Numerical study of magnetic nanoparticles injection into a brain tumor considering the effects of injection volume and location on the termination of cancerous cells.

IF 1.6 4区 医学 Q4 BIOPHYSICS
Biointerphases Pub Date : 2022-11-01 DOI:10.1116/6.0003814
Adeleh Kazemi Alamouti, Izaz Raouf, Saeed Zahabi, Milad Salimibani
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Abstract

Lately, magnetic nanoparticle (MNP) hyperthermia gained much attention because of its therapeutic efficiency. It is challenging to predict all the treatment parameters during the actual therapeutic environment. Hence, the numerical approaches can be utilized to optimize various parameters of interest. In the present research, MNP hyperthermia on a cancerous tumor placed inside the human brain is investigated numerically using a realistically shaped model for the head layers and the tumor. Applying the boundary conditions, a steady-state Pennes's bioheat transfer equation is solved using the finite element method scheme. The effects of MNP injection volume and location on tumor thermal distribution are examined and discussed in detail. The total volume of the brain tumor is 5990 mm3. Three different volumes of injection per point, namely, 0.6, 1.2, and 3 μl, as well as several injection points, are performed. It is observed that choosing a higher number of MNP injection points affects the temperature distribution in terms of uniformity. In contrast, an accurate injection volume provides lower temperatures for the treatment of cancerous tissue. Moreover, it is concluded that interfaces between the different layers of the anatomically correct brain model play a critical role in thermal therapy. Based on the obtained results, it is concluded that the optimal condition for MNP hyperthermia of a cancerous tumor with a volume of 5990 mm3 is the total injection volume of 80 μl through 20 different points all over the brain tumor considering an injection volume of 4 μl for each point.

考虑注射量和注射位置对肿瘤细胞终止影响的磁性纳米颗粒脑肿瘤注射的数值研究。
近年来,磁性纳米粒子(MNP)热疗因其治疗效果而受到广泛关注。在实际治疗环境中预测所有治疗参数是一项挑战。因此,数值方法可以用来优化各种感兴趣的参数。在目前的研究中,MNP热疗对放置在人类大脑内的癌性肿瘤进行了数值研究,使用了一个真实形状的模型,用于头部层和肿瘤。应用边界条件,采用有限元格式求解稳态Pennes生物传热方程。详细讨论了MNP注射量和注射位置对肿瘤热分布的影响。脑肿瘤的总体积为5990mm3。每点注射量分别为0.6、1.2和3 μl,注射点为多个注射点。观察到,选择更多的MNP注射点会影响温度分布的均匀性。相反,精确的注射量为治疗癌组织提供了较低的温度。此外,我们得出结论,解剖正确的脑模型的不同层之间的界面在热疗中起关键作用。基于以上结果,得出体积为5990 mm3的癌性肿瘤的MNP热疗的最佳条件是,在每个点注射4 μl的情况下,通过脑肿瘤上20个不同的点注射80 μl的总注射量。
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
Biointerphases
Biointerphases 生物-材料科学:生物材料
自引率
0.00%
发文量
35
期刊介绍: Biointerphases emphasizes quantitative characterization of biomaterials and biological interfaces. As an interdisciplinary journal, a strong foundation of chemistry, physics, biology, engineering, theory, and/or modelling is incorporated into originated articles, reviews, and opinionated essays. In addition to regular submissions, the journal regularly features In Focus sections, targeted on specific topics and edited by experts in the field. Biointerphases is an international journal with excellence in scientific peer-review. Biointerphases is indexed in PubMed and the Science Citation Index (Clarivate Analytics). Accepted papers appear online immediately after proof processing and are uploaded to key citation sources daily. The journal is based on a mixed subscription and open-access model: Typically, authors can publish without any page charges but if the authors wish to publish open access, they can do so for a modest fee. Topics include: bio-surface modification nano-bio interface protein-surface interactions cell-surface interactions in vivo and in vitro systems biofilms / biofouling biosensors / biodiagnostics bio on a chip coatings interface spectroscopy biotribology / biorheology molecular recognition ambient diagnostic methods interface modelling adhesion phenomena.
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