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In Vivo Monitoring of H2O2 with Polydopamine and Prussian Blue-coated Microelectrode

机译:聚多巴胺和普鲁士蓝涂层微电极对H2O2的体内监测

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In vivo monitoring of hydrogen peroxide (H2O2) in the brain is of importance for understanding the function of both reactive oxygen species (ROS) and signal transmission. Producing a robust microelectrode for in vivo measurement of H2O2 is challenging due to the complex brain environment and the instability of electrocatalysts employed for the reduction of H2O2. Here, we develop a new kind of microelectrode for in vivo monitoring of H2O2, which is prepared by, first, electrodeposition of Prussian blue (PB) onto carbon nanotube (CNT) assembled carbon fiber microelectrodes (CFEs) and then overcoating of the CFEs with a thin membrane of polydopamine,(PDA) through self polymerization. Scanning electron microscopic and X-ray proton spectroscopic results confirm the formation of PDA/PB/CNT/CFEs. The PDA membrane enables PB-based electrodes to show high stability in both in vitro and in vivo studies and to stably catalyze the electrochemical reduction of H2O2. The microelectrode is selective for in vivo measurements of H2O2, interference-free from O-2 and other electroactive species coexisting in the brain. These properties, along with good linearity, high biocompatibility, and stability toward H2O2, substantially enable the microelectrode to track H2O2 changes in vivo during electrical stimulation and microinfusion of H2O2 and drug, which demonstrates that the microelectrode could be well suited for in vivo monitoring of dynamic Changes of H2O2 in rat brain.
机译:体内监测大脑中的过氧化氢(H2O2)对于了解活性氧(ROS)和信号传输的功能非常重要。由于复杂的大脑环境和用于还原H2O2的电催化剂的不稳定性,生产用于体内H2O2测量的坚固的微电极具有挑战性。在这里,我们开发了一种用于体内监测H2O2的新型微电极,该电极首先通过将普鲁士蓝(PB)电沉积到碳纳米管(CNT)组装的碳纤维微电极(CFE)上,然后用聚多巴胺(PDA)通过自聚合形成的薄膜扫描电子显微镜和X射线质子光谱结果证实了PDA / PB / CNT / CFE的形成。 PDA膜使基于PB的电极在体外和体内研究中均显示出高稳定性,并稳定催化H2O2的电化学还原。该微电极对体内H2O2的测量具有选择性,不受O-2和大脑中共存的其他电活性物质的干扰。这些特性以及良好的线性,高生物相容性和对H2O2的稳定性,使微电极能够在电刺激以及H2O2和药物的微输注过程中追踪H2O2在体内的变化,这表明该微电极非常适合于体内对H2O2的监测。大鼠脑中H2O2的动态变化。

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