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用于萘普生检测的电化学传感器的进展:机理、性能因素及新出现的挑战。

Advances in electrochemical sensors for naproxen detection: Mechanisms, performance factors, and emerging challenges.

作者信息

Nemati Seyed Saman, Dehghan Gholamreza, Soleymani Jafar, Jouyban Abolghasem

机构信息

Laboratory of Biochemistry and Molecular Biology, Department of Biology, Faculty of Natural Sciences, University of Tabriz, 51666-16471, Tabriz, Iran.

Pharmaceutical Analysis Research Center and Faculty of Pharmacy, Tabriz University of Medical Sciences, Tabriz, Iran.

出版信息

Heliyon. 2024 Dec 4;11(1):e40906. doi: 10.1016/j.heliyon.2024.e40906. eCollection 2025 Jan 15.

Abstract

Naproxen (NAP), a nonsteroidal anti-inflammatory, analgesic, and antipyretic drug, has fewer side effects than similar drugs due to its aryl acetic acid structure. For this reason, it is widely prescribed to manage fever, short-term and long-term pain, and musculoskeletal disorders. However, its use has complications such as changes in kidney function, severe gastrointestinal lesions, and increased bleeding after surgery. In addition, the toxicity of NAP or its metabolites affects the organisms in the ecosystem. Therefore, it is necessary to determine the pharmaceutical quality of produced NAP and measure its amount in living organisms and the environment. Spectroscopy, chromatography, and electrochemical methods have been used to determine NAP. Electrochemical methods have attracted more attention due to their low cost, easy sample preparation, availability, sensitivity, and acceptable results. In addition, using nanomaterials for NAP oxidation results in high surface-to-volume, high available active sites, low cost, and long-term usability with high sensitivity. In this review, electrochemical-based methods for NAP analysis and sensing have been reviewed. Also, the influential factors in NAP identification and evaluation, and their oxidation mechanism have been discussed.

摘要

萘普生(NAP)是一种非甾体抗炎、镇痛和解热药物,由于其芳基乙酸结构,与同类药物相比副作用较少。因此,它被广泛用于治疗发热、短期和长期疼痛以及肌肉骨骼疾病。然而,其使用存在一些并发症,如肾功能改变、严重的胃肠道病变以及术后出血增加。此外,NAP或其代谢产物的毒性会影响生态系统中的生物。因此,有必要确定所生产NAP的药物质量,并测量其在生物体内和环境中的含量。光谱法、色谱法和电化学方法已被用于测定NAP。电化学方法因其成本低、样品制备简单、可用性高、灵敏度高且结果可接受而受到更多关注。此外,使用纳米材料进行NAP氧化可实现高比表面积、高可用活性位点、低成本以及高灵敏度的长期可用性。在本综述中,对基于电化学的NAP分析和传感方法进行了综述。此外,还讨论了NAP识别和评估中的影响因素及其氧化机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5940/11699440/43240a7c264a/ga1.jpg

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