Literature DB >> 29570277

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

Zhi Wei Tay, Prashant Chandrasekharan, Andreina Chiu-Lam1, Daniel W Hensley2, Rohan Dhavalikar1, Xinyi Y Zhou, Elaine Y Yu2, Patrick W Goodwill2, Bo Zheng, Carlos Rinaldi1, Steven M Conolly.   

Abstract

Image-guided treatment of cancer enables physicians to localize and treat tumors with great precision. Here, we present in vivo results showing that an emerging imaging modality, magnetic particle imaging (MPI), can be combined with magnetic hyperthermia into an image-guided theranostic platform. MPI is a noninvasive 3D tomographic imaging method with high sensitivity and contrast, zero ionizing radiation, and is linearly quantitative at any depth with no view limitations. The same superparamagnetic iron oxide nanoparticle (SPIONs) tracers imaged in MPI can also be excited to generate heat for magnetic hyperthermia. In this study, we demonstrate a theranostic platform, with quantitative MPI image guidance for treatment planning and use of the MPI gradients for spatial localization of magnetic hyperthermia to arbitrarily selected regions. This addresses a key challenge of conventional magnetic hyperthermia-SPIONs delivered systemically accumulate in off-target organs ( e.g., liver and spleen), and difficulty in localizing hyperthermia results in collateral heat damage to these organs. Using a MPI magnetic hyperthermia workflow, we demonstrate image-guided spatial localization of hyperthermia to the tumor while minimizing collateral damage to the nearby liver (1-2 cm distance). Localization of thermal damage and therapy was validated with luciferase activity and histological assessment. Apart from localizing thermal therapy, the technique presented here can also be extended to localize actuation of drug release and other biomechanical-based therapies. With high contrast and high sensitivity imaging combined with precise control and localization of the actuated therapy, MPI is a powerful platform for magnetic-based theranostics.

Entities:  

Keywords:  image-guided; magnetic fluid hyperthermia; magnetic hyperthermia; magnetic nanoparticles; magnetic particle imaging; superparamagnetic iron oxide nanoparticles; targeted therapy; theranostics

Mesh:

Substances:

Year:  2018        PMID: 29570277      PMCID: PMC6007035          DOI: 10.1021/acsnano.8b00893

Source DB:  PubMed          Journal:  ACS Nano        ISSN: 1936-0851            Impact factor:   15.881


  65 in total

1.  EGFR-targeted magnetic nanoparticle heaters kill cancer cells without a perceptible temperature rise.

Authors:  Mar Creixell; Ana C Bohórquez; Madeline Torres-Lugo; Carlos Rinaldi
Journal:  ACS Nano       Date:  2011-08-22       Impact factor: 15.881

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

Review 4.  MR thermometry.

Authors:  Viola Rieke; Kim Butts Pauly
Journal:  J Magn Reson Imaging       Date:  2008-02       Impact factor: 4.813

5.  Magnetic nanoparticle temperature estimation.

Authors:  John B Weaver; Adam M Rauwerdink; Eric W Hansen
Journal:  Med Phys       Date:  2009-05       Impact factor: 4.071

6.  System Characterization of a Highly Integrated Preclinical Hybrid MPI-MRI Scanner.

Authors:  Jochen Franke; Ulrich Heinen; Heinrich Lehr; Alexander Weber; Frederic Jaspard; Wolfgang Ruhm; Michael Heidenreich; Volkmar Schulz
Journal:  IEEE Trans Med Imaging       Date:  2016-03-14       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.  Temperature of the magnetic nanoparticle microenvironment: estimation from relaxation times.

Authors:  I M Perreard; D B Reeves; X Zhang; E Kuehlert; E R Forauer; J B Weaver
Journal:  Phys Med Biol       Date:  2014-02-20       Impact factor: 3.609

9.  Colloidal dispersions of monodisperse magnetite nanoparticles modified with poly(ethylene glycol).

Authors:  Carola Barrera; Adriana P Herrera; Carlos Rinaldi
Journal:  J Colloid Interface Sci       Date:  2008-10-01       Impact factor: 8.128

Review 10.  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

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  59 in total

Review 1.  A review on numerical modeling for magnetic nanoparticle hyperthermia: Progress and challenges.

Authors:  Izaz Raouf; Salman Khalid; Asif Khan; Jaehun Lee; Heung Soo Kim; Min-Ho Kim
Journal:  J Therm Biol       Date:  2020-06-17       Impact factor: 2.902

Review 2.  Iron oxide nanoparticles: Diagnostic, therapeutic and theranostic applications.

Authors:  Seyed Mohammadali Dadfar; Karolin Roemhild; Natascha I Drude; Saskia von Stillfried; Ruth Knüchel; Fabian Kiessling; Twan Lammers
Journal:  Adv Drug Deliv Rev       Date:  2019-01-11       Impact factor: 15.470

3.  Benchtop magnetic particle relaxometer for detection, characterization and analysis of magnetic nanoparticles.

Authors:  Nicolas Garraud; Rohan Dhavalikar; Mythreyi Unni; Shehaab Savliwala; Carlos Rinaldi; David P Arnold
Journal:  Phys Med Biol       Date:  2018-09-06       Impact factor: 3.609

4.  A microrobotic system guided by photoacoustic computed tomography for targeted navigation in intestines in vivo.

Authors:  Zhiguang Wu; Lei Li; Yiran Yang; Peng Hu; Yang Li; So-Yoon Yang; Lihong V Wang; Wei Gao
Journal:  Sci Robot       Date:  2019-07-24

Review 5.  Use of magnetic fields and nanoparticles to trigger drug release and improve tumor targeting.

Authors:  Jessica F Liu; Bian Jang; David Issadore; Andrew Tsourkas
Journal:  Wiley Interdiscip Rev Nanomed Nanobiotechnol       Date:  2019-06-26

Review 6.  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

7.  Radiofrequency-Triggered Drug Release from Nanoliposomes with Millimeter-Scale Resolution Using a Superimposed Static Gating Field.

Authors:  Jessica F Liu; Nishant Neel; Phillip Dang; Max Lamb; Jaime McKenna; Lauren Rodgers; Brian Litt; Zhiliang Cheng; Andrew Tsourkas; David Issadore
Journal:  Small       Date:  2018-10-04       Impact factor: 13.281

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

Review 9.  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

10.  Systemically delivered antibody-labeled magnetic iron oxide nanoparticles are less toxic than plain nanoparticles when activated by alternating magnetic fields.

Authors:  Chun-Ting Yang; Preethi Korangath; Jackie Stewart; Chen Hu; Wei Fu; Cordula Grüttner; Sarah E Beck; Feng-Huei Lin; Robert Ivkov
Journal:  Int J Hyperthermia       Date:  2020-12       Impact factor: 3.914

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