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磁性粒子成像:一种用于癌症检测的新型活体成像平台。

Magnetic Particle Imaging: A Novel in Vivo Imaging Platform for Cancer Detection.

机构信息

Department of Bioengineering, University of California , Berkeley, California 94720, United States.

Lodespin Labs LLC, Seattle, Washington 98103, United States.

出版信息

Nano Lett. 2017 Mar 8;17(3):1648-1654. doi: 10.1021/acs.nanolett.6b04865. Epub 2017 Feb 21.


DOI:10.1021/acs.nanolett.6b04865
PMID:28206771
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC5724561/
Abstract

Cancer remains one of the leading causes of death worldwide. Biomedical imaging plays a crucial role in all phases of cancer management. Physicians often need to choose the ideal diagnostic imaging modality for each clinical presentation based on complex trade-offs among spatial resolution, sensitivity, contrast, access, cost, and safety. Magnetic particle imaging (MPI) is an emerging tracer imaging modality that detects superparamagnetic iron oxide (SPIO) nanoparticle tracer with high image contrast (zero tissue background signal), high sensitivity (200 nM Fe) with linear quantitation, and zero signal depth attenuation. MPI is also safe in that it uses safe, in some cases even clinically approved, tracers and no ionizing radiation. The superb contrast, sensitivity, safety, and ability to image anywhere in the body lends MPI great promise for cancer imaging. In this study, we show for the first time the use of MPI for in vivo cancer imaging with systemic tracer administration. Here, long circulating MPI-tailored SPIOs were created and administered intravenously in tumor bearing rats. The tumor was highlighted with tumor-to-background ratio of up to 50. The nanoparticle dynamics in the tumor was also well-appreciated, with initial wash-in on the tumor rim, peak uptake at 6 h, and eventual clearance beyond 48 h. Lastly, we demonstrate the quantitative nature of MPI through compartmental fitting in vivo.

摘要

癌症仍然是全球主要死因之一。生物医学成像在癌症管理的所有阶段都起着至关重要的作用。医生通常需要根据空间分辨率、灵敏度、对比度、可及性、成本和安全性等复杂因素,为每种临床表现选择理想的诊断成像方式。磁粒子成像(MPI)是一种新兴的示踪剂成像方式,可利用超顺磁氧化铁(SPIO)纳米颗粒示踪剂进行高对比度(零组织背景信号)、高灵敏度(200 nM Fe,线性定量)和零信号深度衰减的检测。MPI 也很安全,因为它使用安全的示踪剂,在某些情况下甚至是临床批准的示踪剂,并且不使用电离辐射。MPI 具有出色的对比度、灵敏度、安全性以及在体内任何部位成像的能力,为癌症成像带来了巨大的希望。在这项研究中,我们首次展示了通过系统示踪剂给药进行体内癌症成像的 MPI。在这里,我们制备了长循环 MPI 定制的 SPIO,并将其静脉内给药给荷瘤大鼠。肿瘤的肿瘤与背景比高达 50。还很好地了解了纳米颗粒在肿瘤中的动力学,在肿瘤边缘出现初始冲洗,在 6 小时达到峰值摄取,最终在 48 小时后清除。最后,我们通过体内的房室拟合证明了 MPI 的定量性质。

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A comprehensive analysis of the impacts of Image Resolution and Scanning Times on the quality of MPI-reconstructed images.

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本文引用的文献

[1]
Evaluation of PEG-coated iron oxide nanoparticles as blood pool tracers for preclinical magnetic particle imaging.

Nanoscale. 2017-1-19

[2]
High-performance iron oxide nanoparticles for magnetic particle imaging - guided hyperthermia (hMPI).

Nanoscale. 2016-6-16

[3]
Quantitative Magnetic Particle Imaging Monitors the Transplantation, Biodistribution, and Clearance of Stem Cells In Vivo.

Theranostics. 2016-1-1

[4]
Safety and technique of ferumoxytol administration for MRI.

Magn Reson Med. 2016-5

[5]
Quantitative "Hot Spot" Imaging of Transplanted Stem Cells using Superparamagnetic Tracers and Magnetic Particle Imaging (MPI).

Tomography. 2015-12

[6]
In vivo delivery, pharmacokinetics, biodistribution and toxicity of iron oxide nanoparticles.

Chem Soc Rev. 2015-12-7

[7]
Magnetic Particle Imaging tracks the long-term fate of in vivo neural cell implants with high image contrast.

Sci Rep. 2015-9-11

[8]
Tuning surface coatings of optimized magnetite nanoparticle tracers for Magnetic Particle Imaging.

IEEE Trans Magn. 2015-2

[9]
First experimental evidence of the feasibility of multi-color magnetic particle imaging.

Phys Med Biol. 2015-3-7

[10]
Magnetic particle imaging with tailored iron oxide nanoparticle tracers.

IEEE Trans Med Imaging. 2015-5

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