Cu-Co Bimetallic Catalyst-based Electrochemical Sensing Platform for Determination of Bisoprolol in Clinical Samples
- Authors: Salemi M.R.1, Fathi S.2, Chekin F.2, Norouzi B.3
-
Affiliations:
- Department of Chemistry, Islamic Azad University Ayatollah Amoli
- Department of Chemistry,, Islamic Azad University Ayatollah Amoli
- Department of Chemistry,, Qaemshahr Branch, Islamic Azad University,
- Issue: Vol 27, No 12 (2024)
- Pages: 1830-1839
- Section: Chemistry
- URL: https://vietnamjournal.ru/1386-2073/article/view/644001
- DOI: https://doi.org/10.2174/0113862073270729231106090749
- ID: 644001
Cite item
Full Text
Abstract
Background::Bisoprolol (BIS) is a selective beta-blocker. It has been successfully used to treat hypertension and angina pectoris. An overdose of BIS can lead to serious complications. An overdose is a medical emergency that requires immediate medical attention to overcome the adverse effects of the overdose. Hence, sensitive, reliable, and cost-effective methods are required for the determination of BIS.
Methods::In this work, a new electrochemical sensing platform based on a bimetallic catalyst was developed for the determination of BIS. The Cu-Co nanocatalyst was easily synthesized by galvanic displacement onto a carbon paste electrode (CPE). Then, field emission scanning electron microscopy (FESEM), energy dispersive spectroscopy (EDS), and cyclic voltammetry (CV) were utilized for the characterization of the Cu-Co catalyst.
Results::The galvanic displacement of Cu metal significantly affected the electro-catalytic behavior of the Cu-Co catalyst and the Cu-Co/CPE electrode displayed a very sensitive and accurate response towards BIS. Under optimized conditions, the response was linear in the 3 to 120 µM concentration range, sensitivity of 631.1 µA mM-1 and a detection limit of as low as 0.4 µM using cyclic voltammetry. The simple proposed method was also successfully employed in the analysis of BIS in biological and pharmaceutical samples. The advantages of Cu-Co/CPE are its fast and simple manufacturing and the possibility of a repeated surface regeneration of the sensing platform, as well as its application for the detection of BIS in tablets and biological samples, making Cu-Co significant promise for use in clinical diagnostics. Besides, the synthesized catalysts showed excellent reusability and stability.
Conclusion::The presence of Cu metal due to galvanic displacement increased the sensitivity. These findings suggest that the new nanocatalyst has potential applications in sensors and electronics.
About the authors
Mohammad Reza Salemi
Department of Chemistry, Islamic Azad University Ayatollah Amoli
Email: info@benthamscience.net
Shahla Fathi
Department of Chemistry,, Islamic Azad University Ayatollah Amoli
Email: info@benthamscience.net
Fereshteh Chekin
Department of Chemistry,, Islamic Azad University Ayatollah Amoli
Author for correspondence.
Email: info@benthamscience.net
Banafsheh Norouzi
Department of Chemistry,, Qaemshahr Branch, Islamic Azad University,
Email: info@benthamscience.net
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