基于粗粒度环熵模型的小鼠乳腺肿瘤病毒假结展开机制的热力学研究

IF 1.8 4区 生物学 Q3 BIOPHYSICS
Ke Tang, Jorjethe Roca, Rong Chen, Anjum Ansari, Jie Liang
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引用次数: 0

摘要

假结RNA分子的折叠结构决定了其重要的生物学作用。为了了解决定其热力学和折叠/展开机制的基本原理,我们对小鼠乳腺肿瘤病毒假结RNA (VPK)的一种变体进行了研究,VPK是一种广泛研究的RNA假结模型系统。我们的方法基于粗粒度离散状态模型和PK3D(三维空间中的伪结结构预测器)算法,明确构建了RNA环,并结合了它们的构象熵效应。我们的环路熵计算通过准确捕获先前测量的具有不同环路长度的RNA发夹的熔化温度而得到验证。对于构成VPK的每个发夹,我们确定了在低温下比发夹结构更稳定的替代构象,并预测了它们在不同温度下的种群。在这些发夹上进行的热力学实验验证了我们的预测。我们进一步计算了VPK的热容分布,与现有的实验数据非常吻合。值得注意的是,我们的模型提供了假结RNA展开机制的详细信息。通过对VPK碱基配对概率分布的分析,揭示了VPK的展开机制是一种合作展开机制,而不是简单的先一个茎后另一个茎的顺序展开机制。具体来说,我们发现随着温度的升高,两个杆同时“松动”,因此两个杆在展开过程中部分熔化并共存。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Thermodynamics of unfolding mechanisms of mouse mammary tumor virus pseudoknot from a coarse-grained loop-entropy model

Thermodynamics of unfolding mechanisms of mouse mammary tumor virus pseudoknot from a coarse-grained loop-entropy model

Pseudoknotted RNA molecules play important biological roles that depend on their folded structure. To understand the underlying principles that determine their thermodynamics and folding/unfolding mechanisms, we carried out a study on a variant of the mouse mammary tumor virus pseudoknotted RNA (VPK), a widely studied model system for RNA pseudoknots. Our method is based on a coarse-grained discrete-state model and the algorithm of PK3D (pseudoknot structure predictor in three-dimensional space), with RNA loops explicitly constructed and their conformational entropic effects incorporated. Our loop entropy calculations are validated by accurately capturing previously measured melting temperatures of RNA hairpins with varying loop lengths. For each of the hairpins that constitutes the VPK, we identified alternative conformations that are more stable than the hairpin structures at low temperatures and predicted their populations at different temperatures. Our predictions were validated by thermodynamic experiments on these hairpins. We further computed the heat capacity profiles of VPK, which are in excellent agreement with available experimental data. Notably, our model provides detailed information on the unfolding mechanisms of pseudoknotted RNA. Analysis of the distribution of base-pairing probability of VPK reveals a cooperative unfolding mechanism instead of a simple sequential unfolding of first one stem and then the other. Specifically, we find a simultaneous “loosening” of both stems as the temperature is raised, whereby both stems become partially melted and co-exist during the unfolding process.

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来源期刊
Journal of Biological Physics
Journal of Biological Physics 生物-生物物理
CiteScore
3.00
自引率
5.60%
发文量
20
审稿时长
>12 weeks
期刊介绍: Many physicists are turning their attention to domains that were not traditionally part of physics and are applying the sophisticated tools of theoretical, computational and experimental physics to investigate biological processes, systems and materials. The Journal of Biological Physics provides a medium where this growing community of scientists can publish its results and discuss its aims and methods. It welcomes papers which use the tools of physics in an innovative way to study biological problems, as well as research aimed at providing a better understanding of the physical principles underlying biological processes.
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