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首页> 外文期刊>Medical Physics >Focused RF hyperthermia using magnetic fluids.
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Focused RF hyperthermia using magnetic fluids.

机译:使用磁流体的聚焦射频热疗。

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摘要

Heat therapies such as hyperthermia and thermoablation are very promising approaches in the treatment of cancer. Compared with available hyperthermia modalities, magnetic fluid hyperthermia (MFH) yields better results in uniform heating of the deeply situated tumors. In this approach, fluid consisting of superparamagnetic particles (magnetic fluid) is delivered to the tumor. An alternating (ac) magnetic field is then used to heat the particles and the corresponding tumor, thereby ablating it. However, one of the most serious shortcomings of this technique is the unwanted heating of the healthy tissues. This results from the magnetic fluid diffusion from the tumor to the surrounding tissues or from incorrect localization of the fluids in the target tumor area. In this study, the authors demonstrated that by depositing appropriate static (dc) magnetic field gradients on the alternating (ac) magnetic fields, focused heating of the magnetic particles can be achieved. A focused hyperthermia system was implemented by using two types of coils: dc and ac coils. The ac coil generated the alternating magnetic field responsible for the heating of the magnetic particles; the dc coil was used to superimpose a static magnetic field gradient on the alternating magnetic field. In this way, focused heating of the particles was obtained in the regions where the static field was dominated by the alternating magnetic field. In vitro experiments showed that as the magnitude of the dc solenoid currents was increased from 0 to 1.8 A, the specific absorption rate (SAR) of the superparamagnetic particles 2 cm apart from the ac solenoid center decreased by a factor of 4.5, while the SAR of the particles at the center was unchanged. This demonstrates that the hyperthermia system is capable of precisely focusing the heat at the center. Additionally, with this approach, shifting of the heat focus can be achieved by applying different amounts of currents to individual dc solenoids. In vivo experiments were performed with adult rats, where magnetic fluids were injected percutaneously into the tails (with homogeneous fluid distribution inside the tails). Histological examination showed that, as we increased the dc solenoid current from 0.5 to 1.8 A, the total burned volume decreased from 1.6 to 0.2 cm3 verifying the focusing capability of the system. The authors believe that the studies conducted in this work show that MFH can be a much more effective method with better heat localization and focusing abilities.
机译:诸如热疗和热消融的热疗法是治疗癌症的非常有前途的方法。与可用的高温疗法相比,磁流体高温疗法(MFH)在深处肿瘤的均匀加热中产生更好的结果。在这种方法中,由超顺磁性颗粒组成的流体(磁性流体)被输送到肿瘤。然后使用交变(ac)磁场加热颗粒和相应的肿瘤,从而将其消融。然而,该技术的最严重的缺点之一是对健康组织的不必要的加热。这是由于磁性流体从肿瘤扩散到周围组织或由于流体在目标肿瘤区域中的不正确定位所致。在这项研究中,作者证明了通过在交变(ac)磁场上沉积适当的静态(dc)磁场梯度,可以实现磁性粒子的集中加热。聚焦热疗系统通过使用两种类型的线圈来实现:直流和交流线圈。交流线圈产生交变磁场,导致磁场加热。直流线圈用于将静磁场梯度叠加在交变磁场上。以这种方式,在静磁场由交变磁场控制的区域中获得了粒子的集中加热。体外实验表明,随着直流螺线管电流的大小从0增加到1.8 A,与交流螺线管中心相距2 cm的超顺磁性粒子的比吸收率(SAR)降低了4.5倍,而SAR中心的粒子数没有变化。这表明热疗系统能够将热量精确地集中在中心。另外,采用这种方法,可以通过向单个直流螺线管施加不同量的电流来实现热焦点的转移。对成年大鼠进行了体内实验,将磁性液体经皮注射到尾巴中(尾巴内均一分布)。组织学检查表明,当我们将直流螺线管电流从0.5 A增加到1.8 A时,总燃烧体积从1.6 cm2减少到0.2 cm3,从而验证了系统的聚焦能力。作者认为,这项工作进行的研究表明,MFH可以是一种更有效的方法,具有更好的热定位和聚焦能力。

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