Influence of silicon nanocone on cell membrane self-sealing capabilities for targeted drug delivery—Computer simulation study

IF 3.8 3区 生物学 Q2 BIOCHEMISTRY & MOLECULAR BIOLOGY Archives of biochemistry and biophysics Pub Date : 2023-11-01 DOI:10.1016/j.abb.2023.109802
Przemysław Raczyński , Krzysztof Górny , Piotr Bełdowski , Beata Marciniak , Thorsten Pöschel , Zbigniew Dendzik
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Abstract

Efficient and non-invasive techniques of cargo delivery to biological cells are the focus of biomedical research because of their great potential importance for targeted drug therapy. Therefore, much effort is being made to study the characteristics of using nano-based biocompatible materials as systems that can facilitate this task while ensuring appropriate self-sealing of the cell membrane. Here, we study the effects of indentation and withdrawal of nanocone on phospholipid membrane by applying steered molecular dynamics (SMD) technique. Our results show that the withdrawal process directly depends on the initial position of the nanocone. The average force and work are considerably more significant in case of the withdrawal starting from a larger depth. This result is attributed to stronger hydrophobic interactions between the nanocone and lipid tails of the membrane molecules. Furthermore, when the indenter was started from the lower initial depth, the number of lipids removed from the membrane was several times smaller than the deeper indentation. The choice of the least invasive method for nanostructure-assisted drug delivery is crucial for possible applications in medicine. Therefore, the results presented in this work might be helpful in efficient and safe drug delivery with nanomaterials.

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硅纳米锥对靶向药物递送细胞膜自密封能力的影响——计算机模拟研究。
高效和非侵入性的生物细胞货物递送技术是生物医学研究的焦点,因为它们在靶向药物治疗中具有巨大的潜在重要性。因此,人们正在努力研究使用纳米生物相容性材料作为系统的特性,这些系统可以促进这项任务,同时确保细胞膜的适当自密封。在这里,我们应用操纵分子动力学(SMD)技术研究了纳米锥在磷脂膜上的压痕和退出的影响。我们的结果表明,退出过程直接取决于纳米锥的初始位置。在从较大深度开始撤出的情况下,平均力和功要显著得多。这一结果归因于纳米锥和膜分子的脂质尾部之间更强的疏水相互作用。此外,当压头从较低的初始深度开始时,从膜上去除的脂质数量比更深的压痕少几倍。纳米结构辅助药物递送的微创方法的选择对于在医学中的可能应用至关重要。因此,这项工作的结果可能有助于用纳米材料高效安全地给药。
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来源期刊
Archives of biochemistry and biophysics
Archives of biochemistry and biophysics 生物-生化与分子生物学
CiteScore
7.40
自引率
0.00%
发文量
245
审稿时长
26 days
期刊介绍: Archives of Biochemistry and Biophysics publishes quality original articles and reviews in the developing areas of biochemistry and biophysics. Research Areas Include: • Enzyme and protein structure, function, regulation. Folding, turnover, and post-translational processing • Biological oxidations, free radical reactions, redox signaling, oxygenases, P450 reactions • Signal transduction, receptors, membrane transport, intracellular signals. Cellular and integrated metabolism.
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