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Combining magnetic particle imaging and magnetic fluid hyperthermia in a theranostic platform

机译:将磁性粒子成像和磁性流体热疗在Theranostic平台中结合

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摘要

Magnetic particle imaging (MPI) is a rapidly developing molecular and cellular imaging modality. Magnetic fluid hyperthermia (MFH) is a promising therapeutic approach where magnetic nanoparticles are used as a conduit for targeted energy deposition, such as in hyperthermia induction and drug delivery. The physics germane to and exploited by MPI and MFH are similar, and the same particles can be used effectively for both. Consequently, the method of signal localization through the use of gradient fields in MPI can also be used to spatially localize MFH, allowing for spatially selective heating deep in the body and generally providing greater control and flexibility in MFH. Furthermore, MPI and MFH may be integrated together in a single device for simultaneous MPI-MFH and seamless switching between imaging and therapeutic modes. Here we show simulation and experimental work quantifying the extent of spatial localization of MFH using MPI systems: we report the first combined MPI-MFH system and demonstrate on- demand selective heating of nanoparticle samples separated by only 3 mm (up to 0.4 degrees C s(-1) heating rates and 150 W g(-1) SAR deposition). We also show experimental data for MPI performed at a typical MFH frequency and show preliminary simultaneous MPI-MFH experimental data.
机译:磁性颗粒成像(MPI)是快速发展的分子和细胞成像模态。磁性流体热疗(MFH)是一种有前途的治疗方法,其中磁性纳米颗粒用作靶向能量沉积的导管,例如在热疗诱导和药物递送中。 MPI和MFH的物理缘锗和MFH是相似的,并且可以有效地使用相同的颗粒。因此,通过使用MPI中的梯度场的信号定位方法也可以用于空间定位MFH,允许在体内深层选择性加热,并且通常在MFH中提供更大的控制和柔韧性。此外,MPI和MFH可以在单个设备中集成在一起,用于同时MPI-MFH和成像和治疗模式之间的无缝切换。在这里,我们显示了使用MPI系统定量MFH的空间定位程度的模拟和实验性:我们报告了第一个组合的MPI-MFH系统,并证明了仅3毫米(高达0.4摄氏度)分离的纳米粒子样品的选择性加热。 (-1)加热速率和150Wg(-1)SAR沉积)。我们还显示以典型的MFH频率进行MPI的实验数据,并显示初步同时的MPI-MFH实验数据。

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