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Free energy calculation of modified base-pair formation in explicit solvent: A predictive model

机译:显性溶剂中修饰碱基对形成的自由能计算:预测模型

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摘要

The maturation of RNAs includes site-specific post-transcriptional modifications that contribute significantly to hydrogen bond formation within RNA and between different RNAs, especially in formation of mismatch base pairs. Thus, an understanding of the geometry and strength of the base-pairing of modified ribonucleoside 5′-monophosphates, previously not defined, is applicable to investigations of RNA structure and function and of the design of novel RNAs. The geometry and free energies of base-pairings were calculated in aqueous solution under neutral conditions with AMBER force fields and molecular dynamics simulations (MDSs). For example, unmodified uridines were observed to bind to uridine and cytidine with significant stability, but the ribose C1′–C1′ distances were far short (∼8.9 Å) of distances observed for canonical A-form RNA helices. In contrast, 5-oxyacetic acid uridine, known to bind adenosine, wobble to guanosine, and form mismatch base pairs with uridine and cytidine, bound adenosine and guanosine with geometries and energies comparable to an unmodified uridine. However, the 5-oxyacetic acid uridine base paired to uridine and cytidine with a C1′–C1′ distance comparable to that of an A-form helix, ∼11 Å, when a H2O molecule migrated between and stably hydrogen bonded to both bases. Even in formation of canonical base pairs, intermediate structures with a second energy minimum consisted of transient H2O molecules forming hydrogen bonded bridges between the two bases. Thus, MDS is predictive of the effects of modifications, H2O molecule intervention in the formation of base-pair geometry, and energies that are important for native RNA structure and function.
机译:RNA的成熟包括特定于位点的转录后修饰,这些修饰显着有助于RNA内以及不同RNA之间的氢键形成,尤其是在错配碱基对的形成中。因此,先前未定义的对修饰的核糖核苷5'-单磷酸酯碱基配对的几何形状和强度的理解,可用于RNA结构和功能的研究以及新型RNA的设计。利用AMBER力场和分子动力学模拟(MDSs),在中性条件下,在水溶液中计算了碱基配对的几何形状和自由能。例如,观察到未修饰的尿苷与尿苷和胞苷结合具有显着的稳定性,但是核糖C1'–C1'的距离远远短于规范A型RNA螺旋的距离(〜8.9Å)。相反,已知与腺苷结合的5-氧乙酸尿苷摆动到鸟苷,并与尿苷和胞苷形成错配碱基对,以与未修饰的尿苷相当的几何形状和能量结合腺苷和鸟苷。但是,当H2O分子在两个碱基之间迁移并稳定地与氢键合时,5-氧乙酸尿苷碱基与尿苷和胞苷配对,其C1'–C1'距离可与A型螺旋的〜11Å相当。即使在形成规范的碱基对时,具有第二个最小能量的中间结构也由瞬态H2O分子组成,它们在两个碱基之间形成氢键键合的桥。因此,MDS可预测修饰的影响,H2O分子对碱基对几何结构形成的干预以及对天然RNA结构和功能至关重要的能量。

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