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Cellular uptake and dynamics of unlabeled freestanding silicon nanowires

机译:未标记的独立硅纳米线的细胞吸收和动力学

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The ability to seamlessly merge electronic devices with biological systems at the cellular length scale is an exciting prospect for exploring new fundamental cell biology and in designing next-generation therapeutic devices. Semiconductor nanowires are well suited for achieving this goal because of their intrinsic size and wide range of possible configurations. However, current studies have focused primarily on delivering substrate-bound nanowire devices through mechanical abrasion or electroporation, with these bulkier substrates negating many of the inherent benefits of using nanoscale materials. To improve on this, an important next step is learning how to distribute these devices in a drug-like fashion, where cells can naturally uptake and incorporate these electronic components, allowing for truly noninvasive device integration. We show that silicon nanowires (SiNWs) can potentially be used as such a system, demonstrating that label-free SiNWs can be internalized in multiple cell lines (96% uptake rate), undergoing an active “burst-like” transport process. Our results show that, rather than through exogenous manipulation, SiNWs are internalized primarily through an endogenous phagocytosis pathway, allowing cellular integration of these materials. To study this behavior, we have developed a robust set of methodologies for quantitatively examining high–aspect ratio nanowire-cell interactions in a time-dependent manner on both single-cell and ensemble levels. This approach represents one of the first dynamic studies of semiconductor nanowire internalization and offers valuable insight into designing devices for biomolecule delivery, intracellular sensing, and photoresponsive therapies.
机译:在细胞长度尺度上将电子设备与生物系统无缝融合的能力是探索新的基础细胞生物学和设计下一代治疗设备的令人兴奋的前景。半导体纳米线因其固有的尺寸和广泛的可能配置而非常适合实现这一目标。然而,当前的研究主要集中在通过机械磨蚀或电穿孔来递送结合有基底的纳米线器件,这些较大的基底消除了使用纳米级材料的许多固有优点。为了改善这一点,下一步的重要步骤是学习如何以药物样方式分配这些设备,使细胞可以自然摄取并结合这些电子组件,从而实现真正的无创设备集成。我们表明,硅纳米线(SiNWs)可以潜在地用作这样的系统,这表明无标记的SiNWs可以被内在多个细胞系中(96%的吸收率),并经历了一个活跃的“类爆发”运输过程。我们的结果表明,不是通过外源性操作,而是通过内源性吞噬作用途径使SiNW内在化,从而允许这些物质的细胞整合。为了研究这种行为,我们开发了一套强大的方法,可以在单细胞和集合水平上以时间相关的方式定量检查高长宽比的纳米线与细胞之间的相互作用。这种方法代表了半导体纳米线内部化的第一批动态研究之一,并为设计用于生物分子递送,细胞内传感和光敏疗法的设备提供了宝贵的见识。

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