Engineering Biomedical Problems to Detect Carcinomas: A Tomographic Impedance Approach

Eng Pub Date : 2024-07-25 DOI:10.3390/eng5030084
F. Laganá, Danilo Pratticò, D. De Carlo, G. Oliva, S. Pullano, Salvatore Calcagno
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Abstract

Computed tomography (CT), magnetic resonance imaging (MRI), and radiography expose patients to electromagnetic fields (EMFs) and ionizing radiation. As an alternative, Electrical Impedance Tomography (EIT) offers a less EMF-influenced method for imaging by measuring superficial skin currents to provide a map of the body’s conductivity. EIT allows for functional monitoring of anatomical regions using low electromagnetic fields and minimal exposure times. This paper investigates the application of EIT for the morphological and functional assessment of tissues. Using the Finite Element Method (FEM) (Comsol 5.2), both two-dimensional and three-dimensional models and simulations of physiological and pathological tissues were developed to replicate EIT operations. The primary objective is to detect carcinoma by analysing the electrical impedance response to externally applied excitations. An eight-electrode tomograph was utilised for this purpose, specifically targeting epithelial tissue. The study allowed the characterisation of tomographs of any size and, therefore, the possibility to verify both their geometric profile and the ideal value of the excitation current to be delivered per second of the type of tissue to be analysed. Simulations were conducted to observe electrical impedance variations within a homogeneously modelled tissue and a carcinoma characterized by regular geometry. The outcomes demonstrated the potential of EIT as a viable technique for carcinoma detection, emphasizing its utility in medical diagnostics with reduced EMF exposure.
检测癌症的生物医学工程问题:断层扫描阻抗方法
计算机断层扫描(CT)、磁共振成像(MRI)和射线照相术会使患者暴露于电磁场(EMF)和电离辐射中。作为一种替代方法,电阻抗断层扫描(EIT)通过测量表层皮肤电流来提供人体导电性图,是一种受电磁场影响较小的成像方法。EIT 允许使用低电磁场和最短的暴露时间对解剖区域进行功能监测。本文研究了 EIT 在组织形态和功能评估中的应用。利用有限元法 (FEM) (Comsol 5.2),开发了生理和病理组织的二维和三维模型和模拟,以复制 EIT 操作。主要目的是通过分析外部激励的电阻抗响应来检测癌症。为此使用了一台八电极断层显像仪,专门针对上皮组织。这项研究可以确定任何尺寸断层显像仪的特征,因此可以验证其几何轮廓以及待分析组织类型的每秒激励电流的理想值。模拟观察了均质建模组织和具有规则几何特征的癌细胞内的电阻抗变化。结果表明,EIT 作为一种可行的癌症检测技术具有潜力,强调了其在减少电磁场暴露的医疗诊断中的实用性。
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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来源期刊
Eng
Eng
CiteScore
2.10
自引率
0.00%
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0
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