Literature DB >> 29250434

The Relaxation Wall: Experimental Limits to Improving MPI Spatial Resolution by Increasing Nanoparticle Core size.

Zhi Wei Tay1, Daniel W Hensley1, Erika C Vreeland2, Bo Zheng1, Steven M Conolly1,3.   

Abstract

Magnetic Particle Imaging (MPI) is a promising new tracer modality with zero attenuation in tissue, high contrast and sensitivity, and an excellent safety profile. However, the spatial resolution of MPI is currently around 1 mm in small animal scanners. Especially considering tradeoffs when scaling up MPI scanning systems to human size, this resolution needs to be improved for clinical applications such as angiography and brain perfusion. One method to improve spatial resolution is to increase the magnetic core size of the superparamagnetic nanoparticle tracers. The Langevin model of superparamagnetism predicts a cubic improvement of spatial resolution with magnetic core diameter. However, prior work has shown that the finite temporal response, or magnetic relaxation, of the tracer increases with magnetic core diameter and eventually leads to blurring in the MPI image. Here we perform the first wide ranging study of 5 core sizes between 18-32 nm with experimental quantification of the spatial resolution of each. Our results show that increasing magnetic relaxation with core size eventually opposes the expected Langevin behavior, causing spatial resolution to stop improving after 25 nm. Different MPI excitation strategies were experimentally investigated to mitigate the effect of magnetic relaxation. The results show that magnetic relaxation could not be fully mitigated for the larger core sizes and the cubic resolution improvement predicted by the Langevin was not achieved. This suggests that magnetic relaxation is a significant and unsolved barrier to achieving the high spatial resolutions predicted by the Langevin model for large core size SPIOs.

Entities:  

Year:  2017        PMID: 29250434      PMCID: PMC5728438          DOI: 10.1088/2057-1976/aa6ab6

Source DB:  PubMed          Journal:  Biomed Phys Eng Express        ISSN: 2057-1976


  28 in total

1.  An x-space magnetic particle imaging scanner.

Authors:  Patrick W Goodwill; Kuan Lu; Bo Zheng; Steven M Conolly
Journal:  Rev Sci Instrum       Date:  2012-03       Impact factor: 1.523

2.  Low drive field amplitude for improved image resolution in magnetic particle imaging.

Authors:  Laura R Croft; Patrick W Goodwill; Justin J Konkle; Hamed Arami; Daniel A Price; Ada X Li; Emine U Saritas; Steven M Conolly
Journal:  Med Phys       Date:  2016-01       Impact factor: 4.071

3.  Tomographic imaging using the nonlinear response of magnetic particles.

Authors:  Bernhard Gleich; Jürgen Weizenecker
Journal:  Nature       Date:  2005-06-30       Impact factor: 49.962

4.  Slew-rate dependence of tracer magnetization response in magnetic particle imaging.

Authors:  Saqlain A Shah; R M Ferguson; K M Krishnan
Journal:  J Appl Phys       Date:  2014-10-29       Impact factor: 2.546

5.  Micro-magnetic simulation study on the magnetic particle imaging performance of anisotropic mono-domain particles.

Authors:  Jürgen Weizenecker; Bernhard Gleich; Jürgen Rahmer; Jörn Borgert
Journal:  Phys Med Biol       Date:  2012-10-18       Impact factor: 3.609

6.  Magnetostimulation limits in magnetic particle imaging.

Authors:  Emine U Saritas; Patrick W Goodwill; George Z Zhang; Steven M Conolly
Journal:  IEEE Trans Med Imaging       Date:  2013-04-30       Impact factor: 10.048

7.  Magnetic particle imaging: visualization of instruments for cardiovascular intervention.

Authors:  Julian Haegele; Jürgen Rahmer; Bernhard Gleich; Jörn Borgert; Hanne Wojtczyk; Nikolaos Panagiotopoulos; Thorsten M Buzug; Jörg Barkhausen; Florian M Vogt
Journal:  Radiology       Date:  2012-09-20       Impact factor: 11.105

8.  Synthesis of phase-pure and monodisperse iron oxide nanoparticles by thermal decomposition.

Authors:  Ryan Hufschmid; Hamed Arami; R Matthew Ferguson; Marcela Gonzales; Eric Teeman; Lucien N Brush; Nigel D Browning; Kannan M Krishnan
Journal:  Nanoscale       Date:  2015-07-07       Impact factor: 7.790

Review 9.  Magnetic particle imaging (MPI) for NMR and MRI researchers.

Authors:  Emine U Saritas; Patrick W Goodwill; Laura R Croft; Justin J Konkle; Kuan Lu; Bo Zheng; Steven M Conolly
Journal:  J Magn Reson       Date:  2012-12-27       Impact factor: 2.229

10.  Signal encoding in magnetic particle imaging: properties of the system function.

Authors:  Jürgen Rahmer; Jürgen Weizenecker; Bernhard Gleich; Jörn Borgert
Journal:  BMC Med Imaging       Date:  2009-04-01       Impact factor: 1.930

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  24 in total

1.  Rodent Cerebral Blood Volume (CBV) changes during hypercapnia observed using Magnetic Particle Imaging (MPI) detection.

Authors:  Clarissa Zimmerman Cooley; Joseph B Mandeville; Erica E Mason; Emiri T Mandeville; Lawrence L Wald
Journal:  Neuroimage       Date:  2018-05-05       Impact factor: 6.556

2.  Pulsed Excitation in Magnetic Particle Imaging.

Authors:  Zhi Wei Tay; Daniel Hensley; Jie Ma; Prashant Chandrasekharan; Bo Zheng; Patrick Goodwill; Steven Conolly
Journal:  IEEE Trans Med Imaging       Date:  2019-02-11       Impact factor: 10.048

3.  Ferumoxytol Can Be Used for Quantitative Magnetic Particle Imaging of Transplanted Stem Cells.

Authors:  Hossein Nejadnik; Prachi Pandit; Olga Lenkov; Arian Pourmehdi Lahiji; Ketan Yerneni; Heike E Daldrup-Link
Journal:  Mol Imaging Biol       Date:  2019-06       Impact factor: 3.488

4.  Magnetic Particle Imaging for Highly Sensitive, Quantitative, and Safe in Vivo Gut Bleed Detection in a Murine Model.

Authors:  Elaine Y Yu; Prashant Chandrasekharan; Ran Berzon; Zhi Wei Tay; Xinyi Y Zhou; Amit P Khandhar; R Matthew Ferguson; Scott J Kemp; Bo Zheng; Patrick W Goodwill; Michael F Wendland; Kannan M Krishnan; Spencer Behr; Jonathan Carter; Steven M Conolly
Journal:  ACS Nano       Date:  2017-11-30       Impact factor: 15.881

5.  Magnetic Particle Imaging-Guided Heating in Vivo Using Gradient Fields for Arbitrary Localization of Magnetic Hyperthermia Therapy.

Authors:  Zhi Wei Tay; Prashant Chandrasekharan; Andreina Chiu-Lam; Daniel W Hensley; Rohan Dhavalikar; Xinyi Y Zhou; Elaine Y Yu; Patrick W Goodwill; Bo Zheng; Carlos Rinaldi; Steven M Conolly
Journal:  ACS Nano       Date:  2018-03-28       Impact factor: 15.881

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

Authors:  Julia J Gevaert; Corby Fink; Jimmy D Dikeakos; Gregory A Dekaban; Paula J Foster
Journal:  Mol Imaging Biol       Date:  2022-06-01       Impact factor: 3.488

Review 7.  Magnetic particle imaging for radiation-free, sensitive and high-contrast vascular imaging and cell tracking.

Authors:  Xinyi Y Zhou; Zhi Wei Tay; Prashant Chandrasekharan; Elaine Y Yu; Daniel W Hensley; Ryan Orendorff; Kenneth E Jeffris; David Mai; Bo Zheng; Patrick W Goodwill; Steven M Conolly
Journal:  Curr Opin Chem Biol       Date:  2018-05-10       Impact factor: 8.822

8.  Optimization of Drive Parameters for Resolution, Sensitivity and Safety in Magnetic Particle Imaging.

Authors:  Zhi Wei Tay; Daniel W Hensley; Prashant Chandrasekharan; Bo Zheng; Steven M Conolly
Journal:  IEEE Trans Med Imaging       Date:  2019-12-02       Impact factor: 10.048

9.  Multi-Channel Acquisition for Isotropic Resolution in Magnetic Particle Imaging.

Authors:  Kuan Lu; Patrick Goodwill; Bo Zheng; Steven Conolly
Journal:  IEEE Trans Med Imaging       Date:  2017-12-25       Impact factor: 10.048

Review 10.  A perspective on a rapid and radiation-free tracer imaging modality, magnetic particle imaging, with promise for clinical translation.

Authors:  Prashant Chandrasekharan; Zhi Wei Tay; Xinyi Yedda Zhou; Elaine Yu; Ryan Orendorff; Daniel Hensley; Quincy Huynh; K L Barry Fung; Caylin Colson VanHook; Patrick Goodwill; Bo Zheng; Steven Conolly
Journal:  Br J Radiol       Date:  2018-06-21       Impact factor: 3.039

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