Angel A J Torriero, Megan J Fitz, Ashwin K V Mruthunjaya
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Calibration-free disposable electrochemical sensor with co-facing electrodes for viscosity monitoring of plasma samples.
Plasma viscosity measurement is crucial in clinical diagnostics, providing insights into blood rheology and health status. Traditional methods, such as capillary and rotational viscometers, require large sample volumes and complex calibration. This study presents a novel disposable electrochemical sensor with co-facing electrodes for viscosity monitoring of plasma samples. The sensor independently determines the diffusion coefficient (D) of the electroactive test molecule ferrocyanide, eliminating the need for calibration curves. This enables the subsequent calculation of the solution's viscosity via the Stokes-Einstein relation. The sensor's performance was validated against a standard quartz-crystal microbalance method, demonstrating high accuracy and reliability. It maintained consistent measurements despite the presence of common electroactive plasma interferents such as ascorbic acid (≤160 μM), dopamine (<9.0 nM), uric acid (<1.0 mM), and urea (<15.6 mM). Although these interferents impacted D at concentrations exceeding twice the maximum levels typically present in plasma, the sensor exhibited robust performance under normal physiological conditions and standard interferent concentrations. The sensor offers rapid response times of less than 20 s, requires only 7 μL of sample, and is cost-effective, making it suitable for point-of-care applications. Bland-Altman plot analysis confirmed its precision, showing a mean difference of 0.00877 and narrow limits of agreement compared to the standard method used.
期刊介绍:
Talanta provides a forum for the publication of original research papers, short communications, and critical reviews in all branches of pure and applied analytical chemistry. Papers are evaluated based on established guidelines, including the fundamental nature of the study, scientific novelty, substantial improvement or advantage over existing technology or methods, and demonstrated analytical applicability. Original research papers on fundamental studies, and on novel sensor and instrumentation developments, are encouraged. Novel or improved applications in areas such as clinical and biological chemistry, environmental analysis, geochemistry, materials science and engineering, and analytical platforms for omics development are welcome.
Analytical performance of methods should be determined, including interference and matrix effects, and methods should be validated by comparison with a standard method, or analysis of a certified reference material. Simple spiking recoveries may not be sufficient. The developed method should especially comprise information on selectivity, sensitivity, detection limits, accuracy, and reliability. However, applying official validation or robustness studies to a routine method or technique does not necessarily constitute novelty. Proper statistical treatment of the data should be provided. Relevant literature should be cited, including related publications by the authors, and authors should discuss how their proposed methodology compares with previously reported methods.