氮化硼纳米管中的空位缺陷和纳米泵浦对药物传输效率的作用

Nano Select Pub Date : 2024-05-02 DOI:10.1002/nano.202300175
H. Jami, Roozbeh Sabetvand, Gurvinder Singh
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引用次数: 0

摘要

氮化硼纳米管(BNTs)具有显著的机械和电气特性,是一种很有前途的药物输送纳米材料。在电场或机械力等外力作用下,氮化硼纳米管利用纳米泵浦技术将药物分子输送到目标部位。尽管在研究 BNNT 与生物分子相互作用方面做了大量工作,但人们对 BNNT 的原子尺度内在特性对药物输送效率和输送时间的影响还不甚了解。为了研究这个问题,我们利用分子动力学模拟(MD)建立了两个模拟模型:一个是有缺陷的 BNNT,另一个是无缺陷(原始)的 BNNT。在这里,富勒烯分子(C20)被引入 BNNT 并向靶细胞运输。我们的研究结果表明,空位缺陷会严重影响纳米泵送过程的效果。在原始 BNNT 中,药物分子主要通过平移运动移动。然而,空位缺陷的存在及其在 BNNT 中的浓度会影响药物分子的平移运动。我们的研究表明,明智地选择铜尖端的振荡频率和振幅对于实现高效的药物传输非常重要。这项工作为利用纳米泵浦机制研究结构缺陷和振荡对 BNNT 中 C20 分子药物传输效率的作用提供了新的见解。
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Role of vacancy defects and nanopumping on drug transport efficiency in boron nitride nanotubes
Boron nitride nanotubes (BNNTs) are promising nanomaterials for drug delivery due to their remarkable mechanical and electrical properties. BNNTs use nanopumping technique to transport drug molecules to target sites when subjected to an external force, such as an electric field or mechanical forces. Despite numerous efforts to investigate BNNTs/biomolecules interactions, the impact of atomic‐scale intrinsic characteristics of BNNT on drug delivery efficiency and delivery time is not well understood. To investigate this, we use molecular dynamics simulations (MD) to develop two simulation models: one with defective BNNT and another with a non‐defective (pristine) BNNT. Here, the fullerene molecule (C20) is introduced into BNNT and transported towards target cells. Our results show that vacancy defects can significantly impact the effectiveness of the nanopumping process. In pristine BNNTs, drug molecules move primarily by translation motion. However, the presence of vacancy defects and their concentration in BNNTs can affect the translation motion of drug molecules. We show that the judicious selection of oscillation frequency and amplitude of Cu tips is important to achieve efficient drug transport. This work provides new insights into the role of structural defects and oscillation on the drug transport efficiency of C20 molecules in BNNT using the nanopumping mechanism.
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