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Quantifying iron-oxide nanoparticles at high concentration based on longitudinal relaxation using a three-dimensional SWIFT Look-Locker sequence.

作者信息

Zhang Jinjin, Chamberlain Ryan, Etheridge Michael, Idiyatullin Djaudat, Corum Curtis, Bischof John, Garwood Michael

机构信息

Center for Magnetic Resonance Research and Department of Radiology, University of Minnesota Medical School, Minneapolis, Minnesota, USA; School of Physics and Astronomy, University of Minnesota, Minneapolis, Minnesota, USA.

出版信息

Magn Reson Med. 2014 Jun;71(6):1982-8. doi: 10.1002/mrm.25181. Epub 2014 Mar 24.


DOI:10.1002/mrm.25181
PMID:24664527
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4024088/
Abstract

PURPOSE: Iron-oxide nanoparticles (IONPs) have proven utility as contrast agents in many MRI applications. Previous quantitative IONP mapping has been performed using mainly T2 * mapping methods. However, in applications requiring high IONP concentrations, such as magnetic nanoparticles based thermal therapies, conventional pulse sequences are unable to map T2 * because the signal decays too rapidly. In this article, sweep imaging with Fourier transformation (SWIFT) sequence is combined with the Look-Locker method to map T1 of IONPs in high concentrations. METHODS: T1 values of agar containing IONPs in different concentrations were measured with the SWIFT Look-Locker method and with inversion recovery spectroscopy. Precisions of Look-Locker and variable flip angle (VFA) methods were compared in simulations. RESULTS: The measured R1 (=1/T1 ) has a linear relationship with IONP concentration up to 53.6 mM of Fe. This concentration exceeds concentrations measured in previous work by almost an order of magnitude. Simulations show SWIFT Look-Locker method is also much less sensitive to B1 inhomogeneity than the VFA method. CONCLUSION: SWIFT Look-Locker can accurately measure T1 of IONP concentrations ≤53.6 mM. By mapping T1 as a function of IONP concentration, IONP distribution maps might be used in the future to plan effective magnetic nanoparticle hyperthermia therapy.

摘要

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本文引用的文献

[1]
T₁ estimation for aqueous iron oxide nanoparticle suspensions using a variable flip angle SWIFT sequence.

Magn Reson Med. 2013-6-28

[2]
ZTE imaging in humans.

Magn Reson Med. 2013-6-14

[3]
MRI temporal acceleration techniques.

J Magn Reson Imaging. 2012-9

[4]
Gadgetron: an open source framework for medical image reconstruction.

Magn Reson Med. 2012-7-12

[5]
Ultrashort echo time imaging using pointwise encoding time reduction with radial acquisition (PETRA).

Magn Reson Med. 2011-6-30

[6]
Optimization of iron oxide nanoparticle detection using ultrashort echo time pulse sequences: comparison of T1, T2*, and synergistic T1- T2* contrast mechanisms.

Magn Reson Med. 2011-2-8

[7]
Optimization of RF excitation to maximize signal and T2 contrast of tissues with rapid transverse relaxation.

Magn Reson Med. 2010-8

[8]
Exact algebraization of the signal equation of spoiled gradient echo MRI.

Phys Med Biol. 2010-7-8

[9]
SWIFT detection of SPIO-labeled stem cells grafted in the myocardium.

Magn Reson Med. 2010-5

[10]
Detection and quantification of magnetically labeled cells by cellular MRI.

Eur J Radiol. 2009-5

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