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通过时空分辨的磁性纳米颗粒回收来理解细胞内纳米颗粒的运输命运。

Understanding intracellular nanoparticle trafficking fates through spatiotemporally resolved magnetic nanoparticle recovery.

作者信息

Sheridan Emily, Vercellino Silvia, Cursi Lorenzo, Adumeau Laurent, Behan James A, Dawson Kenneth A

机构信息

Centre for BioNano Interactions, School of Chemistry, University College Dublin Belfield Dublin 4 Ireland

UCD Conway Institute of Biomolecular and Biomedical Research, School of Biomolecular and Biomedical Science, University College Dublin Belfield Dublin 4 Ireland.

出版信息

Nanoscale Adv. 2021 Mar 3;3(9):2397-2410. doi: 10.1039/d0na01035a. eCollection 2021 May 4.

Abstract

The field of nanomedicine has the potential to be a game-changer in global health, with possible applications in prevention, diagnostics, and therapeutics. However, despite extensive research focus and funding, the forecasted explosion of novel nanomedicines is yet to materialize. We believe that clinical translation is ultimately hampered by a lack of understanding of how nanoparticles really interact with biological systems. When placed in a biological environment, nanoparticles adsorb a biomolecular layer that defines their biological identity. The challenge for bionanoscience is therefore to understand the evolution of the interactions of the nanoparticle-biomolecules complex as the nanoparticle is trafficked through the intracellular environment. However, to progress on this route, scientists face major challenges associated with isolation of specific intracellular compartments for analysis, complicated by the diversity of trafficking events happening simultaneously and the lack of synchronization between individual events. In this perspective article, we reflect on how magnetic nanoparticles can help to tackle some of these challenges as part of an overall workflow and act as a useful platform to investigate the bionano interactions within the cell that contribute to this nanoscale decision making. We discuss both established and emerging techniques for the magnetic extraction of nanoparticles and how they can potentially be used as tools to study the intracellular journey of nanomaterials inside the cell, and their potential to probe nanoscale decision-making events. We outline the inherent limitations of these techniques when investigating particular bio-nano interactions along with proposed strategies to improve both specificity and resolution. We conclude by describing how the integration of magnetic nanoparticle recovery with sophisticated analysis at the single-particle level could be applied to resolve key questions for this field in the future.

摘要

纳米医学领域有潜力成为全球健康领域的变革者,在预防、诊断和治疗方面都有潜在应用。然而,尽管有广泛的研究关注和资金投入,新型纳米药物预计的爆发尚未实现。我们认为,临床转化最终受到对纳米颗粒如何真正与生物系统相互作用缺乏理解的阻碍。当置于生物环境中时,纳米颗粒会吸附一层生物分子层,这决定了它们的生物特性。因此,生物纳米科学面临的挑战是了解纳米颗粒 - 生物分子复合物在细胞内环境中运输时相互作用的演变。然而,要在这条道路上取得进展,科学家们面临着与分离特定细胞内区室进行分析相关的重大挑战,同时发生的运输事件的多样性以及各个事件之间缺乏同步性使这一情况更加复杂。在这篇观点文章中,我们思考磁性纳米颗粒如何作为整体工作流程的一部分帮助应对其中一些挑战,并作为一个有用的平台来研究细胞内有助于这种纳米级决策的生物纳米相互作用。我们讨论了用于磁性提取纳米颗粒的既定技术和新兴技术,以及它们如何有可能被用作研究纳米材料在细胞内的细胞内旅程的工具,以及它们探测纳米级决策事件的潜力。我们概述了在研究特定生物 - 纳米相互作用时这些技术的固有局限性,以及提高特异性和分辨率的拟议策略。我们通过描述磁性纳米颗粒回收与单颗粒水平的复杂分析相结合如何应用于解决该领域未来的关键问题来得出结论。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d454/9419038/2b30866989e1/d0na01035a-f1.jpg

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