Literature DB >> 19994492

Accuracy of real time noninvasive temperature measurements using magnetic resonance thermal imaging in patients treated for high grade extremity soft tissue sarcomas.

Oana I Craciunescu1, Paul R Stauffer, Brian J Soher, Cory R Wyatt, Omar Arabe, Paolo Maccarini, Shiva K Das, Kung-Shan Cheng, Terence Z Wong, Ellen L Jones, Mark W Dewhirst, Zeljko Vujaskovic, James R MacFall.   

Abstract

PURPOSE: To establish accuracy of real time noninvasive temperature measurements using magnetic resonance thermal imaging in patients treated for high grade extremity soft tissue sarcomas.
METHODS: Protocol patients with advanced extremity sarcomas were treated with external beam radiation therapy and hyperthermia. Invasive temperature measures were compared to noninvasive magnetic resonance thermal imaging (MRTI) at 1.5 T performed during hyperthermia. Volumetric temperature rise images were obtained using the proton resonance frequency shift (PRFS) technique during heating in a 140 MHz miniannular phased array applicator. MRTI temperature changes were compared to invasive measurements of temperature with a multisensor fiber optic probe inside a #15 g catheter in the tumor. Since the PRFS technique is sensitive to drifts in the primary imaging magnetic field, temperature change distributions were corrected automatically during treatment using temperature-stable reference materials to characterize field changes in 3D. The authors analyzed MRT images and compared, in evaluable treatments, MR-derived temperatures to invasive temperatures measured in extremity sarcomas. Small regions of interest (ROIs) were specified near each invasive sensor identified on MR images. Temperature changes in the interstitial sensors were compared to the corresponding ROI PRFS-based temperature changes over the entire treatment and over the steady-state period. Nonevaluable treatments (motion/imaging artifacts, noncorrectable drifts) were not included in the analysis.
RESULTS: The mean difference between MRTI and interstitial probe measurements was 0.91 degrees C for the entire heating time and 0.85 degrees C for the time at steady state. These values were obtained from both tumor and normal tissue ROIs. When the analysis is done on just the tumor ROIs, the mean difference for the whole power on time was 0.74 degrees C and during the period of steady state was 0.62 degrees C.
CONCLUSIONS: The data show that for evaluable treatments, excellent correlation (deltaT < 1 degrees C) of MRTI-ROI and invasive measurements can be achieved, but that motion and other artifacts are still serious challenges that must be overcome in future work.

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Year:  2009        PMID: 19994492      PMCID: PMC2773239          DOI: 10.1118/1.3227506

Source DB:  PubMed          Journal:  Med Phys        ISSN: 0094-2405            Impact factor:   4.071


  35 in total

1.  Determining and optimizing the precision of quantitative measurements of perfusion from dynamic contrast enhanced MRI.

Authors:  Brian M Dale; John A Jesberger; Jonathan S Lewin; Claudia M Hillenbrand; Jeffrey L Duerk
Journal:  J Magn Reson Imaging       Date:  2003-11       Impact factor: 4.813

Review 2.  Thermal monitoring: invasive, minimal-invasive and non-invasive approaches.

Authors:  Peter Wust; Chie Hee Cho; Bert Hildebrandt; Johanna Gellermann
Journal:  Int J Hyperthermia       Date:  2006-05       Impact factor: 3.914

3.  Treatment of the patient with stage M0 soft tissue sarcoma.

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Journal:  J Clin Oncol       Date:  1988-05       Impact factor: 44.544

Review 4.  Quantitative MRI-based temperature mapping based on the proton resonant frequency shift: review of validation studies.

Authors:  N McDannold
Journal:  Int J Hyperthermia       Date:  2005-09       Impact factor: 3.914

Review 5.  MR thermometry.

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

6.  Simultaneous magnetic resonance phase and magnitude temperature maps in muscle.

Authors:  H E Cline; K Hynynen; E Schneider; C J Hardy; S E Maier; R D Watkins; F A Jolesz
Journal:  Magn Reson Med       Date:  1996-03       Impact factor: 4.668

7.  Statistical methods for assessing agreement between two methods of clinical measurement.

Authors:  J M Bland; D G Altman
Journal:  Lancet       Date:  1986-02-08       Impact factor: 79.321

8.  Methods and potentials of magnetic resonance imaging for monitoring radiofrequency hyperthermia in a hybrid system.

Authors:  J Gellermann; W Wlodarczyk; A Feussner; H Fähling; J Nadobny; B Hildebrandt; R Felix; P Wust
Journal:  Int J Hyperthermia       Date:  2005-09       Impact factor: 3.914

9.  RTOG quality assurance guidelines for interstitial hyperthermia.

Authors:  B Emami; P Stauffer; M W Dewhirst; S Prionas; T Ryan; P Corry; T Herman; D S Kapp; R J Myerson; T Samulski
Journal:  Int J Radiat Oncol Biol Phys       Date:  1991-05       Impact factor: 7.038

Review 10.  From the RSNA refresher courses: MR imaging in hyperthermia.

Authors:  James R MacFall; Brian J Soher
Journal:  Radiographics       Date:  2007 Nov-Dec       Impact factor: 5.333

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  27 in total

1.  Improved hyperthermia treatment control using SAR/temperature simulation and PRFS magnetic resonance thermal imaging.

Authors:  Zhen Li; Martin Vogel; Paolo F Maccarini; Vadim Stakhursky; Brian J Soher; Oana I Craciunescu; Shiva Das; Omar A Arabe; Williams T Joines; Paul R Stauffer
Journal:  Int J Hyperthermia       Date:  2010-11-11       Impact factor: 3.914

2.  Stable Microwave Radiometry System for Long Term Monitoring of Deep Tissue Temperature.

Authors:  Paul R Stauffer; Dario B Rodriques; Sara Salahi; Erdem Topsakal; Tiago R Oliveira; Aniruddh Prakash; Fabio D'Isidoro; Douglas Reudink; Brent W Snow; Paolo F Maccarini
Journal:  Proc SPIE Int Soc Opt Eng       Date:  2013-02-26

3.  Fast PRF-based MR thermometry using double-echo EPI: in vivo comparison in a clinical hyperthermia setting.

Authors:  Tetiana Dadakova; Johanna Gellermann; Otilia Voigt; Jan Gerrit Korvink; John Matthew Pavlina; Jürgen Hennig; Michael Bock
Journal:  MAGMA       Date:  2014-11-08       Impact factor: 2.310

Review 4.  Ultrasound Hyperthermia Technology for Radiosensitization.

Authors:  Lifei Zhu; Michael B Altman; Andrei Laszlo; William Straube; Imran Zoberi; Dennis E Hallahan; Hong Chen
Journal:  Ultrasound Med Biol       Date:  2019-02-14       Impact factor: 2.998

5.  Guideline for the clinical application, documentation and analysis of clinical studies for regional deep hyperthermia: quality management in regional deep hyperthermia.

Authors:  G Bruggmoser; S Bauchowitz; R Canters; H Crezee; M Ehmann; J Gellermann; U Lamprecht; N Lomax; M B Messmer; O Ott; S Abdel-Rahman; M Schmidt; R Sauer; A Thomsen; R Wessalowski; G van Rhoon
Journal:  Strahlenther Onkol       Date:  2012-09       Impact factor: 3.621

Review 6.  Image-guided thermal ablation with MR-based thermometry.

Authors:  Mingming Zhu; Ziqi Sun; Chin K Ng
Journal:  Quant Imaging Med Surg       Date:  2017-06

7.  A method to convert MRI images of temperature change into images of absolute temperature in solid tumours.

Authors:  Ryan M Davis; Benjamin L Viglianti; Pavel Yarmolenko; Ji-Young Park; Paul Stauffer; David Needham; Mark W Dewhirst
Journal:  Int J Hyperthermia       Date:  2013-09       Impact factor: 3.914

8.  Noninvasive assessment of tissue heating during cardiac radiofrequency ablation using MRI thermography.

Authors:  Aravindan Kolandaivelu; Menekhem M Zviman; Valeria Castro; Albert C Lardo; Ronald D Berger; Henry R Halperin
Journal:  Circ Arrhythm Electrophysiol       Date:  2010-07-24

9.  EVOLUTION OF ANTENNA PERFORMANCE FOR APPLICATIONS IN THERMAL MEDICNE.

Authors:  P R Stauffer; P F Maccarini
Journal:  Proc Eur Conf Antennas Propag       Date:  2011

Review 10.  Simulation techniques in hyperthermia treatment planning.

Authors:  Margarethus M Paulides; Paul R Stauffer; Esra Neufeld; Paolo F Maccarini; Adamos Kyriakou; Richard A M Canters; Chris J Diederich; Jurriaan F Bakker; Gerard C Van Rhoon
Journal:  Int J Hyperthermia       Date:  2013-05-14       Impact factor: 3.914

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