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The Impact of a Ligand Binding on Strand Migration in the SAM-I Riboswitch

机译:配体与三维核糖开关中股线迁移的影响

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Riboswitches sense cellular concentrations of small molecules and use this information to adjust synthesis rates of related metabolites. Riboswitches include an aptamer domain to detect the ligand and an expression platform to control gene expression. Previous structural studies of riboswitches largely focused on aptamers, truncating the expression domain to suppress conformational switching. To link ligand/aptamer binding to conformational switching, we constructed models of an S-adenosyl methionine (SAM)-I riboswitch RNA segment incorporating elements of the expression platform, allowing formation of an antiterminator (AT) helix. Using Anton, a computer specially developed for long timescale Molecular Dynamics (MD), we simulated an extended (three microseconds) MD trajectory with SAM bound to a modeled riboswitch RNA segment. Remarkably, we observed a strand migration, converting three base pairs from an antiterminator (AT) helix, characteristic of the transcription ON state, to a P1 helix, characteristic of the OFF state. This conformational switching towards the OFF state is observed only in the presence of SAM. Among seven extended trajectories with three starting structures, the presence of SAM enhances the trend towards the OFF state for two out of three starting structures tested. Our simulation provides a visual demonstration of how a small molecule (<500 MW) binding to a limited surface can trigger a large scale conformational rearrangement in a 40 kDa RNA by perturbing the Free Energy Landscape. Such a mechanism can explain minimal requirements for SAM binding and transcription termination for SAM-I riboswitches previously reported experimentally.
机译:Riboswitches感测细胞浓度的小分子,并使用这些信息来调整相关代谢物的合成率。核糖开关包括适体域以检测配体和表达平台以控制基因表达。以前的核糖开关的结构研究大部分聚焦在适体,截断表达域以抑制构象切换。为了将配体/适体结合结合到构象开关,我们构造了S-腺苷蛋氨酸(SAM)-I核糖开关RNA区段的模型,其含有表达平台的元素,允许形成抗铝蛋白(AT)螺旋。使用Anton,一种专门为长时间的分子动力学(MD)开发的计算机,我们模拟了一个延长(三微秒)MD轨迹,SAM与模型的Riboswitch RNA段绑定。值得注意的是,我们观察到股线迁移,将三个碱基对转化为从抗烧液器(AT)螺旋,转录的特征,转换为OFF状态的P1螺旋特征。仅在SAM的存在下观察到朝向关闭状态的构象切换。在具有三个起始结构的七个延长轨迹中,山姆的存在增强了三种起始结构中的两个出现的关闭状态的趋势。我们的仿真提供了一种视觉演示,可以通过对有限的表面结合的小分子(<500mW)的结合可以通过扰动自动能量景观来引发40kDa RNA中的大规模构象重新排列。这种机制可以解释用于先前报道的SAM-1核糖开关的SAM结合和转录终止的最小要求。

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