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Graphene Quantum Dots as Intracellular Imaging-Based Temperature Sensors

机译:石墨烯量子点作为基于细胞内成像的温度传感器

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摘要

Non-invasive temperature sensing is necessary to analyze biological processes occurring in the human body, including cellular enzyme activity, protein expression, and ion regulation. To probe temperature-sensitive processes at the nanoscale, novel luminescence nanothermometers are developed based on graphene quantum dots (GQDs) synthesized via top-down (RGQDs) and bottom-up (N-GQDs) approaches from reduced graphene oxide and glucosamine precursors, respectively. Because of their small 3–6 nm size, non-invasive optical sensitivity to temperature change, and high biocompatibility, GQDs enable biologically safe sub-cellular resolution sensing. Both GQD types exhibit temperature-sensitive yet photostable fluorescence in the visible and near-infrared for RGQDs, utilized as a sensing mechanism in this work. Distinctive linear and reversible fluorescence quenching by up to 19.3% is observed for the visible and near-infrared GQD emission in aqueous suspension from 25 °C to 49 °C. A more pronounced trend is observed with GQD nanothermometers internalized into the cytoplasm of HeLa cells as they are tested in vitro from 25 °C to 45 °C with over 40% quenching response. Our findings suggest that the temperature-dependent fluorescence quenching of bottom-up and top-down-synthesized GQDs studied in this work can serve as non-invasive reversible/photostable deterministic mechanisms for temperature sensing in microscopic sub-cellular biological environments.
机译:无侵入温度感测是分析人体中发生的生物过程,包括细胞酶活性,蛋白质表达和离子调控。为了探测纳米级的温度敏感过程,基于通过自上向下(RGQDS)和来自氧化石墨烯和葡萄糖胺前体的自下而上(N-GQDS)接近的石墨烯量子点(GQDS)开发新的发光纳米热量。 。由于其小的3-6纳米尺寸,对温度变化的无侵入式光学敏感性和高生物相容性,GQD能够实现生物安全的子蜂窝分辨率感测。 GQD型在该工作中的可见和近红外,GQD型均在可见和近红外线上表现出温度敏感的且光稳定的荧光,用作该工作中的传感机制。在25℃至49℃的水悬浮液中观察到明显的线性和可逆荧光猝灭至高达19.3%的可见和近红外GQD发射。用内化的GQD纳米温度计在Hela细胞的细胞质内化为一个更明显的趋势,因为它们在25℃至45℃的体外测试,具有超过40%的淬火反应。我们的研究结果表明,在该工作中研究的自下而上和自上而下合成的GQD的温度依赖性荧光猝灭可用作非侵入性的可逆/光稳定的确定性机制,用于微观亚蜂窝生物环境中的温度感测。

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