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关于磁粒子成像中的部分容积效应

On the partial volume effect in magnetic particle imaging.

作者信息

Good Hayden J, Sanders Toby, Melnyk Andrii, Mohtasebzadeh A Rahman, Imhoff Eric Daniel, Goodwill Patrick, Rinaldi-Ramos Carlos M

机构信息

Department of Chemical Engineering, University of Florida, Gainesville, FL 32601, United States of America.

Magnetic Insight Inc, Alameda, CA 94501, United States of America.

出版信息

Phys Med Biol. 2025 Feb 4;70(4). doi: 10.1088/1361-6560/ada417.


DOI:10.1088/1361-6560/ada417
PMID:39902767
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC12189612/
Abstract

Magnetic particle imaging (MPI) is an emerging tomographic 'hot spot' imaging modality with potential to visualize superparamagnetic iron oxide nanoparticle tracer distributions with high sensitivity and quantitative accuracy. MPI shares many similarities with positron emission tomography (PET), where the partial volume effect (PVE) can result in signal under- and over-quantification due to spill-over of signal arising from limited resolution. While the PVE has been alluded to in the MPI literature it has not been previously studied nor characterized. The objective of this study was to systematically characterize this PVE in MPI.This contribution characterizes the PVE using models of varying size and shape filled with a uniform concentration of tracer. The effect of object size on signal distribution was analyzed after application of a new image post-processing filter.As object size increased, signal distribution increased to a maximum signal value independent of object geometry and proportional to tracer concentration. Furthermore, for small objects with characteristic dimensions below the resolution of the tracer at the scanning conditions used, signal suppression was observed. These results are consistent with foundational observations of PVE in PET, suggesting that approaches to overcome the PVE in PET may be applicable to MPI.This finding has significant impact on the MPI field by demonstrating the presence of the PVE phenomenon that can directly influence imaging results.

摘要

磁粒子成像(MPI)是一种新兴的断层“热点”成像模态,有潜力以高灵敏度和定量准确性可视化超顺磁性氧化铁纳米颗粒示踪剂的分布。MPI与正电子发射断层扫描(PET)有许多相似之处,在PET中,由于有限分辨率导致的信号溢出,部分容积效应(PVE)可能会导致信号定量不足和过量。虽然MPI文献中已经提及了PVE,但此前尚未对其进行研究或表征。本研究的目的是系统地表征MPI中的这种PVE。本论文使用填充有均匀浓度示踪剂的不同大小和形状的模型来表征PVE。在应用一种新的图像后处理滤波器后,分析了物体大小对信号分布的影响。随着物体大小的增加,信号分布增加到一个与物体几何形状无关且与示踪剂浓度成正比的最大信号值。此外,对于在所用扫描条件下特征尺寸低于示踪剂分辨率的小物体,观察到了信号抑制。这些结果与PET中PVE的基础观察结果一致,表明克服PET中PVE的方法可能适用于MPI。这一发现通过证明PVE现象的存在,对MPI领域产生了重大影响,该现象可直接影响成像结果。

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引用本文的文献

[1]
Spillover can limit accurate signal quantification in MPI.

Npj Imaging. 2025-5-6

[2]
Flame-Made Doped Iron Oxide Nanoparticles as Tracers for Magnetic Particle Imaging.

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本文引用的文献

[1]
A Deep-Learning-Based Partial-Volume Correction Method for Quantitative Lu SPECT/CT Imaging.

J Nucl Med. 2024-6-3

[2]
Partial volume correction of PET image data using geometric transfer matrices based on uniform B-splines.

Phys Med Biol. 2024-2-23

[3]
Real-time multi-contrast magnetic particle imaging for the detection of gastrointestinal bleeding.

Sci Rep. 2023-12-27

[4]
Magnetic Particle Imaging-Guided Hyperthermia for Precise Treatment of Cancer: Review, Challenges, and Prospects.

Mol Imaging Biol. 2023-12

[5]
Saline bolus for negative contrast perfusion imaging in magnetic particle imaging.

Phys Med Biol. 2023-8-22

[6]
In vivo tracking of adenoviral-transduced iron oxide-labeled bone marrow-derived dendritic cells using magnetic particle imaging.

Eur Radiol Exp. 2023-8-15

[7]
Inter-user Comparison for Quantification of Superparamagnetic Iron Oxides with Magnetic Particle Imaging Across Two Institutions Highlights a Need for Standardized Approaches.

Mol Imaging Biol. 2023-10

[8]
An anatomically correct 3D-printed mouse phantom for magnetic particle imaging studies.

Bioeng Transl Med. 2022-3-1

[9]
Magnetic Particle Imaging Is a Sensitive In Vivo Imaging Modality for the Detection of Dendritic Cell Migration.

Mol Imaging Biol. 2022-12

[10]
Voxel-based partial volume correction of PET images via subtle MRI guided non-local means regularization.

Phys Med. 2021-9

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