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The 9-Å solution: How mRNA pseudoknots promote efficient programmed −1 ribosomal frameshifting

机译:9-Å解决方案:mRNA假结如何促进有效的程序化-1核糖体移码

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摘要

There is something special about mRNA pseudoknots that allows them to elicit efficient levels of programmed −1 ribosomal frameshifting. Here, we present a synthesis of recent crystallographic, molecular, biochemical, and genetic studies to explain this property. Movement of 9 Å by the anticodon loop of the aminoacyl-tRNA at the accommodation step normally pulls the downstream mRNA a similar distance along with it. We suggest that the downstream mRNA pseudoknot provides resistance to this movement by becoming wedged into the entrance of the ribosomal mRNA tunnel. These two opposing forces result in the creation of a local region of tension in the mRNA between the A-site codon and the mRNA pseudoknot. This can be relieved by one of two mechanisms; unwinding the pseudoknot, allowing the downstream region to move forward, or by slippage of the proximal region of the mRNA backwards by one base. The observed result of the latter mechanism is a net shift of reading frame by one base in the 5′ direction, that is, a −1 ribosomal frameshift.
机译:关于mRNA假结,有一些特殊之处,可以使它们激发已编程的-1核糖体移码的有效水平。在这里,我们提出了最新的晶体学,分子学,生化和遗传学研究的综述,以解释这一特性。在调节步骤中,氨酰基-tRNA的反密码子环移动9 normally通常会将下游的mRNA与之相距一段相似的距离。我们建议下游的mRNA假结通过被楔入核糖体mRNA通道的入口来提供对该运动的抵抗力。这两个相反的力导致在A位密码子和mRNA假结之间的mRNA中产生张力的局部区域。这可以通过以下两种机制之一来缓解:松开假结,使下游区域向前移动,或使mRNA的近端区域向后滑动一个碱基。后一种机制的观察结果是阅读框在5'方向上净移一个碱基,即-1核糖体移码。

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