Literature DB >> 22539401

Imaging of Her2-targeted magnetic nanoparticles for breast cancer detection: comparison of SQUID-detected magnetic relaxometry and MRI.

Natalie L Adolphi1, Kimberly S Butler, Debbie M Lovato, T E Tessier, Jason E Trujillo, Helen J Hathaway, Danielle L Fegan, Todd C Monson, Tyler E Stevens, Dale L Huber, Jaivijay Ramu, Michelle L Milne, Stephen A Altobelli, Howard C Bryant, Richard S Larson, Edward R Flynn.   

Abstract

Both magnetic relaxometry and magnetic resonance imaging (MRI) can be used to detect and locate targeted magnetic nanoparticles, noninvasively and without ionizing radiation. Magnetic relaxometry offers advantages in terms of its specificity (only nanoparticles are detected) and the linear dependence of the relaxometry signal on the number of nanoparticles present. In this study, detection of single-core iron oxide nanoparticles by superconducting quantum interference device (SQUID)-detected magnetic relaxometry and standard 4.7 T MRI are compared. The nanoparticles were conjugated to a Her2 monoclonal antibody and targeted to Her2-expressing MCF7/Her2-18 (breast cancer cells); binding of the nanoparticles to the cells was assessed by magnetic relaxometry and iron assay. The same nanoparticle-labeled cells, serially diluted, were used to assess the detection limits and MR relaxivities. The detection limit of magnetic relaxometry was 125 000 nanoparticle-labeled cells at 3 cm from the SQUID sensors. T(2)-weighted MRI yielded a detection limit of 15 600 cells in a 150 µl volume, with r(1) = 1.1 mm(-1) s(-1) and r(2) = 166 mm(-1) s(-1). Her2-targeted nanoparticles were directly injected into xenograft MCF7/Her2-18 tumors in nude mice, and magnetic relaxometry imaging and 4.7 T MRI were performed, enabling direct comparison of the two techniques. Co-registration of relaxometry images and MRI of mice resulted in good agreement. A method for obtaining accurate quantification of microgram quantities of iron in the tumors and liver by relaxometry was also demonstrated. These results demonstrate the potential of SQUID-detected magnetic relaxometry imaging for the specific detection of breast cancer and the monitoring of magnetic nanoparticle-based therapies.
Copyright © 2012 John Wiley & Sons, Ltd.

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Year:  2012        PMID: 22539401      PMCID: PMC3883306          DOI: 10.1002/cmmi.499

Source DB:  PubMed          Journal:  Contrast Media Mol Imaging        ISSN: 1555-4309            Impact factor:   3.161


  26 in total

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Review 2.  Magnetic resonance relaxation properties of superparamagnetic particles.

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Journal:  Wiley Interdiscip Rev Nanomed Nanobiotechnol       Date:  2009 May-Jun

3.  Silica- and alkoxysilane-coated ultrasmall superparamagnetic iron oxide particles: a promising tool to label cells for magnetic resonance imaging.

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4.  Effectiveness of population-based service screening with mammography for women ages 40 to 49 years: evaluation of the Swedish Mammography Screening in Young Women (SCRY) cohort.

Authors:  Barbro Numan Hellquist; Stephen W Duffy; Shahin Abdsaleh; Lena Björneld; Pál Bordás; László Tabár; Bedrich Viták; Sophia Zackrisson; Lennarth Nyström; Håkan Jonsson
Journal:  Cancer       Date:  2010-09-29       Impact factor: 6.860

5.  Thermotherapy of prostate cancer using magnetic nanoparticles: feasibility, imaging, and three-dimensional temperature distribution.

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Journal:  Eur Urol       Date:  2006-11-17       Impact factor: 20.096

6.  Characterization of magnetite nanoparticles for SQUID-relaxometry and magnetic needle biopsy.

Authors:  Natalie L Adolphi; Dale L Huber; Jason E Jaetao; Howard C Bryant; Debbie M Lovato; Danielle L Fegan; Eugene L Venturini; Todd C Monson; Trace E Tessier; Helen J Hathaway; Christian Bergemann; Richard S Larson; Edward R Flynn
Journal:  J Magn Magn Mater       Date:  2009-05-01       Impact factor: 2.993

Review 7.  Iron oxide based MR contrast agents: from chemistry to cell labeling.

Authors:  S Laurent; S Boutry; I Mahieu; L Vander Elst; R N Muller
Journal:  Curr Med Chem       Date:  2009       Impact factor: 4.530

8.  Development of a remanence measurement-based SQUID system with in-depth resolution for nanoparticle imaging.

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9.  Enhanced leukemia cell detection using a novel magnetic needle and nanoparticles.

Authors:  Jason E Jaetao; Kimberly S Butler; Natalie L Adolphi; Debbie M Lovato; Howard C Bryant; Ian Rabinowitz; Stuart S Winter; Trace E Tessier; Helen J Hathaway; Christian Bergemann; Edward R Flynn; Richard S Larson
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10.  In vivo detection of inflammation using pegylated iron oxide particles targeted at E-selectin: a multimodal approach using MR imaging and EPR spectroscopy.

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Journal:  Invest Radiol       Date:  2009-07       Impact factor: 6.016

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  23 in total

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Authors:  K K Pohaku Mitchell; S Sandoval; M J Cortes-Mateos; J G Alfaro; A C Kummel; W C Trogler
Journal:  J Mater Chem B       Date:  2014-12-07       Impact factor: 6.331

2.  Screening for ovarian cancer: imaging challenges and opportunities for improvement.

Authors:  K B Mathieu; D G Bedi; S L Thrower; A Qayyum; R C Bast
Journal:  Ultrasound Obstet Gynecol       Date:  2018-03       Impact factor: 7.299

Review 3.  The role of biomarkers in the management of epithelial ovarian cancer.

Authors:  Wei-Lei Yang; Zhen Lu; Robert C Bast
Journal:  Expert Rev Mol Diagn       Date:  2017-05-15       Impact factor: 5.225

4.  Pulsed Excitation in Magnetic Particle Imaging.

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Journal:  IEEE Trans Med Imaging       Date:  2019-02-11       Impact factor: 10.048

5.  Development of advanced signal processing and source imaging methods for superparamagnetic relaxometry.

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Journal:  Phys Med Biol       Date:  2017-01-10       Impact factor: 3.609

Review 6.  Novel Approaches to Ovarian Cancer Screening.

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Review 8.  Nanoparticle-based targeted cancer strategies for non-invasive prostate cancer intervention.

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9.  Nonlinear Susceptibility Magnitude Imaging of Magnetic Nanoparticles.

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Review 10.  Cancer active targeting by nanoparticles: a comprehensive review of literature.

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