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Theoretical Predictions for Spatially-Focused Heating of Magnetic Nanoparticles Guided by Magnetic Particle Imaging Field Gradients

机译:磁性粒子成像场梯度指导的磁性纳米粒子空间聚焦加热的理论预测

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摘要

Magnetic nanoparticles in alternating magnetic fields (AMFs) transfer some of the field’s energy to their surroundings in the form of heat, a property that has attracted significant attention for use in cancer treatment through hyperthermia and in developing magnetic drug carriers that can be actuated to release their cargo externally using magnetic fields. To date, most work in this field has focused on the use of AMFs that actuate heat release by nanoparticles over large regions, without the ability to select specific nanoparticle-loaded regions for heating while leaving other nanoparticle-loaded regions unaffected. In parallel, magnetic particle imaging (MPI) has emerged as a promising approach to image the distribution of magnetic nanoparticle tracers in vivo, with sub-millimeter spatial resolution. The underlying principle in MPI is the application of a selection magnetic field gradient, which defines a small region of low bias field, superimposed with an AMF (of lower frequency and amplitude than those normally used to actuate heating by the nanoparticles) to obtain a signal which is proportional to the concentration of particles in the region of low bias field. Here we extend previous models for estimating the energy dissipation rates of magnetic nanoparticles in uniform AMFs to provide theoretical predictions of how the selection magnetic field gradient used in MPI can be used to selectively actuate heating by magnetic nanoparticles in the low bias field region of the selection magnetic field gradient. Theoretical predictions are given for the spatial decay in energy dissipation rate under magnetic field gradients representative of those that can be achieved with current MPI technology. These results underscore the potential of combining MPI and higher amplitude/frequency actuation AMFs to achieve selective magnetic fluid hyperthermia (MFH) guided by MPI.
机译:交变磁场(AMF)中的磁性纳米粒子以热量的形式将磁场的某些能量传递到周围环境,这一性质已引起人们的广泛关注,用于通过热疗治疗癌症和开发可被激活释放的磁性药物载体他们的货物在外部使用磁场。迄今为止,该领域中的大多数工作都集中在AMF的使用上,这些AMF可以驱动纳米颗粒在较大区域上释放热量,而无法选择特定的纳米颗粒负载区域进行加热,而不会影响其他纳米颗粒负载区域。并行地,磁性粒子成像(MPI)已经成为一种有前途的方法,可在亚毫米级的空间分辨率下对体内磁性纳米粒子示踪剂的分布进行成像。 MPI的基本原理是选择磁场梯度的应用,该梯度定义了一个小的低偏置磁场区域,并与AMF叠加(频率和振幅比通常用于激发纳米粒子加热的频率和振幅要低),以获得信号它与低偏磁场区域中的颗粒浓度成正比。在这里,我们扩展了用于估计均匀AMF中磁性纳米粒子的能量耗散率的先前模型,以提供有关MPI中使用的选择磁场梯度如何可用于通过选择的低偏置磁场区域中的磁性纳米粒子选择性地启动加热的理论预测。磁场梯度。给出了在磁场梯度下能量耗散率的空间衰减的理论预测,这代表了当前MPI技术可以实现的。这些结果强调了将MPI和更高幅度/频率驱动的AMF相结合以实现由MPI指导的选择性磁流体热疗(MFH)的潜力。

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