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Interaction and Biocompatibility Analysis of Monolayer Quasi-Hexagonal-Phase Fullerene with DNA: Molecular Dynamics
Dan-Ni Gu1, Zhi-Gang Shao1,2
1Guangdong Basic Research Center of Excellence for Structure and Fundamental Interactions of Matter, Guangdong Provincial Key Laboratory of Quantum Engineering and Quantum Materials, School of Physics, South China Normal University, Guangzhou 510006, China.
None:
The rapid advancement of nanotechnology in biomedicine has spurred widespread interest in the interactions between 2D carbon nanomaterials and biological macromolecules. Monolayer quasi-hexagonal-phase fullerene (qHP-C60), which shares structural and functional similarities with C60 fullerene derivatives, is regarded as a promising yet underexplored platform. In this study, all-atom molecular dynamics simulations were employed to systematically investigate the interactions of monolayer qHP-C60 with both single-stranded DNA (ssDNA) and double-stranded DNA (dsDNA). The results revealed two distinct binding modes. ssDNA underwent spontaneous and strong adsorption onto the qHP-C60 surface, adopting a flattened conformation with a highly favorable binding free energy, which led to significant structural disruption. In contrast, dsDNA interacted only weakly via terminal base pairs, maintaining a perpendicular orientation that preserved the integrity of its double-helical structure. Energy decomposition analysis further identified van der Waals interactions, facilitated by π-π stacking, as the primary driving force for adsorption in both systems. This study not only enhances the fundamental understanding of nanomaterial-DNA interactions but also provides theoretical guidance for designing safer two-dimensional fullerene-based materials for biomedical applications.
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