探讨电磁辐射影响血液凝固过程的微观机制

Bor-Wen Yang, Shih-Yuan Wang, Ching-Huang Lin
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摘要

在这项研究中,我们通过测量凝血过程中红细胞之间的细胞间相互作用,探讨了调制辐射如何影响血液凝固的机制。使用光学镊子,我们通过确定捕获它们所需的功率来评估凝固红细胞之间的pn范围微相互作用。通过推导细胞相互作用与凝血时间的凝血曲线,我们发现了人体凝血过程的三个不同阶段。我们发现,根据红外辐射相对于凝血红细胞的位置,电磁辐射诱导的机制可以通过增强或减弱凝血红细胞在凝血过程中的相互作用来促进或抑制凝血。此外,我们发现极低频调制辐射能够诱导凝血红细胞的共振振荡,从而减缓电磁辐射对血液凝固的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exploring the microscopic mechanism how electromagnetic radiation affects blood coagulation process
In this study, we explored the mechanism of how modulated radiation affects blood coagulation by measuring the intercellular interactions among red blood cells (RBCs) during the coagulation process. Using optical tweezers, we evaluated the pN-range micro-interactions between coagulating RBCs by determining the power required to trap them. By deriving the coagulation curve of the cellular interactions versus coagulation time, we discovered three distinct phases of the human coagulation process. We discovered that depending on the position of infrared radiation relative to the coagulating RBCs, a mechanism induced by electromagnetic radiation could promote or suppress the blood coagulation by either enhancing or attenuating the interactions among coagulating RBCs during the coagulation process. Additionally, we found that extremely low frequency-modulated radiation was able to induce resonant oscillation of the coagulating RBCs, which could moderate the impact of electromagnetic radiation on blood coagulation.
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