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圆柱形受限条件下双链DNA的直径依赖性熔化与软化

Diameter Dependent Melting and Softening of dsDNA Under Cylindrical Confinement.

作者信息

Chhetri Khadka B, Dasgupta Chandan, Maiti Prabal K

机构信息

Center for Condensed Matter Theory, Department of Physics, Indian Institute of Science, Bangalore, India.

Department of Physics, Prithvinarayan Campus, Tribhuvan University, Pokhara, Nepal.

出版信息

Front Chem. 2022 May 2;10:879746. doi: 10.3389/fchem.2022.879746. eCollection 2022.

Abstract

Carbon nanotubes (CNTs) are considered promising candidates for biomolecular confinement, including DNA encapsulation for gene delivery. Threshold values of diameters have been reported for double-stranded DNA (dsDNA) encapsulation inside CNTs. We have performed all-atom molecular dynamics (MD) simulations of dsDNAs confined inside single-walled CNTs (SWCNTs) at the physiologically relevant temperature of 300 K. We found that the dsDNA can be confined without being denatured only when the diameter of the SWCNT exceeds a threshold value. Below this threshold diameter, the dsDNA gets denatured and melts even at the temperature of 300 K. Our simulations using SWCNTs with chirality indices (20,20) to (30,30) at 300 K found the critical diameter to be 3.25 nm (corresponding to (24,24) chirality). Analyses of the hydrogen bonds (H-bonds), Van der Walls (VdW) energy, and other inter-base interactions show drastic reduction in the number of H-bonds, VdW energy, and electrostatic energies between the bases of dsDNA when it is confined in narrower SWCNTs (up to diameter of 3.12 nm). On the other hand, the higher interaction energy between the dsDNA and the SWCNT surface in narrower SWCNTs assists in the melting of the dsDNA. Electrostatic mapping and hydration status analyses show that the dsDNA is not adequately hydrated and the counter ion distribution is not uniform below the critical diameter of the SWCNT. As properly hydrated counter ions provide stability to the dsDNA, we infer that the inappropriate hydration of counter ions and their non-uniform distribution around the dsDNA cause the melting of the dsDNA inside SWCNTs of diameter below the critical value of 3.25 nm. For confined dsDNAs that do not get denatured, we computed their elastic properties. The persistence length of dsDNA was found to increase by a factor of about two and the torsional stiffness by a factor of 1.5 for confinement inside SWCNTs of diameters up to 3.79 nm, the stretch modulus also following nearly the same trend. Interestingly, for higher diameters of SWCNT, 3.79 nm and above, the dsDNA becomes more flexible, demonstrating that the mechanical properties of the dsDNA under cylindrical confinement depend non-monotonically on the confinement diameter.

摘要

碳纳米管(CNTs)被认为是生物分子受限的有前途的候选者,包括用于基因递送的DNA封装。已经报道了碳纳米管内双链DNA(dsDNA)封装的直径阈值。我们在300K的生理相关温度下对单壁碳纳米管(SWCNTs)内受限的dsDNA进行了全原子分子动力学(MD)模拟。我们发现,只有当SWCNT的直径超过阈值时,dsDNA才能被限制而不被变性。低于该阈值直径,即使在300K的温度下,dsDNA也会变性并熔化。我们在300K下使用手性指数为(20,20)至(30,30)的SWCNT进行的模拟发现临界直径为3.25nm(对应于(24,24)手性)。对氢键(H键)、范德华(VdW)能量和其他碱基间相互作用的分析表明,当dsDNA被限制在较窄的SWCNT(直径达3.12nm)中时,dsDNA碱基之间的H键数量、VdW能量和静电能急剧减少。另一方面,较窄SWCNT中dsDNA与SWCNT表面之间较高的相互作用能有助于dsDNA的熔化。静电映射和水合状态分析表明,在SWCNT的临界直径以下,dsDNA没有得到充分水合,反离子分布不均匀。由于适当水合的反离子为dsDNA提供稳定性,我们推断反离子的不适当水合及其在dsDNA周围的不均匀分布导致直径低于临界值3.25nm的SWCNT内dsDNA的熔化。对于未变性的受限dsDNA,我们计算了它们的弹性性质。发现对于直径达3.79nm的SWCNT内的受限dsDNA,其持续长度增加约两倍,扭转刚度增加1.5倍,拉伸模量也遵循几乎相同的趋势。有趣的是,对于直径大于3.79nm的更大直径的SWCNT,dsDNA变得更具柔韧性,这表明圆柱形受限下dsDNA的机械性能非单调地取决于受限直径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4b58/9108266/445b44e07278/fchem-10-879746-g001.jpg

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