Literature DB >> 15141077

Microtesla MRI with a superconducting quantum interference device.

Robert McDermott1, SeungKyun Lee, Bennie ten Haken, Andreas H Trabesinger, Alexander Pines, John Clarke.   

Abstract

MRI scanners enable fast, noninvasive, and high-resolution imaging of organs and soft tissue. The images are reconstructed from NMR signals generated by nuclear spins that precess in a static magnetic field B0 in the presence of magnetic field gradients. Most clinical MRI scanners operate at a magnetic field B0 = 1.5 T, corresponding to a proton resonance frequency of 64 MHz. Because these systems rely on large superconducting magnets, they are costly and demanding of infrastructure. On the other hand, low-field imagers have the potential to be less expensive, less confining, and more mobile. The major obstacle is the intrinsically low sensitivity of the low-field NMR experiment. Here, we show that prepolarization of the nuclear spins and detection with a superconducting quantum interference device (SQUID) yield a signal that is independent of B0, allowing acquisition of high-resolution MRIs in microtesla fields. Reduction of the strength of the measurement field eliminates inhomogeneous broadening of the NMR lines, resulting in enhanced signal-to-noise ratio and spatial resolution for a fixed strength of the magnetic field gradients used to encode the image. We present high-resolution images of phantoms and other samples and T1-weighted contrast images acquired in highly inhomogeneous magnetic fields of 132 microT; here, T1 is the spin-lattice relaxation time. These techniques could readily be adapted to existing multichannel SQUID systems used for magnetic source imaging of brain signals. Further potential applications include low-cost systems for tumor screening and imaging peripheral regions of the body.

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Mesh:

Year:  2004        PMID: 15141077      PMCID: PMC419521          DOI: 10.1073/pnas.0402382101

Source DB:  PubMed          Journal:  Proc Natl Acad Sci U S A        ISSN: 0027-8424            Impact factor:   11.205


  10 in total

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Review 4.  Nuclear magnetic resonance of laser-polarized noble gases in molecules, materials, and organisms.

Authors:  Boyd M Goodson
Journal:  J Magn Reson       Date:  2002-04       Impact factor: 2.229

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Journal:  Magn Reson Med       Date:  1990-11       Impact factor: 4.668

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  10 in total
  19 in total

1.  Zero- to low-field MRI with averaging of concomitant gradient fields.

Authors:  Carlos A Meriles; Dimitris Sakellariou; Andreas H Trabesinger; Vasiliki Demas; Alexander Pines
Journal:  Proc Natl Acad Sci U S A       Date:  2005-01-25       Impact factor: 11.205

2.  Construction of a three-dimensional outline of the heart and conduction pathway by means of a 64-channel magnetocardiogram in patients with atrial flutter and fibrillation.

Authors:  Riccardo Fenici
Journal:  Int J Cardiovasc Imaging       Date:  2005-10       Impact factor: 2.357

3.  Nuclear spin noise imaging.

Authors:  Norbert Müller; Alexej Jerschow
Journal:  Proc Natl Acad Sci U S A       Date:  2006-04-24       Impact factor: 11.205

4.  Parallel MRI at microtesla fields.

Authors:  Vadim S Zotev; Petr L Volegov; Andrei N Matlashov; Michelle A Espy; John C Mosher; Robert H Kraus
Journal:  J Magn Reson       Date:  2008-03-06       Impact factor: 2.229

5.  Microtesla MRI of the human brain combined with MEG.

Authors:  Vadim S Zotev; Andrei N Matlashov; Petr L Volegov; Igor M Savukov; Michelle A Espy; John C Mosher; John J Gomez; Robert H Kraus
Journal:  J Magn Reson       Date:  2008-06-21       Impact factor: 2.229

6.  MRI of the human brain at 130 microtesla.

Authors:  Ben Inglis; Kai Buckenmaier; Paul Sangiorgio; Anders F Pedersen; Matthew A Nichols; John Clarke
Journal:  Proc Natl Acad Sci U S A       Date:  2013-11-19       Impact factor: 11.205

7.  Conductive shield for ultra-low-field magnetic resonance imaging: Theory and measurements of eddy currents.

Authors:  Koos C J Zevenhoven; Sarah Busch; Michael Hatridge; Fredrik Oisjöen; Risto J Ilmoniemi; John Clarke
Journal:  J Appl Phys       Date:  2014-03-11       Impact factor: 2.546

8.  Noise amplification in parallel whole-head ultra-low-field magnetic resonance imaging using 306 detectors.

Authors:  Fa-Hsuan Lin; Panu T Vesanen; Jaakko O Nieminen; Yi-Cheng Hsu; Koos C J Zevenhoven; Juhani Dabek; Lauri T Parkkonen; Andrey Zhdanov; Risto J Ilmoniemi
Journal:  Magn Reson Med       Date:  2012-09-28       Impact factor: 4.668

9.  Non-cryogenic anatomical imaging in ultra-low field regime: hand MRI demonstration.

Authors:  I Savukov; T Karaulanov; A Castro; P Volegov; A Matlashov; A Urbatis; J Gomez; M Espy
Journal:  J Magn Reson       Date:  2011-06-01       Impact factor: 2.229

10.  SQUIDs vs. Induction Coils for Ultra-Low Field Nuclear Magnetic Resonance: Experimental and Simulation Comparison.

Authors:  Andrei N Matlashov; Larry J Schultz; Michelle A Espy; Robert H Kraus; Igor M Savukov; Petr L Volegov; Caroline J Wurden
Journal:  IEEE Trans Appl Supercond       Date:  2011
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