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Combinatorial approaches to evaluate nanodiamond uptake and induced cellular fate

机译:组合方法评估纳米金刚石的摄取和诱导的细胞命运

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摘要

Nanodiamonds (NDs) are an emerging class of engineered nanomaterials that hold great promise for the next generation of bionanotechnological products to be used for drug and gene delivery, or for bio-imaging and biosensing. Previous studies have shown that upon their cellular uptake, NDs exhibit high biocompatibility in various in vitro and in vivo set-ups. Herein we hypothesized that the increased NDs biocompatibility is a result of minimum membrane perturbations and their reduced ability to induce disruption or damage during cellular translocation. Using multi-scale combinatorial approaches that simulate ND-membrane interactions, we correlated NDs real-time cellular uptake and kinetics with the ND-induced membrane fluctuations to derive energy requirements for the uptake to occur. Our discrete and real-time analyses showed that the majority of NDs internalization occurs within 2 h of cellular exposure, however, with no effects on cellular viability, proliferation or cellular behavior. Furthermore, our simulation analyses using coarse-grained models identified key changes in the energy profile, membrane deformation and recovery time, all functions of the average ND or ND-based agglomerate size. Understanding the mechanisms responsible for ND-cell membrane interactions could possibly advance their implementation in various biomedical applications.
机译:纳米金刚石(NDs)是一类新兴的工程纳米材料,它们对用于药物和基因递送或生物成像和生物传感的下一代生物纳米技术产品具有广阔的前景。先前的研究表明,ND在吸收细胞后,在各种体外和体内实验中均显示出高生物相容性。本文中我们假设增加的NDs生物相容性是最小的膜扰动及其在细胞移位过程中诱导破坏或破坏的能力降低的结果。使用模拟ND膜相互作用的多尺度组合方法,我们将NDs的实时细胞摄取和动力学与ND诱导的膜波动相关联,以得出发生摄取所需的能量。我们的离散和实时分析表明,大多数NDs内在化都发生在细胞暴露后2小时之内,但是对细胞活力,增殖或细胞行为没有影响。此外,我们使用粗粒度模型进行的仿真分析确定了能量分布,膜变形和恢复时间,平均ND或基于ND的团聚体尺寸的所有功能的关键变化。了解负责ND细胞膜相互作用的机制可能会促进其在各种生物医学应用中的实施。

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