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Molecular dynamics correctly models the unusual major conformation of the GAGU RNA internal loop and with NMR reveals an unusual minor conformation

机译:分子动力学正确地模拟了GAGU RNA内部环的异常主要构象并通过NMR揭示了异常的次要构象

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摘要

The RNA “GAGU” duplex, (5′GACGAGUGUCA)2, contains the internal loop (5′-GAGU-3′)2 , which has two conformations in solution as determined by NMR spectroscopy. The major conformation has a loop structure consisting of trans-Watson–Crick/Hoogsteen GG pairs, A residues stacked on each other, U residues bulged outside the helix, and all sugars with a C2′-endo conformation. This differs markedly from the internal loops, (5′-GAGC-3′)2, (5′-AAGU-3′)2, and (5′-UAGG-3′)2, which all have cis-Watson–Crick/Watson–Crick AG “imino” pairs flanked by cis-Watson–Crick/Watson–Crick canonical pairs resulting in maximal hydrogen bonding. Here, molecular dynamics was used to test whether the Amber force field (ff99 + bsc0 + OL3) approximates molecular interactions well enough to keep stable the unexpected conformation of the GAGU major duplex structure and the NMR structures of the duplexes containing (5′-GAGC-3′)2, (5′-AAGU-3′)2, and (5′-UAGG-3′)2 internal loops. One-microsecond simulations were repeated four times for each of the duplexes starting in their NMR conformations. With the exception of (5′-UAGG-3′)2, equivalent simulations were also run starting with alternative conformations. Results indicate that the Amber force field keeps the NMR conformations of the duplexes stable for at least 1 µsec. They also demonstrate an unexpected minor conformation for the (5′-GAGU-3′)2 loop that is consistent with newly measured NMR spectra of duplexes with natural and modified nucleotides. Thus, unrestrained simulations led to the determination of the previously unknown minor conformation. The stability of the native (5′-GAGU-3′)2 internal loop as compared to other loops can be explained by changes in hydrogen bonding and stacking as the flanking bases are changed.
机译:RNA“ GAGU”双链体(5'GACGAGUGUCA)2包含内部环(5'-GAGU-3')2,通过NMR光谱测定,该环在溶液中具有两个构象。主要构象具有由反华生-克里克/霍格斯滕GG对,彼此堆叠的A残基,在螺旋之外凸出的U残基以及所有具有C2'-endo构象的糖组成的环结构。这与内部循环(5'-GAGC-3')2,(5'-AAGU-3')2和(5'-UAGG-3')2明显不同,它们都具有顺式Watson-Crick / Watson-Crick AG“亚氨基”对与cis-Watson-Crick / Watson-Crick典型对成对,从而产生最大的氢键。在这里,使用分子动力学来测试琥珀色的力场(ff99 + bsc0 + OL3)是否足够接近分子相互作用,以使GAGU主要双链体结构和包含(5'-GAGC)的双链体的NMR结构的意外构象保持稳定-3')2,(5'-AAGU-3')2和(5'-UAGG-3')2内部回路。从其NMR构象开始,对每个双链体重复1微秒的模拟四次。除了(5'-UAGG-3')2外,还从其他构象开始进行了等效的模拟。结果表明,琥珀色的力场使双链体的NMR构象稳定至少1微秒。他们还证明了(5'-GAGU-3')2环有意想不到的次要构象,这与新近测量的具有天然和修饰核苷酸的双链体的NMR光谱相符。因此,不受约束的模拟导致确定先前未知的次要构象。与其他环相比,天然(5'-GAGU-3')2内部环的稳定性可以通过改变侧翼碱基时氢键和堆叠的变化来解释。

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