Faculty of Physics, Warsaw University of Technology, Warsaw, Poland.
Faculty of Mechatronics, Warsaw University of Technology, Warsaw, Poland.
Sci Rep. 2023 Mar 22;13(1):4716. doi: 10.1038/s41598-023-29904-2.
A satisfactory model of the biopotentials propagating through the human body is essential for medical diagnostics, particularly for cardiovascular diseases. In our study, we develop the theory, that the propagation of biopotential of cardiac origin (ECG signal) may be treated as the propagation of low-frequency endogenous electromagnetic wave through the human body. We show that within this approach, the velocity of the ECG signal can be theoretically estimated, like for any other wave and physical medium, from the refraction index of the tissue in an appropriate frequency range. We confirm the theoretical predictions by the comparison with a direct measurement of the ECG signal propagation velocity and obtain mean velocity as low as v=1500 m/s. The results shed new light on our understanding of biopotential propagation through living tissue. This propagation depends on the frequency band of the signal and the transmittance of the tissue. This finding may improve the interpretation of the electric measurements, such as ECG and EEG when the frequency dependence of conductance and the phase shift introduced by the tissue is considered. We have shown, that the ECG propagation modifies the amplitude and phase of signal to a considerable extent. It may also improve the convergence of inverse problem in electrocardiographic imaging.
一个令人满意的人体传播生物电势模型对于医学诊断,特别是心血管疾病的诊断是至关重要的。在我们的研究中,我们提出了这样一种理论,即源自心脏的生物电势(心电图信号)的传播可以被视为低频内源性电磁波通过人体的传播。我们表明,在这种方法中,类似于任何其他波和物理介质,心电图信号的速度可以从适当频率范围内的组织的折射指数理论上进行估计。我们通过与直接测量心电图信号传播速度的比较来验证理论预测,并获得了低至 v=1500 m/s 的平均速度。该结果为我们理解生物电势在活体组织中的传播提供了新的认识。这种传播取决于信号的频带和组织的透过率。当考虑到组织引入的电导的频率依赖性和相移时,这一发现可能会改善对心电图和脑电图等电测量的解释。我们已经表明,心电图传播在相当大的程度上改变了信号的幅度和相位。它还可能改善心电图成像中逆问题的收敛性。