基于聚焦被动微波的可激发组织电导率变化成像。

Q3 Medicine Open Biomedical Engineering Journal Pub Date : 2015-07-31 eCollection Date: 2015-01-01 DOI:10.2174/1874120701509010138
Irene Karanasiou
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引用次数: 3

摘要

目的:基于聚焦微波辐射测量的数据建立可激发组织的离子分布波动模型。方法:聚焦微波辐射测量法用于测量深度体温分布,可以在脑可兴奋细胞簇的情况下,在动作电位周期中提供感知局部电导率波动的能力。模拟波束形成器由导电的内表面椭球腔组成,通过提供电磁能量的汇聚,从放置幻影或对象的一个聚焦区域到放置敏感辐射接收器天线的另一个聚焦区域,用于聚焦来自人体组织的混沌黑体辐射。在过去的十年中,利用聚焦辐射成像系统进行了大量的幻影、动物和人类志愿者实验。结果表明,检测到的输出辐射电压的变化归因于温度和/或电导率的变化,这些变化局部集中在测量的感兴趣区域。理论和实验研究持续在不同的频带进行,并使用在人的头部或幻影周围放置的匹配材料,以提高聚焦和探测深度。通过操作频率和匹配材料的适当组合,在检测深度和空间分辨率方面对组织中的聚焦区域进行操作似乎是可行的。本文从理论上分析了在特定皮质区域测量时沿轴突传播的动作电位循环中离子电荷的扩散。离子电荷扩散模型是基于电磁扩散类比来解释在人类志愿者测量的情况下,在各种心理生理条件下获得的观察实验结果。结果:通过离子电荷连续性方程的分析,得出微波辐射测量输出电压不受神经细胞轴突Na(+)、K(+)和Cl(-)离子时空平均波动的影响。结论:对中枢神经系统电导率波动的分析与系统的电磁分析相结合,可以对先前获得的实验数据进行解释。该技术与其他脑功能映射方法的应用,可以为理解心理生理过程的功能组织提供补充知识。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Imaging of Conductivity Changes of Excitable Tissues Based on Focused Passive Microwave.

Aims: Modeling of ionic distribution fluctuations of excitable tissues based on data elicited using focused microwave radiometry.

Methodology: Focused Microwave Radiometry implemented to carry out measurements of in depth body temperature distributions, may provide the capability of sensing local electrical conductivity fluctuations during the cycle of actions potentials in the case of brain excitable cell clusters. An analog beamformer consisting of a conductive inner-surface ellipsoidal cavity is used to focus the chaotic-black body radiation emerging from human tissues by providing convergence of the electromagnetic energy from one focus area where the phantom or subject is placed, to the other where the antennas of sensitive radiometric receivers are positioned. During the past 10 years numerous phantom, animal and human volunteer experiments have been performed with the focused radiometry imaging system. The results show that the detected changes of the output radiometric voltage are attributed to temperature and/or conductivity changes that occur locally concentrated at the areas of interest under measurement. Theoretical and experimental studies are continuously carried out at various frequency bands in conjunction with the use of matching materials placed around the human head or phantom to improve focusing and detection depth. It seems that the manipulation of the focusing area in the tissue in terms of detection depth and spatial resolution is feasible depending on the suitable combination of operation frequencies and matching material. In this paper, theoretical analysis of ion charge diffusion during the cycle of action potentials, propagating along the axons in case of measurements of specific cortical regions is presented. The ion charge diffusion modeling is based on electromagnetic diffusion analogies in the effort to explain the observed experimental results obtained under various psychophysiological conditions in the case of human volunteer measurements.

Results: By implementing an analysis based on the continuity equations of ionic charges it is concluded that the microwave radiometry output voltage is not affected by the temporal and spatial average fluctuations of Na(+), K(+), and Cl(-) ions of neural cell axons.

Conclusion: The analysis of conductivity fluctuations in the central neural system in conjunction with the electromagnetic analysis of the system, leads to the interpretation of the previously acquired experimental data. The application of this technique with other brain functional mapping methods, may provide complementary knowledge to the understanding of the functional organization of psychophysiological processes.

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来源期刊
Open Biomedical Engineering Journal
Open Biomedical Engineering Journal Medicine-Medicine (miscellaneous)
CiteScore
1.60
自引率
0.00%
发文量
4
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