首页> 外文期刊>Journal of Materials Chemistry, B. materials for biology and medicine >Hydrothermally functionalized biocompatible nitrogen doped graphene nanosheet based biomimetic platforms for nitric oxide detection
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Hydrothermally functionalized biocompatible nitrogen doped graphene nanosheet based biomimetic platforms for nitric oxide detection

机译:基于水热功能化生物相容性氮掺杂石墨烯纳米片的一氧化氮检测仿生平台

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Hydrothermal synthesis of nanocomposites is of significant importance, as it affords facile, biocompatible, nontoxic, and economic fabrication. Herein, we report a hitherto unexplored cytocompatible and reusable biomimetic electrochemical sensor based on pyridyl porphyrin functionalized nitrogen doped graphene nanosheets. The porphyrin functionalized nitrogen doped graphene nanosheets (PFNGS) were prepared by a low temperature hydrothermal method via non-covalent strategies with a minimal impact on their physicochemical properties. Owing to their exceptional attributes like operational ease, low cost, portability, and sensitivity, the as-synthesized PFNGS, formed by pi-pi interactions, were employed for sensing nitric oxide (NO), which is a key regulator of diverse biological processes. Compared to porphyrin and nitrogen doped graphene nanosheets alone, PFNGS exhibited exceptional sensitivity (3.6191 mu A mu M-1) and remarkable electrocatalytic properties (0.61 V). This clearly outperforms the previously reported modified electrode materials for the electrochemical detection of NO. Cyclic voltammetry (CV) data also suggested that the PFNGS modified electrode possessed an increased reactive surface area, which results in an increase in the number of reactive sites and low charge transfer resistance. These results also demonstrated that the PFNGS modified electrode showed high stability and reproducibility, the limit of detection (LOD) (S/N = 3) of which was estimated to be 1 nM. Our PFNGS were found to be highly biocompatible and could also detect NO released from macrophage cells. This blend of biocompatibility, electrode stability, electrocatalytic activity along with enhanced sensitivity and selectivity makes PFNGS a powerful and reliable nanomaterial for various biomedical applications in complex biological systems.
机译:水热合成纳米复合材料非常重要,因为它提供了简便,生物相容,无毒且经济的制造方法。在这里,我们报告了迄今尚未开发的基于吡啶卟啉功能化的氮掺杂石墨烯纳米片的细胞相容性和可重复使用的仿生电化学传感器。通过低温水热法通过非共价策略制备了卟啉官能化的氮掺杂石墨烯纳米片(PFNGS),对其物理化学性质的影响最小。由于它们具有操作简便,成本低,便携性和灵敏度高等特殊属性,因此通过pi-pi相互作用形成的合成PFNGS被用于感测一氧化氮(NO),NO是各种生物过程的关键调节剂。与单独的卟啉和氮掺杂的石墨烯纳米片相比,PFNGS表现出出色的灵敏度(3.6191μAμM-1)和出色的电催化性能(0.61 V)。这明显优于先前报道的用于电化学检测NO的修饰电极材料。循环伏安法(CV)数据也表明PFNGS修饰的电极具有增加的反应表面积,这导致反应位点数量增加和电荷转移电阻低。这些结果还表明,PFNGS修饰电极显示出高稳定性和可重复性,其检测极限(LOD)(S / N = 3)估计为1 nM。我们的PFNGS被发现具有高度的生物相容性,还可以检测巨噬细胞释放的NO。生物相容性,电极稳定性,电催化活性以及增强的灵敏度和选择性的融合使PFNGS成为功能强大且可靠的纳米材料,适用于复杂生物系统中的各种生物医学应用。

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