Innovative AC phase shift technique for rapid and precise blood clotting time measurement
R. Zlatev
, N. Antonova
, M. Stoytcheva
, R.Ramos
Abstract: Objective: This study aims to introduce and validate an innovative AC phase shift technique for rapid and precise measurement of blood clotting time, offering a potential improvement over traditional coagulation testing methods. Materials and Methods: Blood samples were mixed with a 2% CaCl2 solution to induce coagulation. Using a virtual measurement setup and a modified viscometer, AC current phase shift was recorded across a frequency range of 1 Hz to 10 kHz. The phase shift data were compared with shear stress measurements to evaluate performance. Results: The AC phase shift method effectively tracked coagulation with high precision. Significant phase shifts were observed at 1000 Hz, where the method distinguished the coagulation time as 7 minutes and 15 seconds. In comparison, shear stress measurements showed less clear delineation of coagulation onset. Discussion: The AC phase shift method demonstrated superior sensitivity and accuracy, revealing distinct phase shift changes corresponding to the coagulation process. This technique provided a clearer and more consistent measurement compared to traditional rheological methods, which showed variability in viscosity changes. Conclusion: The AC phase shift technique offers a promising alternative for blood coagulation assessment, with high precision and real-time monitoring capabilities. This approach could enhance diagnostic accuracy and efficiency in clinical settings.
Series on Biomechanics, Vol.38, No.4(2024),41-47
DOI: 10.7546/SB.06.04.2024
Keywords: AC phase shift; blood coagulation; shear stress measurements
References: (click to open/close) | [1] Raber, M. N., 1990. Chapter 157. Coagulation Tests. In: Walker, H. K., Hall, W. D., Hurst, J. W. (Eds.), Clinical methods: The history, physical, and laboratory examinations. Butterworths, Boston. [2] Ur, A., 1970. Changes in the electrical impedance of blood during coagulation. Nature 226, 269-270. [3] Ur, A., 1970. Determination of blood coagulation using impedance measurements. Biomedical Engineering 5, 342-345. [4] Ur, A., 1971. Detection of clot retraction through changes of the electrical impedance of blood during coagulation. American Journal of Clinical Pathology 56, 713-717. [5] Ur, A., 1977. Analysis and interpretation of the impedance blood coagulation curve. American Journal of Clinical Pathology 67, 470-476. [6] Theiss, W., Ulmer, A., 1978. Comparative and direct measurement of the electrical impedance in blood coagulation. Thrombosis Research 13, 751-765. [7] Varma, R., Koruprolu, A., Hall, D. A., 2023. Impedance-based detection of blood clotting time. IEEE Biomedical Circuits and Systems Conference (BioCAS), Toronto, ON, Canada, pp. 1-5 doi: 10.1109/BioCAS58349.2023.10389011. [8] D’Ambrogio, G., Zahhaf, O., Le, M.-Q., Gouriou, Y., Josset, L., Pialoux, V., Lermusiaux, P., Capsal, J.-F., Cottinet, P.-J., Schiava, N. D., 2022. Investigation of blood coagulation using impedance spectroscopy: toward innovative biomarkers to assess fibrinogenesis and clot retraction. Biomedicines 10, 1833. [9] Camry Instruments Application Note: Basics of Electrochemical Impedance Spectroscopy. Available at: https://www.gamry.com/application-notes/EIS/basics-of-electrochemical-impedance-spectroscopy/. [Accessed: Aug. 21, 2024]. [10] Vivier, V., Gao, M., Orazem M. E., 2014. Electrochemical impedance spectroscopy study of corrosion inhibition by benzimidazole and its derivatives. Electrochimica Acta 115, 587-596. [11] Graham, D. C., 1949. Measurement of the capacity of the electrical double layer at a mercury electrode. J. Am. Chem. Soc. 71, 2975-8. [12] Electronics Tutorials. AC capacitance and capacitive reactance. Available at : https://www.electronics-tutorials.ws/accircuits/ac-capacitance.html. [Accessed: Aug. 21, 2024].
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| Date published: 2024-12-11
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