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仿生 RNA、DNA 和 RNA-DNA 杂化纳米管的构象动力学和力学性能:原子分子动力学研究。

Conformational dynamics and mechanical properties of biomimetic RNA, DNA, and RNA-DNA hybrid nanotubes: an atomistic molecular dynamics study.

机构信息

Department of Mechanical Engineering, Isfahan University of Technology, Isfahan, 84156-83111, Iran.

出版信息

Phys Chem Chem Phys. 2023 Jun 21;25(24):16527-16549. doi: 10.1039/d3cp01028g.

Abstract

With the nanotechnology boom, artificially designed nucleic acid nanotubes have aroused interest due to their practical applications in nanorobotics, vaccine design, membrane channels, drug delivery, and force sensing. In this paper, computational study was performed to investigate the structural dynamics and mechanical properties of RNA nanotubes (RNTs), DNA nanotubes (DNTs), and RNA-DNA hybrid nanotubes (RDHNTs). So far, the structural and mechanical properties of RDHNTs have not been examined in experiments or theoretical calculations, and there is limited knowledge regarding these properties for RNTs. Here, the simulations were carried out using the equilibrium molecular dynamics (MD) and steered molecular dynamics (SMD) approaches. Using in-house scripting, we modeled hexagonal nanotubes composed of six double-stranded molecules connected by four-way Holliday junctions. Classical MD analyses were performed on the collected trajectory data to investigate structural properties. Analyses of the microscopic structural parameters of RDHNT indicated a structural transition from the A-form to a conformation between the A- and B-forms, which may be attributable to the increased rigidity of RNA scaffolds compared to DNA staples. Comprehensive research on the elastic mechanical properties was also conducted based on spontaneous thermal fluctuations of nanotubes and employing the equipartition theorem. The Young's modulus of RDHNT ( = 165 MPa) and RNT ( = 144 MPa) was found to be almost the same and nearly half of that found for DNT ( = 325 MPa). Furthermore, the results showed that RNT was more resistant to bending, torsional, and volumetric deformations than DNT and RDHNT. We also used non-equilibrium SMD simulations to acquire comprehensive knowledge of the mechanical response of nanotubes to tensile stress.

摘要

随着纳米技术的蓬勃发展,由于在纳米机器人学、疫苗设计、膜通道、药物输送和力感测等方面的实际应用,人工设计的核酸纳米管引起了人们的兴趣。在本文中,进行了计算研究,以研究 RNA 纳米管 (RNTs)、DNA 纳米管 (DNTs) 和 RNA-DNA 杂化纳米管 (RDHNTs) 的结构动力学和力学性能。到目前为止,RDHNTs 的结构和力学性能尚未在实验或理论计算中进行检验,并且对于 RNTs 的这些性质知之甚少。在这里,使用平衡分子动力学 (MD) 和导向分子动力学 (SMD) 方法进行了模拟。使用内部脚本,我们构建了由六个双链分子通过四向霍利迪连接而成的六边形纳米管。对收集的轨迹数据进行经典 MD 分析,以研究结构特性。对 RDHNT 微观结构参数的分析表明,结构从 A 型转变为 A 型和 B 型之间的构象,这可能归因于与 DNA 短钉相比 RNA 支架的刚性增加。还基于纳米管的自发热波动并采用等分定理对弹性力学性能进行了综合研究。发现 RDHNT( = 165 MPa)和 RNT( = 144 MPa)的杨氏模量几乎相同,几乎是 DNT( = 325 MPa)的一半。此外,结果表明,与 DNT 和 RDHNT 相比,RNT 更能抵抗弯曲、扭转和体积变形。我们还使用非平衡 SMD 模拟来获取对纳米管对拉伸应力的机械响应的全面了解。

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