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Graphene-based wireless bacteria detection on tooth enamel

机译:基于石墨烯的牙釉质无线细菌检测

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Direct interfacing of nanosensors onto biomaterials could impact health quality monitoring and adaptive threat detection. Graphene is capable of highly sensitive analyte detection due to its nanoscale nature. Here we show that graphene can be printed onto water-soluble silk. This in turn permits intimate biotransfer of graphene nanosensors onto biomaterials, including tooth enamel. The result is a fully biointerfaced sensing platform, which can be tuned to detect target analytes. For example, via self-assembly of antimicrobial peptides onto graphene, we show bioselective detection of bacteria at single-cell levels. Incorporation of a resonant coil eliminates the need for onboard power and external connections. Combining these elements yields two-tiered interfacing of peptide–graphene nanosensors with biomaterials. In particular, we demonstrate integration onto a tooth for remote monitoring of respiration and bacteria detection in saliva. Overall, this strategy of interfacing graphene nanosensors with biomaterials represents a versatile approach for ubiquitous detection of biochemical targets.. ? 2012 Nature Publishing Group, a division of Macmillan Publishers Limited. All Rights Reserved.
机译:将纳米传感器直接连接到生物材料上可能会影响健康质量监控和自适应威胁检测。石墨烯具有纳米级的性质,因此能够进行高灵敏度的分析物检测。在这里,我们表明可以将石墨烯印刷到水溶性丝绸上。反过来,这允许将石墨烯纳米传感器紧密地生物转移到包括牙釉质的生物材料上。结果是一个完全生物接口的传感平台,可以对其进行调整以检测目标分析物。例如,通过将抗菌肽自组装到石墨烯上,我们显示了在单细胞水平上对细菌的生物选择性检测。内置谐振线圈消除了对车载电源和外部连接的需求。将这些元素结合在一起,就可以将肽-石墨烯纳米传感器与生物材料进行两层连接。特别是,我们展示了整合到牙齿上以远程监测唾液中的呼吸和细菌的能力。总体而言,这种将石墨烯纳米传感器与生物材料连接的策略代表了一种普遍存在的生化靶标检测方法。 2012自然出版集团,麦克米伦出版社有限公司的一个部门。版权所有。

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