形成C-A(+)对之后,未配对的尿嘧啶遵循一条次要的碱基翻转途径。分子动力学模拟表明,螺旋外尿嘧啶通过与相邻螺旋的接触而稳定。

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