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Theoretical Model of Transcription Based on Torsional Mechanics of DNA Template

机译:基于DNA模板扭转力学的转录理论模型

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摘要

Transcription is the first step of gene expression, in which a particular segment of DNA is copied to RNA by the enzyme RNA polymerase (RNAP). Despite many details of the complex interactions between DNA and RNA synthesis disclosed experimentally, much of physical behavior of transcription remains largely unknown. Understanding torsional mechanics of DNA and RNAP together with its nascent RNA and RNA-bound proteins in transcription maybe the first step towards deciphering the mechanism of gene expression. In this study, based on the balance between viscous drag on RNA synthesis and torque resulted from untranscribed supercoiled DNA template, a simple model is presented to describe mechanical properties of transcription. With this model, the rotation and supercoiling density of the untranscribed DNA template are discussed in detail. Two particular cases of transcription are considered, transcription with constant velocity and transcription with torque dependent velocity. Our results show that, during the initial stage of transcription, rotation originated from the transcribed part of DNA template is mainly released by the rotation of RNAP synthesis. During the intermediate stage, the rotation is usually released by both the supercoiling of the untranscribed part of DNA template and the rotation of RNAP synthesis, with proportion depending on the friction coefficient in environment and the length of nascent RNA. However, with the approaching to the upper limit of twisting of the untranscribed DNA template, the rotation resulted from transcription will then be mainly released by the rotation of RNAP synthesis.
机译:转录是基因表达的第一步,其中通过酶RNA聚合酶(RNAP)将特定的DNA片段复制至RNA。尽管在实验公开的DNA和RNA合成之间的复杂相互作用的许多细节,但转录的大部分物理行为仍然很大程度上是未知的。理解DNA和RNAP的扭转力学以及其新生RNA和RNA结合的蛋白在转录中可以是解密基因表达机制的第一步。在本研究中,基于粘性RNA合成和扭矩的粘性拖动之间的平衡,提出了一种简单的模型来描述转录的机械性能。利用该模型,详细讨论了未筛选的DNA模板的旋转和超晶体密度。考虑两种特定的转录病例,具有恒定速度和转录的转录,扭矩依赖性速度。我们的研究结果表明,在转录的初始阶段,源自DNA模板的转录部分的旋转主要通过RNAP合成的旋转来释放。在中间阶段期间,旋转通常通过DNA模板的未筛选部分的超镀层和RNAP合成的旋转,从而根据环境中的摩擦系数和新生RNA的长度的比例。然而,随着接近未经筛选的DNA模板的扭曲的上限,随着RNAP合成的旋转,转录引起的旋转将主要释放。

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