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普鲁士蓝纳米膜敏化等离子体电化学显微镜用于过氧化氢局部递送的空间分辨检测。

Prussian blue nanofilm-sensitized plasmonic electrochemical microscopy for spatially resolved detection of the localized delivery of hydrogen peroxide.

作者信息

Garcia Adaly, Dhoj Christina, Groysman Samuel, Wang Kinsley, Ao Stellina, Anguiano Aimee, Tran Tony, Jiang Dianlu, Wang Yixian

机构信息

Department of Chemistry and Biochemistry, California State University, Los Angeles, Los Angeles, CA, USA.

出版信息

Sens Actuators Rep. 2024 Dec;8. doi: 10.1016/j.snr.2024.100218. Epub 2024 Jun 26.

Abstract

Hydrogen peroxide (HO) sensing has been widely investigated using various electrochemical methods, yet the challenge of finding an imaging technique capable of real-time, spatially resolved detection remains. Addressing this, we introduce a Prussian blue (PB) nanofilm-sensitized plasmonic electrochemical microscopy (PEM) technique that successfully visualizes the localized delivery of HO. The PB nanofilm was carefully characterized, and its sensing capability towards HO was demonstrated in amperometric mode. Employing a precise micromanipulator system, we controlled a micropipette to create a localized concentration gradient on the sensor surface and monitored the gradient through the PB nanofilm-sensitized PEM. The accuracy of the obtained concentration values was further validated by numerical simulations based on finite-element methods. Our technique ensures dependable localized detection, and we anticipate that advancements in film uniformity will further improve the resolution. The potential applications of this technique are broad and significant, including the opportunity to investigate single-cell exocytosis with neurotransmitters like dopamine, thus offering a promising avenue for future biomedical research.

摘要

利用各种电化学方法对过氧化氢(HO)传感进行了广泛研究,但仍面临寻找一种能够进行实时、空间分辨检测的成像技术的挑战。为解决这一问题,我们引入了一种普鲁士蓝(PB)纳米膜敏化等离子体电化学显微镜(PEM)技术,该技术成功实现了HO局部递送的可视化。对PB纳米膜进行了仔细表征,并在安培模式下展示了其对HO的传感能力。我们使用精密微操纵器系统控制微量移液器,在传感器表面创建局部浓度梯度,并通过PB纳米膜敏化PEM监测该梯度。基于有限元方法的数值模拟进一步验证了所获得浓度值的准确性。我们的技术确保了可靠的局部检测,并且我们预计膜均匀性的改进将进一步提高分辨率。该技术的潜在应用广泛且意义重大,包括有机会研究多巴胺等神经递质的单细胞胞吐作用,从而为未来的生物医学研究提供了一条有前景的途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/33c0/12333448/38527d2994fa/nihms-2042142-f0001.jpg

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