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Original Article

Image-guided therapy and intraoperative MRI in neurosurgery

, , , , , , , & show all
Pages 277-286 | Published online: 15 Feb 2010

References

  • Gildenberg P L, Tasker R R. Textbook on stereotactic and functional neurosurgery. McGraw-Hill, New York 1998
  • Kelly P J. Computer-assisted stereotaxis: new approaches for the management of intracranial intra-axial tumors. Neurology 1986; 36: 535–41
  • Galloway R L, Jr., Maciunas R J, Edwards C AD. Interactive image-guided neurosurgery. IEEE Trans Biomed Eng 1992; 39: 1226–31
  • Barnett G H, Kormos D W, Steiner C P, Weisenberger J. Use of a frameless, armless stereotactic wand for brain tumor localization with two-dimensional and three-dimensional neuroimaging. Neurosurgery 1993; 33: 674–8
  • Heilbrun M P, McDonald P, Wiker C, et al. Stereotactic localization and guidance using a machine vision technique. Stereotact Fund Neurosurg 1992; 58: 94–8
  • Koivukangas J, Louhisalmi Y, Alakuijala J, Oikarinen J. Ultrasound-controlled neuronavigator-guided brain surgery. J Neurosurg 1993; 79: 36–42
  • Laborde G, Gilsbach J, Harders A, et al. Computer assisted localizer for planning of surgery and intraoperative orientation. Acta Neurochir 1992; 119: 166–70
  • Maciunas R J, Galloway R L, Jr., Fitzpatrick J M, et al. A universal system for interactive image-directed neurosurgery. Stereotact Funct Neurosurg 1992; 58: 108–13
  • Bucholz R D, McDurmont L, Smith K, Heilbrun P. Use of optical digitizer in resection of supratentorial tumors. Proc SPIE 1894; 1993
  • Nakajima S, Atsumi H, Bhalerao A H, et al. Computer-assisted surgical planning for cerebrovascular neurosurgery. Neurosurgery 1997; 41: 403–9, discussion 409-10
  • Roberts D W, Strohbehn J W, Hatch J F, et al. A frameless stereotaxic integration of computerized tomographic imaging and the operating microscope. J Neurosurg 1986; 65: 545–9
  • Taylor R H, Lavallee S, Burdea G C. Computer-integrated surgery, technology and clinical applications. The MIT Press, Cambridge, MA 1996
  • Watanabe E, Watanabe T, Manaka S, et al. Three-dimensional digitizer (neuronavigator): new equipment for computed tomography-guided stereotaxic surgery. Surg Neurol 1987; 27: 543–7
  • Zamorano L J, Nolte L, Kadi A M, Jiang Z. Interactive intraoperative localization using an infrared-based system. Neurol Res 1993; 15: 290–8
  • Zinreich S J, Tebo S A, Long D M, et al. Frameless stereotaxic integration of CT imaging data: accuracy and initial applications. Radiology 1993; 188: 735–42
  • Black P M, Alexander E, Martin C, 3rd, et al. Craniotomy for tumor treatment in an intraoperative magnetic resonance imaging unit. Neurosurgery 1999; 45: 423–31, discussion 431-3
  • Bucholz R D, Yeh D D, Trobaugh J W, et al. The correction of stereotactic inaccuracy caused by brain shift using an intraoperative ultrasound device. Springer, Grenoble, FR 1997; 459–66
  • Ganser K A, Dickhaus H, Staubert A, et al. [Quantification of brain shift effects in MRI images]. Biomed Tech (Berl) 1997; 42: 247–8
  • Hill D L, Maurer C R, Jr., Maciunas R J, et al. Measurement of intraoperative brain surface deformation under a craniotomy. Neurosurgery 1998; 43: 514–26, discussion 527-8
  • Jodicke A, Deinsberger W, Erbe H, et al. Intraoperative three-dimensional ultrasonography: an approach to register brain shift using multidimensional image processing. Minim Invasive Neurosurg, 41: 13–9
  • Maurer C R, Jr., Hill D L, Martin A J, et al. Investigation of intraoperative brain deformation using a 1.5 T interventional MR system: preliminary results. IEEE Trans Med Imaging 1998; 17: 817–25
  • Miga M I, Paulsen K D, Lemery J M, et al. Model-updated image guidance: initial clinical experiences with gravity-induced brain deformation. IEEE Trans Med Imaging 1999; 18: 866–74
  • Nabavi A, Hata N, Gering D T, . Image guided neurosurgery: visualization of brain shift. Navigated Brain Surgery, U Spetzger, S Stiehl, J Gilsbach, et al. Aachen, Cotta 1999; 17–26
  • Roberts D W, Hartov A, Kennedy F E, et al. Intraoperative brain shift and deformation: a quantitative analysis of cortical displacement in 28 cases. Neurosurgery 1998; 43: 749–58, discussion 758-60
  • Tronnier V M, Wirtz C R, Knauth M, et al. Intraoperative diagnostic and interventional magnetic resonance imaging in neurosurgery [see comments]. Neurosurgery 1998; 40: 891–90
  • Jolesz F A. Interventional magnetic resonance imaging, computed tomography, and ultrasound. Acad Radiol 2 Suppl 1995; 2: S124–5
  • Debatin J F, Adams G. Interventional magnetic resonance imaging. Heidelberg, Springer 1998
  • Groenemeyer D HW, Jolesz F A, Lufkin R, et al. Magnetic resonance imaging for microtherapy and open surgery. Semin Intervent Radiol 1999; 16: 39–49
  • Jolesz F A, Young I R. Interventional MR: techniques and clinical experience. Heidelberg, Springer 1998
  • Lufkin R B. Interventional MRI. Mosby Inc., St Louis, MO 1999
  • Black P M, Moriarty T, Alexander E, III, et al. Development and implementation of intraoperative magnetic resonance imaging and its neurosurgical applications. Neurosurgery 1998; 41: 831–4
  • Gering D T. A system for surgical planning and guidance using image fusion and interventional MR. Massachusetts Institute of Technology, Cambridge, MA 1999
  • Grimson W E, Kikinis R, Jolesz F A, Black P M. Image-guided surgery. Sci Am 1999; 280: 62–9
  • Nimsky C, Ganslandt O, Kober H, et al. Integration of functional magnetic resonance imaging supported by magnetoencephalography in functional neuronavigation. Neurosurgery 1998; 44: 1249–55
  • Barillot C, Lemoine D, Le Briquer L, et al. Data fusion in medical imaging: merging multimodal and multipatient images, identification of structures and 3D display aspects. Eur J Radiol 1993; 17: 22–7
  • Emri M, Esik O, Repa I, et al. [Image fusion of different tomographic methods (PET/CT/MRI) effectively contribute to therapy planning]. Orv Hetil 1997; 138: 2919–24
  • Ge Y, Fitzpatrick J M, Votaw J R, et al. Retrospective registration of PET and MR brain images: an algorithm and its stereotactic validation. J Comput Assist Tomogr 1994; 18: 800–10
  • Holman B L, Zimmerman R E, Johnson K A, et al. Computer-assisted superimposition of magnetic resonance and high-resolution technetium99m-HMPAO and thallium201 SPECT images of the brain. J Nucl Med 1991; 32: 1478–84
  • Pietrzyk U, Herholz K, Schuster A, et al. Clinical applications of registration and fusion of multimodality brain images from PET, SPECT, CT, and MRI. Eur J Radiol 1996; 21: 174–82
  • West J, Fitzpatrick J M, Wang M Y, et al. Comparison and evaluation of retrospective intermodality brain image registration techniques. J Comput Assist Tomogr 1997; 21: 554–66
  • Zeck O F, Fang B, Mullani N, et al. PET and SPECT imaging for stereotactic localization. Stereotact Funct Neurosurg 1995; 64: 147–54
  • Fitzpatrick J M, Hill D L, Shyr Y, et al. Visual assessment of the accuracy of retrospective registration of MR and CT images of the brain. IEEE Trans Med Imaging 1998; 17: 571–85
  • Wells W M, III, Viola R, Atsumi H, et al. Multi-modal volume registration by maximization of mutual information. Med Image Anal 1996; 1: 35–51
  • Gering D T. A system for surgical planning and guidance using image fusion and interventional MR. Massachusetts Institute of Technology, Cambridge, MA 1999
  • Gering D T, Nabavi A, Kikinis R, et al. An integrated visualization system for surgical planning and guidance using image fusion and interventional imaging. Springer, Cambridge, UK 1999; 809–19
  • Ousterhout J. Tcl and Tk Toolkit. Addison-Wesley. 1994
  • Schroeder W, Martin K, Lorensen W. The Visualization Toolkit: An object-oriented approach to 3D graphics. Prentice Hall, Upper Saddle River, NJ 1998
  • Galloway R L, Jr., Maciunas R J, Edwards Cad. Interactive image-guided neurosurgery. IEEE Trans Biomed Eng 1992; 39: 1226–31
  • Maciunas R J, Galloway R L, Jr., Fitzpatrick J M, et al. A universal system for interactive image-directed neurosurgery. Stereotact Funct Neurosurg 1992; 58: 108–13
  • Schenck J F, Jolesz F A, Roemer P B, et al. Superconducting open-configuration MR imaging system for image-guided therapy. Radiology 1995; 195: 805–14
  • Jolesz F, Kahn T, Lufkin R. Genesis of interventional MRI [editorial]. J Magn Reson Imaging 1998; 8: 2
  • Jolesz F A, Blumenfeld S M. Interventional use of magnetic resonance imaging. Magn Reson Q 1994; 10: 85–96
  • Black P M, Moriarty T, Alexander E, III, et al. Development and imolementation of intraoperative magnetic resonance imaging and its neurosurgical applications. Neurosurgery 1999; 45: 423–31, discussion 43; 1-3
  • Silvermar S G, Jolesz F A, Newman R W, et al. Design and implementation of an interventional MR imaging suite. Am J Roentgenol 1997; 168: 1465–71
  • Corn S B. Anesthesia care of patients in MRI units with special considerations of the anesthetic care of patients in the interventional MRI. Interventional MR: techniques and clinical experience, F A Jolesz, I R Young. Martin Dunitz Ltd, London, UK 1998; 63–9
  • Jolesz F A, Morrison P R, Koran S J, et al. Compatible instrumentation for intraoperative MRI: expanding resources. J Magn Reson Imaging 1998; 8: 8–11
  • Kacher D F, Nabavi A, Kanan A R, et al. Design and implementation of surgical instruments, devices, receiver coils, and patient localizers for intra-operative MRI-guided neurosurgical and neuroablative procedures. Automedica Special Edition: Engineering approaches to neurological surgery 2000, In press
  • Melzer A, Stoeckel D, Busch M, . MR-compatible instruments for interventional MRI. Interventional MRI, R B Lufkin, et al. Mosby Inc., St Louis, MO 1999; 55–69
  • Moriarty T M, Kikinis R, Jolesz F A, et al. Magnetic resonance imaging therapy. Intraoperative MR imaging. Neurosurg Clin N Am 1996; 7: 323–31
  • Romanowski B J. MR-compatible instrumentation. Interventional magnetic resonance imaging, J F Debatin, G Adams. Springer, Heidelberg 1998; 305
  • Hazle J D, Jackson E F, Schomer D F, Leeds N E. Dynamic imaging of intracranial lesions using fast spin-echo imaging: differentiation of brain tumors and treatment effects. J Magn Reson Imaging 1997; 7: 1084–93
  • Schwartz R B, Hsu L, Kacher D F, et al. Intraoperative dynamic MRI: localization of sites of brain tumor recurrence after high-dose radiotherapy. J Magn Reson Imaging 1998; 8: 1085–9
  • Atlas S W, Thulborn K R. MR detection of hyperacute parenchymal hemorrhage of the brain. Am J Neuroradiol 1998; 19: 1471–7
  • Schwartz R B, Hsu L, Wong T Z, et al. Intraoperative MR imaging guidance for intracranial neurosurgery; experience with the first 200 cases. Radiology 1999; 211: 477–88
  • Schwartz R B, Kacher D F, Pergolizzi R S, et al. Evaluation of hyperacute hemorrhage in the intraoperative MR system 1999
  • Kettenbach J, Silverman S G, Hata N, et al. Monitoring and visualization techniques for MR-guided laser ablations in an open MR system. J Magn Reson Imaging 1998; 8: 933–4
  • Silverman S G, Collick B D, Figueira M R, et al. Interactive MR-guided biopsy in an open-configuration MR imaging system [see comments]. Radiology 1995; 197: 175–81
  • Nabavi A, Gering D T, Mehta V, et al. Image-guidance with updated images in the intraoperative MRI. Submitted 2000
  • Hata N, Morrison P R, Kettenbach J, et al. Computer-assisted intra-operative magnetic resonance imaging monitoring of interstitial laser therapy in the brain: a case report. J Biomed Optics 1998; 3: 304–11
  • Moriarty T M, Kikinis R, Jolesz F A, et al. Magnetic resonance imaging therapy. Intraoperative MR imaging. Neurosurg Clin N Am 1996; 7: 323–31
  • Schwartz R B, Hsu L, Black P M, et al. Evaluation of intracranial cysts by intraoperative MR. J Magn Reson Imaging 1998; 8: 807–13
  • Black P M, Ronner S F. Cortical mapping for defining the limits of tumor resection. Neurosurgery 1987; 20: 914–9
  • Ojemann G A, Whitaker H A. Language localization and variability. Brain Lang 1978; 6: 239–60
  • Skirboll S S, Ojemann G A, Berger M S, et al. Functional cortex and subcortical white matter located within gliomas. Neurosurgery 1996; 38: 678–84, discussion 684-5
  • Berger M S, Rostomily R C. Low grade gliomas: functional mapping resection strategies, extent of resection, and outcome. J Neurooncol 1997; 34: 85–101
  • Russel D S, Rubinstein L S. Pathology of tumors of the nervous system. Williams and Wilkins, Baltimore 1998; 6
  • Albert F K, Forsting M, Sartor K, et al. Early postoperative magnetic resonance imaging after resection of malignant glioma: objective evaluation of residual tumor and its influence on regrowth and prognosis [see comments]. Neurosurgery 1994; 34: 45–60, discussion 60-1
  • Forsting M, Albert F K, Kunze S, et al. Extirpation of glioblastomas: MR and CT follow-up of residual tumor and regrowth patterns. Am J Neuroradiol 1993; 14: 77–87
  • Knauth M, Wirtz C R, Tronnier V M, et al. Intraoperative MR imaging increases the extent of tumor resection in patients with high-grade gliomas [see comments]. Am J Neuroradiol 1999; 20: 1642–6
  • Seifert V, Zimmermann M, Trantakis C, et al. Open MRI-guided neurosurgery. Acta Neurochir 1999; 141: 455–64
  • Ferrant M, Nabavi A, Warfield S, et al. Fem for the evaluation of intraoperative brain deformations. Submitted 2000
  • Hata N, Nabavi A, Warfield S, et al. A volumetric optical flow method for measurement of brain deformation from intraoperative magnetic resonance images. Springer, Cambridge, UK 1999; 928–35
  • Paulsen K D, Miga Ml., Kennedy F E, et al. A computational model for tracking subsurface tissue deformation during stereotactic neurosurgery. IEEE Trans Biomed Eng 1999; 46: 213–25
  • Ganslandt O, Steinmeier R, Kober H, et al. Magnetic source imaging combined with image-guided frameless stereotaxy: a new method in surgery around the motor strip. Neurosurgery 1999; 41: 621–7, discussion 627–8
  • Kikinis R, Gleason P L, Moriarty T M, et al. Computer-assisted interactive three-dimensional planning for neurosurgical procedures. Neurosurgery 1996; 38: 640–9, discussion 649–51
  • Steinmeier R, Fahlbusch R, Ganslandt O, et al. Intraoperative magnetic resonance imaging with the magnetom open scanner: concepts, neurosurgical indications, and procedures: a preliminary report. Neurosurgery 1998; 43: 739–47, discussion 747–8
  • Tronnier V, Staubert A, Wirtz R, et al. MRI-guided brain biopsies using a 0.2 Tesla open magnet. Minim Invasive Neurosurg 1999; 42: 118–22
  • Wirtz C R, Bonsanto M M, Knauth M, et al. Intraoperative magnetic resonance imaging to update interactive navigation in neurosurgery: method and preliminary experience. Comput Aided Surg 1997; 2: 172–9
  • Wirtz C R, Tronnier V M, Albert F K, et al. Modified Headholder and operating table for intra-operative MRI in neurosurgery. Neurol Res 1998; 20: 658–61
  • Hall W A, Liu H, Martin A J, et al. Safety, efficacy, and functionality of high-field strength interventional magnetic resonance imaging for neurosurgery. Neurosurgery 2000; 46: 632–42
  • Hall W A, Martin A J, Liu H, et al. High-field strength interventional magnetic resonance imaging for pediatric neurosurgery. Pediatr Neurosurg 1998; 29: 253–9
  • Leblanc P A, Aubry B, Gervin M. Moveable intraoperative magnetic resonance imaging systems in the OR. Aorn J 1999; 70: 254–5, 258–60, 263 passim
  • Sutherland G R, Kaibara T, Louw D, et al. A mobile high-field magnetic resonance system for neurosurgery. J Neurosurg 1999; 91: 804–13
  • Westin C F, Maier S E, Everett P, et al. Image processing for diffusion tensor MRI. Medical Image Anal 2000, submitted
  • Kacher D F, Maier S E, Mamata H, et al. Motion robust imaging for continuous intraoperative MRI. Denver, CO 2000
  • Hynynen K, Vykhodtseva Nl., Chung A H, et al. Thermal effects of focused ultrasound on the brain: determination with MR imaging. Radiology 1997; 204: 247–53

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