Departments of Physics, Galgotias College of Engineering and Technology, Greater Noida, India.
Institute for Skeletal Aging & Orthopedic Surgery, Hallym University-Chuncheon Sacred Heart Hospital, Chuncheon, Gangwon-Do, Republic of Korea.
J Cell Biochem. 2019 Dec;120(12):19915-19924. doi: 10.1002/jcb.29300. Epub 2019 Jul 18.
Argonaute-2 (AGO2), a member of the Argonaute family, is the only member possessing catalytic and RNA silencing activity. In here, a molecular dynamics (MDs) simulation was performed using the crystal structure of human AGO2 protein complex with miR-20a. miR-20a is involved with various kind of biological process like heart and lung development, oncogenic process, etc. In precise, MD simulation was carried out with AGO2 protein complex with wild type, two mutant sites and four mutant sites in guided microRNA (miRNA). It has been noted that root-mean-square deviation (RMSD) of atomic positions of nucleic acid for wild type and two mutant sites guided miRNA has the same pattern of fluctuations, which stabilizes around 0.27 nm after 2 ns. Cα atom of AGO2 protein in the complex shows that this complex with wild type and two mutant site mutation duplex has a stable RMSD value after 20 ns, ranging between 0.14 and 0.21 nm. From the root-mean-square fluctuation (RMSF), we observed an increased pattern of fluctuations for the atoms of four mutant complex of AGO2-miR-20a complex. This increased RMSF of non-mutated nucleic acids is contributed by U-A bond breaking at the site of the nucleotide of U2 of guided miRNA, as observed from the duplex structure taken at different time steps of the simulation. Superimposed structure of the miRNA-mRNA duplex for the three complexes depicts that the three miRNA-mRNA duplexes are stable during the simulation. Current work demonstrates the possible correlations between the conformational changes of this AGO2-miR-20a duplex structure and the interactions of different atoms.
Argonaute-2 (AGO2) 是 Argonaute 家族的成员之一,是唯一具有催化和 RNA 沉默活性的成员。在这里,使用与人 AGO2 蛋白复合物与 miR-20a 的晶体结构进行了分子动力学 (MDs) 模拟。miR-20a 参与各种生物过程,如心肺发育、致癌过程等。具体来说,对野生型、两个突变位点和四个突变位点的引导 miRNA 进行了 MD 模拟。结果表明,野生型和两个突变位点引导 miRNA 的核酸原子均方根偏差 (RMSD) 波动模式相同,在 2 ns 后稳定在 0.27nm 左右。AGO2 蛋白复合物中的 Cα 原子表明,该复合物与野生型和两个突变位点突变双链体在 20 ns 后具有稳定的 RMSD 值,范围在 0.14 到 0.21nm 之间。从均方根波动 (RMSF) 来看,我们观察到 AGO2-miR-20a 复合物四个突变复合物的原子波动模式增加。这种非突变核酸 RMSF 的增加是由引导 miRNA 的 U2 核苷酸处的 U-A 键断裂引起的,这是从模拟不同时间步长的双链体结构中观察到的。三个复合物的 miRNA-mRNA 双链体的叠加结构表明,在模拟过程中,三个 miRNA-mRNA 双链体是稳定的。目前的工作表明,AGO2-miR-20a 双链体结构构象变化与不同原子相互作用之间可能存在相关性。