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Invited Review

Magnetic resonance temperature imaging

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Pages 515-531 | Received 02 Nov 2004, Accepted 04 Apr 2005, Published online: 09 Jul 2009

References

  • Parker DL, Smith V, Sheldon P, Crooks LE, Fussell L. Temperature distribution measurements in two-dimensional NMR imaging. Medical Physics 1983;10:321–325.
  • Le Bihan D, Delannoy J, Levin RL. Temperature mapping with MR imaging of molecular diffusion: Application to hyperthermia. Radiology 1989;171:853–857.
  • Ishihara Y, Calderon A, Watanabe H, et al. A precise and fast temperature mapping using water proton chemical shift. Magnetic Resonance Medicine 1995;34:814–823.
  • Pemot M, Tamer M, Bercoff J, Waters KR, Fink M. Temperature estimation using ultrasonic spatial compound imaging. IEEE Transactions on Ultrasonic Ferroelectric Frequency Control 2004;51:606–615.
  • Hindman J. Proton resonance shift of water in the gas and liquid states. Journal of Chemical Physics 1966;44:4582–4592.
  • Ishihara Y, Calderon A, Watanabe H, et al. A precise and fast temperature mapping method using water proton chemical shift. Proceedings of SMRM, Berlin 1992;4803.
  • de Poorter J. Noninvasive MRI thermometry with the proton resonance frequency method: Study of susceptibility effects. Magnetic Resonance Medicine 1995;34:359–367.
  • de Poorter J, De Wagter C, De Deene Y, Thomsen C, Stahlberg F, Achten E. Noninvasive MRI thermometry with the proton resonance frequency (PRF) method: in vivo results in human muscle. Magnetic Resonance Medicine 1995;33:74–81.
  • Chung YC, Duerk JL. Signal formation in echo-shifted sequences. Magnetic Resonance Medicine 1999;42:864–875.
  • de Zwart JA, Vimeux FC, Delalande C, Canioni P, Moonen CT. Fast lipid-suppressed MR temperature mapping with echo-shifted gradient- echo imaging and spectral-spatial excitation. Magnetic Resonance Medicine 1999;42:53–59.
  • Chung AH, Hynynen K, Colucci V, Oshio K, Cline HE, Jolesz FA. Optimization of spoiled gradient-echo phase imaging for in vivo localization of a focused ultrasound beam. Magnetic Resonance Medicine 1996;36:745–752.
  • de Zwart JA, van Gelderen P, Kelly DJ, Moonen CT. Fast magnetic-resonance temperature imaging. Journal of Magnetic Resonance B 1996;112:86–90.
  • Peters RD, Hinks RS, Henkelman RM. Ex vivo tissue-type independence in proton-resonance frequency shift MR thermometry. Magnetic Resonance Medicine 1998;40:454–459.
  • Peters RD, Chan E, Trachtenberg J, et al. Magnetic resonance thermometry for predicting thermal damage: An application of interstitial laser coagulation in an in vivo canine prostate model. Magnetic Resonance Medicine 2000;44:873–883.
  • Wlodarczyk W, Boroschewski R, Hentschel M, Wust P, Monich G, Felix R. Three-dimensional monitoring of small temperature changes for therapeutic hyperthermia using MR. Journal of Magnetic Resonance Imaging 1998;8:165–174.
  • McDannold N, King RL,, Hynynen K. MRI monitoring of heating produced by ultrasound absorption in the skull: In vivo study in pigs. Magnetic Resonance Medicine 2004;51:1061–1065.
  • Peters RD, Hinks RS, Henkelman RM. Heat-source orientation and geometry dependence in proton-resonance frequency shift magnetic resonance thermometry. Magnetic Resonance Medicine 1999;41:909–918.
  • Young IR, Hajnal JV, Roberts IG, et al. An evaluation of the effects of susceptibility changes on the water chemical shift method of temperature measurement in human peripheral muscle. Magnetic Resonance Medicine 1996;36:366–374.
  • Salomir R, Denis de Senneville B, Moonen CTW. A fast calculation method for magnetic field inhomogeneity due to an arbitrary distribution of bulk susceptibility. Concepts in Magnetic Resonance 2003;19B:26–34.
  • Stollberger R, Ascher PW, Huber D, Renhart W, Radner H, Ebner F. Temperature monitoring of interstitial thermal tissue coagulation using MR phase images. Journal of Magnetic Resonance Imaging 1998;8:188–196.
  • Ogawa S, Lee TM, Kay AR, Tank DW. Brain magnetic resonance imaging with contrast dependent on blood oxygenation. Proceedings of the National Academy of Sciences (USA) 1990;87:9868–9872.
  • Peters RD, Henkelman RM. Proton-resonance frequency shift MR thermometry is affected by changes in the electrical conductivity of tissue. Magnetic Resonance Medicine 2000;43:62–71.
  • Kuroda K, Oshio K, Chung AH, Hynynen K, Jolesz FA. Temperature mapping using the water proton chemical shift: A chemical shift selective phase mapping method. Magnetic Resonance Medicine 1997; 38:845–851.
  • Cady EB, D'Souza PC, Penrice J, Lorek A. The estimation of local brain temperature by in vivomagneticresonance spectroscopy. Magnetic Resonance Medicine 1995;33:862–867.
  • Quesson B, de Zwart JA, Moonen CT. Magnetic resonance temperature imaging for guidance of thermotherapy. Journal of Magnetic Resonance Imaging 2000;12:525–533.
  • Fried MP, Morrison PR, Hushek SG, Kernahan GA, Jolesz FA. Dynamic 7'1-weighted magnetic resonance imaging of interstitial laser photocoagulation in the liver: Observations on in vivo temperature sensitivity. Lasers Surgery Medicine 1996;18: 410–419.
  • Graham SJ, Bronskill MJ, Henkelman RM. Time and temperature dependence of MR parameters during thermal coagulation of ex vivo rabbit muscle. Magnetic Resonance Medicine 1998;39:198–203.
  • Graham SJ, Stanisz GJ, Kecojevic A, Bronskill MJ, Henkelman RM. Analysis of changes in MR properties of tissues after heat treatment. Magnetic Resonance Medicine 1999;42:1061–1071.
  • Bottomley PA, Foster TH, Argersinger RE, Pfeifer LM. A review of normal tissue hydrogen NMR relaxation times and relaxation mechanisms from 1-100 MHz: Dependence on tissue type, NMR frequency, temperature, species, excision, and age. Medical Physics 1984;11:425–448.
  • Delannoy J, Chen CN, Turner R, Levin RL, Le Bihan D. Noninvasive temperature imaging using diffusion MRI. Magnetic Resonance Medicine 1991;19:333–339.
  • Moseley M, Cohen Y, Mintorovitch J, Kucharczyk J, Weinstein P. Early detection of cerebral ischemia in cats: Comparison of diffusion- and T2-weighted MRI and spectroscopy. Magnetic Resonance Medicine 1990;14: 330.
  • Aime S, Botta M, Fasano M, et al. A new ytterbium chelate as contrast agent in chemical shift imaging and temperature sensitive probe for MR spectroscopy. Magnetic Resonance Medicine 1996;35:648–651.
  • Fossheim SL, Il'yasov KA, Hennig J, Bjornerud A. Thermosensitive paramagnetic liposomes for temperature control during MR imaging-guided hyperthermia: In vitro feasibility studies. Academy of Radiology 2000;7:1107–1115.
  • Bartholet A, Goudemant J, Laurent S, Kahn 0, Vander Elst L, Muller R. Spin transition molecular materials: Intelligent contrast agents for magnetic resonance thermometry. ISMRM abstract 2000.
  • Pruessmann KP, Weiger M, Scheidegger MB, Boesiger P. SENSE: Sensitivity encoding for fast MRI. Magnetic Resonance Medicine 1999;42:952–962.
  • Madore B, Glover GH, Pelc NJ. Unaliasing by fourier-encoding the overlaps using the temporal dimension (UNFOLD), applied to cardiac imaging and fMRI. Magnetic Resonance Medicine 1999;42: 813–828.
  • Moonen CT, Liu G, van Gelderen P, Sobering G. A fast gradient-recalled MRI technique with increased sensitivity to dynamic susceptibility effects. Magnetic Resonance Medicine 1992;26:184–189.
  • Liu G, Sobering G, Duyn J, Moonen C. A functional MRI technique combining principles of echo-shifting with a train of observations (PRESTO). Magnetic Resonance Medicine 1993;30:764–768.
  • Weidensteiner C, Kerioui N, Quesson B, de Senneville BD, Trillaud H, Moonen CT. Stability of real-time MR temperature mapping in healthy and diseased human liver. Journal of Magnetic Resonance Imaging 2004;19:438–446.
  • Weidensteiner C, Quesson B, Caire-Gana B, et al. Real-time MR temperature mapping of rabbit liver in vivo during thermal ablation. Magnetic Resonance Medicine 2003;50:322–330.
  • Paliwal V, El-Sharkawy AM, Du X, Yang X, Atalar E. SSFP-based MR thermometry. Magnetic Resonance Medicine 2004;52:704–708.
  • Scheffler K. Fast frequency mapping with balanced SSFP: Theory and application to proton-resonance frequency shift thermometry. Magnetic Resonance Medicine 2004;51:1205–1211.
  • Denis de Senneville B, Desbarats P, Quesson B, Moonen CTW. Real-time artefact corrections for quantitative MR temperature mapping. Journal of WSCG 2003;11:87–94.
  • Hazle JD, Stafford RJ, Price RE. Magnetic resonance imaging-guided focused ultrasound thermal therapy in experimental animal models: Correlation of ablation volumes with pathology in rabbit muscle and VX2 tumors. Journal of Magnetic Resonance Imaging 2002;15: 185–194.
  • Hynynen K, Pomeroy 0, Smith DN, et al. MR imaging-guided focused ultrasound surgery of fibroadenomas in the breast: A feasibility study. Radiology 2001;219: 176–185.
  • Morikawa S, Inubushi T, Kurumi Y, et al. Feasibility of respiratory triggering for MR-guided microwave ablation of liver tumors under general anesthesia. Cardiovascular Intervention Radiology 2004;27:370–373.
  • de Zwart JA, Vimeux FC, Palussiere J, et al. On-line correction and visualization of motion during MRI-controlled hyperthermia. Magnetic Resonance Medicine 2001;45:128–137.
  • Pernot M, Tanter M, Fink M. 3D Real-time motion correction in high intensity focused ultrasound therapy. Ultrasound Medicine and Biology 2004.
  • Suprijanto S, Vogel MW, Vos FM, Vrooman HA, Vossepoel AM. Displacement correction scheme for MR-guided interstitial laser therapy. Lecture Notes in Computer Science 2879 2003;2: 399–407.
  • Lemieux L, Jagoe R. Effects of fiducial marker localization on stereotactic target coordinate calculation in CT slices and radiographs. Physics in Medicine and Biology 1994;39:1915–1928.
  • Maurer CRFJM, Galloway RL, Wang MY, Maciunas RJ, Allen GS. The accuracy of image-guided neurosurgery using implantable fiducial markers. In: Lemke HU, Inamura K, Jaffe CC, Vannier MW, editors. Proceedings of Computer Assisted Radiology (CAR) 1995. pp 1197–1202.
  • Maurer CR, Fitzpatrick JM. A review of medical image registration. In: Maciunas RJ, editor. Interactive Image-Guided Neurosurgery. Park Ridge, IL: American Association of Neurological Surgeons 1993. pp 17–44.
  • Maguire GQ, Noz M, Rusinek H, et al. Graphics applied to medical image registration. 1991;11:20–28.
  • Leslie WD, Borys A, McDonald D, Dupont JO, Peterdy AE. External reference markers for the correction of head rotation in brain single-photon emission tomography. European Journal of Nuclear Medicine 1995; 22:351–355.
  • Simon DA, O'Toole RV, Blackwell M, Morgan F, DiGioia AM, Kanade T. Accuracy validation in image-guided orthopaedic surgery. Medical Robotics and Computer Assisted Surgery. MRCAS '95, Baltimore, MD, 5–7 November 1995. pp 185–192.
  • Maintz JB, Viergever MA. A survey of medical image registration. Medical Image Analysis 1998;2:1–36.
  • Evans AC, Marett S, Collins L, Peters TM. Anatomical-functional correlative analysis of the human brain using three dimensional imaging systems. In: Schneider RH, Dwyer III SJ, Jost RG, editors. Medical imaging: Image processing. 1989. pp 264–274.
  • Gueziec A. Large deformable splines, crest lines and matching. International Conference on Computer Vision 1993:650–657.
  • Davis LS, Wu Z, Sun H. Contour-based motion estimation. Graphics and Image Processing 1983; 23: 313–326.
  • Hildreth EC. The computation of the velocity field. Proceedings of the Royal Society of London B, Biological Science 1984;221:189–220.
  • Hu MK. Visual pattern recognition by moment invariants. IEEE Transactions on Information Theory 1962;5:179–187.
  • De Castro E, Morandi C. Registration of translated and rotated images using finite Fourier transforms. IEEE Transactions on Pattern Analyses and Machine Intelligence 1987;9:700–703.
  • Reddy BS, Chatterji DN. An fft-based technique for translation, rotation, and scale-invariant image registration. IEEE Transactions on Pattern Analyses and Machine Intelligence 1996;5:1266–1270.
  • Friston KJ, Ashburner J, Frith CD, Poline J-B, Heather JD, Frackowiak RSJ. Spatial registration and normalisation of images. Human Brain Mapping 1995;2:165–189.
  • Chen MJ, Chen LG, Chiueh TD, Lee YP. A new block-matching criterion for motion estimation and its implementation. IEEE Transactions on Circuits and Systems for Video Technology 1995;5:231–236.
  • Lucas BD, Kanade T. An iterative image registration technique with an application to stereo vision. Proceedings of the Second International Symposium on Artificial Intelligence, Vancouver, 1981. pp 674–679.
  • Schunck BG, Horn BKP. Determining optical flow. Artificial Intelligence 1981;17:185–203.
  • Rieke V, Vigen KK, Sommer G, Daniel BL, Pauly JM, Butts K. Referenceless PRF shift thermometry. Magnetic Resonance Medicine 2004;51:1223–1231.
  • Denis de Senneville B, Desbarats P, Salomir R, Quesson B, Moonen CTW. Correction of accidental patient motion for on-line MR thermometry. 26–29 September; Saint Malo, France. Medical Image Computing and Computer-Assisted Intervention; 2004. pp 637–644.
  • Denis de Senneville B, Quesson B, Desbarats P, Salomir R, Palussiere J, Moonen CTW. Atlas-based motion correction for on-line MR temperature mapping. Proceedings of the IEEE International Conference on Image Processing (ICIP 2004) Singapore 2004. pp 2571–2574.
  • Vigen KK, Daniel BL, Pauly JM, Butts K. Triggered, navigated, multi-baseline method for proton resonance frequency temperature mapping with respiratory motion. Magnetic Resonance Medicine 2003;50:1003–1010.
  • Botnar RM, Steiner P, Dubno B, Erhart P, von Schulthess GK, Debatin JF. Temperature quantification using the proton frequency shift technique: in vitro and in vivo validation in an open 0.5 tesla interventional MR scanner during RF ablation. Journal of Magnetic Resonance Imaging 2001;13:437–444.

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