分子通讯中使用g蛋白涂层的磁热疗

Khoirul Anwar, Mawaddah Hasan
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引用次数: 1

摘要

磁热疗是一种利用磁性纳米颗粒药物载体将外部电磁能量转化为靶向肿瘤区域感应加热的癌症治疗方法。本文研究了通过扩散通道的无源分子通信,通过一系列计算机模拟计算了接收分子的数量和误码率(BER)性能,以表明通信质量。在靶向肿瘤中接受分子后,利用COMSOL模拟磁热疗的各种参数,包括纳米颗粒的形状、大小、涂层材料和厚度,以计算可达到的最高温度、生物热分布以及对周围健康组织的损伤面积。我们发现:(1)发射机与接收机之间的距离、发射分子数、接收机处的阈值、扩散系数等足够的参数会影响误差概率;(2)二元分子移位键控(BMoSK)调制比二元浓度移位键控(BCSK)调制产生更好的误码率性能;以及(iii)所提出的用于磁性纳米颗粒的g蛋白涂层具有与聚合物相同的行为,可提供可达到的最高温度、均匀分布的生物热,并减少对健康组织区域的损伤量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Magnetic Hyperthermia using G-Protein Coating in Molecular Communications
Magnetic hyperthermia is a type of cancer treat-ment using a magnetic nanoparticle drug carrier to transform external electromagnetic energy into induction heating in the targeted tumor region. This paper investigates passive molecular communication via diffusion channels using a series of computer simulations to calculate the number of receive molecules and bit-error-rate (BER) performance to indicate the quality of the communication. After the reception of the molecules in the targeted tumor, the simulation of magnetic hyperthermia with various parameters include the shape, size, coating material, and thickness of the nanoparticle using COMSOL to calculate the highest achievable temperature, distribution of bioheat, and the amount of damage area regarding the surrounding healthy tissue. We found that: (i) sufficient parameters, such as distance between the transmitter and the receiver, number of emitting molecules, threshold at the receiver, and diffusion coefficient influence the error probability, (ii) binary Molecular Shift Keying (BMoSK) modulation produces better BER performances than that of Binary Concentration Shift Keying (BCSK) modulation, and (iii) the proposed G-protein coating for the magnetic nanoparticle performs the same behavior as the polymer that provide the highest achievable temperature, evenly distributed bioheat, and decreases the amount of damage on the healthy tissue region.
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