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Laser-Induced Graphite Multi-Ion Sensor for Real-Time Assessment of Fucoxanthin Therapy in Alcoholic Liver Disease

化学 氧化应激 细胞外 细胞内 平衡 发病机制 氧化磷酸化 硫氧还蛋白 细胞 药理学 生物化学 生物物理学 离子通道 岩藻黄质 石墨 新陈代谢 细胞生物学 电化学气体传感器 肝损伤 肝细胞 肝病 离子 信号转导 酒精性肝病 纳米技术 细胞外液
作者
Xu Zhong,Xi Liu,Bing Yin,Shitao Nie,Jie Song,Mingqian Tan,Tianxi Yang,Yun Ma,Wentao Su
出处
期刊:Analytical Chemistry [American Chemical Society]
卷期号:98 (9): 6727-6740
标识
DOI:10.1021/acs.analchem.5c06878
摘要

Oxidative stress has been recognized as a pivotal mechanism for disrupting cellular ion homeostasis and contributes to the pathogenesis of associated conditions, including alcoholic liver disease (ALD). The real-time and accurate detection of cellular ion concentrations is crucial for understanding oxidative stress-related disease pathogenesis and developing effective interventions. Herein, a multichannel electrochemical sensor was developed to simultaneously detect dynamic changes in extracellular H+, Ca2+, K+, and Na+ in HepG2 cells within an ALD cell model. This sensor was fabricated based on patterned laser-induced graphite electrodes modified with H+-sensitive polyaniline and Ca2+/K+/Na+-selective membranes. Evaluation in buffered solution systems confirmed that the sensor possessed high sensitivity, excellent anti-interference capability, along with good selectivity, reversibility, and stability in detecting all four target ions. When used to monitor extracellular ion dynamics during ethanol-induced oxidative stress and therapeutic processes in HepG2 cells, it revealed the relationship between ethanol-induced extracellular acidification, K+ efflux, intracellular Ca2+ overload, and oxidative stress. It also demonstrated that ion disorders were significantly alleviated by nutritional intervention with fucoxanthin and its targeted derivatives. This sensor provides an efficient tool for studying ion homeostasis imbalance mechanisms in oxidative stress-related disease and holds potential applications in cell metabolism monitoring, as well as the fabrication and application of real-time multi-ion sensors.
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