冠状病毒s2m吻配合物和扩展双链物的结构预测。

IF 4.3 Q2 CHEMISTRY, PHYSICAL
Adam H. Kensinger, Joseph A. Makowski, Mihaela Rita Mihailescu and Jeffrey D. Evanseck*, 
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引用次数: 0

摘要

RNA亲和复合物(KCs)和延伸双链(EDs)(通过回文碱基配对形成的同型二聚体)的三维(3D)原子分辨率结构和动力学对于理解病毒复制和基于结构的治疗设计至关重要。聚丙烯酰胺凝胶电泳(PAGE)证据表明,SARS-CoV、SARS-CoV-2和Delta SARS-CoV-2的茎环II基序(s2m)元件之间形成KC和ED二聚体,可能调节宿主免疫反应。然而,缺乏s2m二聚体的三维结构数据限制了解释天然PAGE和生物物理意义所指示的稳定性差异所需的结构解释。在这项工作中,我们评估了VFold3D/LA-IsRNA管道,通过对实验HIV-1 DIS KC和ED结构的盲预测和参考预测来验证其准确性,以解决s2m KC和ED的3D结构。由于对盲预测KC和ED结构的方法产生了信心,HIV-1 DIS预测相对于晶体结构的平均RMSD为3.28 Å,而局部相互作用,如末端环中回文侧翼嘌呤stack方向,与报道的溶液相NMR (RMSD ~ 2.5 Å),冷冻电镜图和先前的分子动力学(MD)模拟更接近。我们发现预测的s2m的3D二聚体结构导致s2m的KC复合物的扭结或线性形状,这提供了与原生PAGE迁移差异一致的解释,其中KCs的扭结(63°至133°)比线性ED二聚体(127°至156°)更多。经过MD细化后,SARS-CoV s2m KC采用叠加回文碱基对三联体,而SARS-CoV-2和Delta s2m仅形成典型回文碱基对,这解释了PAGE波段强度提示的相对二聚体不稳定性。最终,我们的研究结果支持使用VFold3D/LA-IsRNA管道生成KC和ED,得出与实验数据一致的预测,并为数据驱动的抗病毒疗法设计提供原子基础,以破坏病毒的生命周期或免疫反应。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Structural Prediction of Coronavirus s2m Kissing Complexes and Extended Duplexes

The three-dimensional (3D) atomistic-resolution structure and dynamics of RNA kissing complexes (KCs) and extended duplexes (EDs), homodimers formed through palindromic base pairing, are crucial for understanding viral replication and structure-informed therapeutic design. Polyacrylamide gel electrophoresis (PAGE) evidence suggests KC and ED dimer formation between stem-loop II motif (s2m) elements in SARS-CoV, SARS-CoV-2, and Delta SARS-CoV-2, which may regulate host immune response. However, the absence of 3D structural data on s2m dimers limits structural interpretation needed to explain differences in stability indicated by native PAGE and biophysical implications. In this work, we evaluate the VFold3D/LA-IsRNA pipeline for resolving 3D structures of s2m KCs and EDs by validating its accuracy with blind and referenced predictions against experimental HIV-1 DIS KC and ED structures. Engendering confidence in the approach for blind prediction of KC and ED structures, HIV-1 DIS predictions achieved an average RMSD of 3.28 Å relative to crystal structures, while local interactions, such as palindrome-flanking purine stack orientations in the terminal loops, were in closer agreement with reported solution-phase NMR (RMSD ∼ 2.5 Å), cryo-EM maps, and previous molecular dynamics (MD) simulations. We find that the predicted 3D dimer structures of s2m resulted in kinked or linear shapes of s2m KC complexes that provide an interpretation consistent with native PAGE migration differences, where KCs are more kinked (63° to 133°) than linear ED dimers (127° to 156°). Following MD refinement, the SARS-CoV s2m KC adopts stacking palindromic basepair triplets, whereas SARS-CoV-2 and Delta s2m only form canonical palindrome basepairs, explaining their relative dimer instability suggested by PAGE band intensity. Ultimately, our results support the use of the VFold3D/LA-IsRNA pipeline for KC and ED generation, yielding predictions consistent with experimental data and providing an atomistic foundation for data-driven design of antiviral therapies to disrupt the lifecycle or immune response of viruses.

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来源期刊
CiteScore
3.70
自引率
0.00%
发文量
0
期刊介绍: ACS Physical Chemistry Au is an open access journal which publishes original fundamental and applied research on all aspects of physical chemistry. The journal publishes new and original experimental computational and theoretical research of interest to physical chemists biophysical chemists chemical physicists physicists material scientists and engineers. An essential criterion for acceptance is that the manuscript provides new physical insight or develops new tools and methods of general interest. Some major topical areas include:Molecules Clusters and Aerosols; Biophysics Biomaterials Liquids and Soft Matter; Energy Materials and Catalysis
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