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基于解剖学逼真的乳房模型对乳腺癌早期检测的微波诱导热声成像数值研究

Numerical study of microwave induced thermoacoustic imaging for initial detection of cancer of breast on anatomically realistic breast phantom.

作者信息

Rahpeima Reza, Soltani M, Moradi Kashkooli Farshad

机构信息

Department of Aerospace Engineering, K. N. Toosi University of Technology, Tehran, Iran.

Department of Mechanical Engineering, K. N. Toosi University of Technology, Tehran, Iran; Advanced Bioengineering Initiative Center, Computational Medicine Center, K. N. Toosi University of Technology, Tehran, Iran; Cancer Biology Research Center, Cancer Institute of Iran, Tehran University of Medical Sciences, Tehran, Iran; Department of Electrical and Computer Engineering, University of Waterloo, Waterloo, Ontario, Canada; Centre for Biotechnology and Bioengineering (CBB), University of Waterloo, Waterloo, Ontario, Canada.

出版信息

Comput Methods Programs Biomed. 2020 Nov;196:105606. doi: 10.1016/j.cmpb.2020.105606. Epub 2020 Jun 12.

Abstract

BACKGROUND AND OBJECTIVE

Microwave-induced thermoacoustic imaging (MITAI) represents an innovative imaging approach for detection of breast cancer at initial phases by integrating the benefits provided by procedures of microwave and ultrasound imaging. The present investigation examines an innovative three-dimensional numerical modeling of MITAI as a problem with multi-physics nature.

METHODS

Simulations are performed by the use of COMSOL software. An anatomically realistic breast phantom representing various parts of a real breast, such as three different types of tissue, fibro-connective/glandular, transitional; and fatty, is taken into consideration along with a tumor. This breast phantom with a tumor is irradiated by a 2.45 GHz pulsed rectangular waveguide. The temperature increase and its consequent pressure caused by electromagnetic absorption are analyzed.

RESULTS

More temperature increase occurs in the tumor area than in the other parts of the breast, the fact which results in further increase in the pressure in the tumor area than other parts. This makes the tumor distinguishable. The ability of the MITAI process regarding the tumor size, shape (both geometrical shape and spatial orientation), location, the irradiation power level, and the pulse width is also investigated. It is demonstrated that tumor size does not have a significant impact on the efficiency of detection. In fact, very small tumors in the early stages of cancer development (with a radius of 0.25 cm) are also detectable by employing the MITAI technique. The geometrical shape of the tumor does not considerably affect the detecting performance just by itself. The spatial orientation of the tumor actually has a great impact on it. The location of the tumor is an essential factor involved in detection efficiency of MITAI. Tumors located in the fatty tissues would be much easier to be detected than those in the glandular tissues. Moreover, results denote that with augmentation of the irradiation power level or increasing the pulse width, stronger acoustic waves would be produced to make tumor detection easier.

CONCLUSION

These modeling and techniques may be applied aiming for determination of the amount of the generated pressure differences and acoustic pressure magnitude, and can be utilized as an effective prognosticator in practical tests.

摘要

背景与目的

微波诱导热声成像(MITAI)通过整合微波成像和超声成像的优势,是一种用于早期检测乳腺癌的创新成像方法。本研究将MITAI作为一个具有多物理性质的问题,对其进行了创新的三维数值建模。

方法

使用COMSOL软件进行模拟。考虑一个具有解剖学真实感的乳房模型,它代表真实乳房的各个部分,如三种不同类型的组织,即纤维结缔组织/腺体组织、过渡组织和脂肪组织,以及一个肿瘤。用2.45 GHz脉冲矩形波导对这个带有肿瘤的乳房模型进行照射。分析电磁吸收引起的温度升高及其产生的压力。

结果

肿瘤区域的温度升高比乳房的其他部位更多,这一事实导致肿瘤区域的压力比其他部位进一步升高。这使得肿瘤可被区分。还研究了MITAI过程在肿瘤大小、形状(几何形状和空间方向)、位置、照射功率水平和脉冲宽度方面的能力。结果表明,肿瘤大小对检测效率没有显著影响。事实上,在癌症发展早期非常小的肿瘤(半径为0.25 cm)也可以通过MITAI技术检测到。肿瘤的几何形状本身对检测性能没有太大影响。肿瘤的空间方向实际上对其有很大影响。肿瘤的位置是影响MITAI检测效率的一个重要因素。位于脂肪组织中的肿瘤比位于腺体组织中的肿瘤更容易被检测到。此外,结果表明,随着照射功率水平的增加或脉冲宽度的增加,会产生更强的声波,使肿瘤检测更容易。

结论

这些建模和技术可用于确定产生的压力差和声压大小,并可在实际测试中用作有效的预测指标。

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