IEEE Trans Med Imaging. 2016 Oct;35(10):2312-2318. doi: 10.1109/TMI.2016.2559538. Epub 2016 Apr 27.
Magnetic particle imaging (MPI) is able to provide high temporal and good spatial resolution, high signal to noise ratio and sensitivity. Furthermore, it is a truly quantitative method as its signal strength is proportional to the concentration of its tracer, superparamagnetic iron oxide nanoparticles (SPIOs), over a wide range practically relevant concentrations. Thus, MPI is proposed as a promising future method for guidance of vascular interventions. To implement this, devices such as guide wires and catheters have to be discernible in MPI, which can be achieved by coating already commercially available devices with SPIOs. In this proof of principle study the feasibility of that approach is demonstrated. First, a Ferucarbotran-based SPIO-varnish was developed by embedding Ferucarbotran into an organic based solvent. Subsequently, the biocompatible varnish was applied to a commercially available guidewire and diagnostic catheter for vascular interventional purposes. In an interventional setting using a vessel phantom, the coating proved to be mechanically and chemically stable and thin enough to ensure normal handling as with uncoated devices. The devices were visualized in 3D on a preclinical MPI demonstrator using a system function based image reconstruction process. The system function was acquired with a probe of the dried varnish prior to the measurements. The devices were visualized with a very high temporal resolution and a simple catheter/guide wire maneuver was demonstrated.
磁共振粒子成像(MPI)能够提供高时间分辨率和良好的空间分辨率、高信噪比和灵敏度。此外,它是一种真正的定量方法,因为其信号强度与其示踪剂(超顺磁性氧化铁纳米颗粒[SPIOs])的浓度成正比,在实际相关浓度范围内具有广泛的适用性。因此,MPI 被提议作为血管介入指导的一种有前途的未来方法。为了实现这一点,必须使诸如导丝和导管之类的装置在 MPI 中可识别,这可以通过用 SPIOs 涂覆已经市售的装置来实现。在这项原理验证研究中,证明了这种方法的可行性。首先,通过将 Ferucarbotran 嵌入有机溶剂中,开发了基于 Ferucarbotran 的 SPIO 清漆。随后,将生物相容性清漆涂覆到用于血管介入目的的市售导丝和诊断导管上。在使用血管模型的介入环境中,该涂层被证明在机械和化学上都是稳定的,并且很薄,足以确保与未涂层装置一样的正常处理。使用基于系统功能的图像重建过程,在临床前 MPI 演示器上对 3D 设备进行了可视化。在测量之前,使用干燥清漆的探头采集系统功能。以非常高的时间分辨率可视化了这些装置,并演示了简单的导管/导丝操作。