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Research ArticleBrain
Open Access

Candidate Biomarkers of Extravascular Extracellular Space: A Direct Comparison of Apparent Diffusion Coefficient and Dynamic Contrast-Enhanced MR Imaging—Derived Measurement of the Volume of the Extravascular Extracellular Space in Glioblastoma Multiforme

S.J. Mills, C. Soh, C.J. Rose, S. Cheung, S. Zhao, G.J.M. Parker and A. Jackson
American Journal of Neuroradiology March 2010, 31 (3) 549-553; DOI: https://doi.org/10.3174/ajnr.A1844
S.J. Mills
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C. Soh
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C.J. Rose
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S. Cheung
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S. Zhao
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G.J.M. Parker
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References

  1. 1.↵
    1. Alexander DC,
    2. Hubbard PL,
    3. Hall MG,
    4. et al
    . Orientationally invariant axon-size and density weighted MRI. In: Proceedings of the International Society for Magnetic Resonance in Medicine, Honolulu, Hawaii. April 18-24, 2009
  2. 2.↵
    1. Sen PN,
    2. Basser PJ
    . A model for diffusion in white matter in the brain. Biophys J 2005;89:2927–38
    CrossRefPubMedWeb of Science
  3. 3.↵
    1. Tofts PS,
    2. Brix G,
    3. Buckley DL,
    4. et al
    . Estimating kinetic parameters from dynamic contrast-enhanced T1-weighted MRI of a diffusable tracer: standardized quantities and symbols. J Magn Reson Imaging 1999;10:223–32
    CrossRefPubMedWeb of Science
  4. 4.↵
    1. Moffat BA,
    2. Chenevert TL,
    3. Lawrence TS,
    4. et al
    . Functional diffusion map: a noninvasive MRI biomarker for early stratification of clinical brain tumor response. Proc Natl Acad Sci U S A 2005;102:5524–29
    Abstract/FREE Full Text
  5. 5.↵
    1. Chenevert TL,
    2. Stegman LD,
    3. Taylor JM,
    4. et al
    . Diffusion magnetic resonance imaging: an early surrogate marker of therapeutic efficacy in brain tumors. J Natl Cancer Inst 2000;92:2029–36
    Abstract/FREE Full Text
  6. 6.↵
    1. Bastin ME,
    2. Carpenter TK,
    3. Armitage PA,
    4. et al
    . Effects of dexamethasone on cerebral perfusion and water diffusion in patients with high-grade glioma. AJNR Am J Neuroradiol 2006;27:402–08
    Abstract/FREE Full Text
  7. 7.↵
    1. Bastin ME,
    2. Delgado M,
    3. Whittle IR,
    4. et al
    . The use of diffusion tensor imaging in quantifying the effect of dexamethasone on brain tumours. Neuroreport 1999;10:1385–91
    PubMed
  8. 8.↵
    1. Sugahara T,
    2. Korogi Y,
    3. Kochi M,
    4. et al
    . Usefulness of diffusion-weighted MRI with echo-planar technique in the evaluation of cellularity in gliomas. J Magn Reson Imaging 1999;9:53–60
    CrossRefPubMedWeb of Science
  9. 9.↵
    1. Kono K,
    2. Inoue Y,
    3. Nakayama K,
    4. et al
    . The role of diffusion-weighted imaging in patients with brain tumors. AJNR Am J Neuroradiol 2001;22:1081–88
    Abstract/FREE Full Text
  10. 10.↵
    1. Guo AC,
    2. Cummings TJ,
    3. Dash RC,
    4. et al
    . Lymphomas and high-grade astrocytomas: comparison of water diffusibility and histologic characteristics. Radiology 2002;224:177–83
    CrossRefPubMedWeb of Science
  11. 11.↵
    1. Yang D,
    2. Korogi Y,
    3. Sugahara T,
    4. et al
    . Cerebral gliomas: prospective comparison of multivoxel 2D chemical-shift imaging proton MR spectroscopy, echoplanar perfusion and diffusion-weighted MRI. Neuroradiology 2002;44:656–66
    CrossRefPubMed
  12. 12.↵
    1. Yamasaki F,
    2. Kurisu K,
    3. Satoh K,
    4. et al
    . Apparent diffusion coefficient of human brain tumors at MR imaging. Radiology 2005;235:985–91
    CrossRefPubMedWeb of Science
  13. 13.↵
    1. Lee EJ,
    2. Lee SK,
    3. Agid R,
    4. et al
    . Preoperative grading of presumptive low-grade astrocytomas on MR imaging: diagnostic value of minimum apparent diffusion coefficient. AJNR Am J Neuroradiol 2008;29:1872–77
    Abstract/FREE Full Text
  14. 14.↵
    1. Ludemann L,
    2. Grieger W,
    3. Wurm R,
    4. et al
    . Quantitative measurement of leakage volume and permeability in gliomas, meningiomas and brain metastases with dynamic contrast-enhanced MRI. Magn Reson Imaging 2005;23:833–41
    CrossRefPubMed
  15. 15.↵
    1. Zhu XP,
    2. Li KL,
    3. Kamaly-Asl ID,
    4. et al
    . Quantification of endothelial permeability, leakage space, and blood volume in brain tumors using combined T1 and T2* contrast-enhanced dynamic MR imaging. J Magn Reson Imaging 2000;11:575–85
    CrossRefPubMedWeb of Science
  16. 16.↵
    1. Ludemann L,
    2. Grieger W,
    3. Wurm R,
    4. et al
    . Comparison of dynamic contrast-enhanced MRI with WHO tumor grading for gliomas. Eur Radiol 2001;11:1231–41
    CrossRefPubMed
  17. 17.↵
    1. Andersen C,
    2. Jensen FT
    . Differences in blood-tumour-barrier leakage of human intracranial tumours: quantitative monitoring of vasogenic oedema and its response to glucocorticoid treatment. Acta Neurochir (Wien) 1998;140:919–24
    CrossRefPubMed
  18. 18.↵
    1. Armitage PA,
    2. Schwindack C,
    3. Bastin ME,
    4. et al
    . Quantitative assessment of intracranial tumor response to dexamethasone using diffusion, perfusion and permeability magnetic resonance imaging. Magn Reson Imaging 2007;25:303–10
    CrossRefPubMedWeb of Science
  19. 19.↵
    1. McMillan KM,
    2. Rogers BP,
    3. Koay CG,
    4. et al
    . An objective method for combining multi-parametric MRI datasets to characterize malignant tumors. Med Phys 2007;34:1053–61
    CrossRefPubMed
  20. 20.↵
    1. Fram EK,
    2. Herfkens RJ,
    3. Johnson GA,
    4. et al
    . Rapid calculation of T1 using variable flip angle gradient refocused imaging. Magn Reson Imaging 1987;5:201–08
    CrossRefPubMedWeb of Science
  21. 21.↵
    1. Tofts PS
    . Modeling tracer kinetics in dynamic Gd-DTPA MR imaging. J Magn Reson Imaging 1997;7:91–101
    CrossRefPubMedWeb of Science
  22. 22.↵
    1. Parker GJ,
    2. Jackson A,
    3. Waterton JC,
    4. et al
    . Automated arterial input function extraction for T1-weighted DCE-MRI. In: Proceedings of the 11th Annual Meeting of International Society for Magnetic Resonance in Medicine, Toronto, Ontario, Canada. July 10–16, 2003:Abstract No. 1264
  23. 23.↵
    1. Jiang H,
    2. van Zijl PC,
    3. Kim J,
    4. et al
    . DTIStudio: resource program for diffusion tensor computation and fiber bundle tracking. Comput Methods Programs Biomed 2006;81:106–16
    CrossRefPubMedWeb of Science
  24. 24.↵
    1. Jenkinson M,
    2. Smith S
    . A global optimisation method for robust affine registration of brain images. Med Image Anal 2001;5:143–56
    CrossRefPubMedWeb of Science
  25. 25.↵
    1. Yankeelov TE,
    2. Lepage M,
    3. Chakravarthy A,
    4. et al
    . Integration of quantitative DCE-MRI and ADC mapping to monitor treatment response in human breast cancer: initial results. Magn Reson Imaging 2007;25:1–13
    CrossRefPubMedWeb of Science
  26. 26.↵
    1. Guo Y,
    2. Cai YQ,
    3. Cai ZL,
    4. et al
    . Differentiation of clinically benign and malignant breast lesions using diffusion-weighted imaging. J Magn Reson Imaging 2002;16:172–78
    CrossRefPubMedWeb of Science
  27. 27.↵
    1. Kinoshita T,
    2. Yashiro N,
    3. Ihara N,
    4. et al
    . Diffusion-weighted half-Fourier single-shot turbo spin echo imaging in breast tumors: differentiation of invasive ductal carcinoma from fibroadenoma. J Comput Assist Tomogr 2002;26:1042–46
    CrossRefPubMed
  28. 28.↵
    1. Kuroki Y,
    2. Nasu K,
    3. Kuroki S,
    4. et al
    . Diffusion-weighted imaging of breast cancer with the sensitivity encoding technique: analysis of the apparent diffusion coefficient value. Magn Reson Med Sci 2004;3:79–85
    CrossRefPubMed
  29. 29.↵
    1. Sinha S,
    2. Lucas-Quesada FA,
    3. Sinha U,
    4. et al
    . In vivo diffusion-weighted MRI of the breast: potential for lesion characterization. J Magn Reson Imaging 2002;15:693–704
    CrossRefPubMedWeb of Science
  30. 30.↵
    1. Woodhams R,
    2. Matsunaga K,
    3. Iwabuchi K,
    4. et al
    . Diffusion-weighted imaging of malignant breast tumors: the usefulness of apparent diffusion coefficient (ADC) value and ADC map for the detection of malignant breast tumors and evaluation of cancer extension. J Comput Assist Tomogr 2005;29:644–49
    CrossRefPubMed
  31. 31.↵
    1. Woodhams R,
    2. Matsunaga K,
    3. Kan S,
    4. et al
    . ADC mapping of benign and malignant breast tumors. Magn Reson Med Sci 2005;4:35–42
    CrossRefPubMed
  32. 32.↵
    1. Norris DG
    . The effects of microscopic tissue parameters on the diffusion weighted magnetic resonance imaging experiment. NMR Biomed 2001;14:77–93
    CrossRefPubMedWeb of Science
  33. 33.↵
    1. Le Bihan D,
    2. Breton E,
    3. Lallemand D,
    4. et al
    . MR imaging of intravoxel incoherent motions: application to diffusion and perfusion in neurologic disorders. Radiology 1986;161:401–07
    CrossRefPubMedWeb of Science
  34. 34.↵
    1. Brunberg JA,
    2. Chenevert TL,
    3. McKeever PE,
    4. et al
    . In vivo MR determination of water diffusion coefficients and diffusion anisotropy: correlation with structural alteration in gliomas of the cerebral hemispheres. AJNR Am J Neuroradiol 1995;16:361–71
    Abstract/FREE Full Text
  35. 35.↵
    1. Sadeghi N,
    2. D'Haene N,
    3. Decaestecker C,
    4. et al
    . Apparent diffusion coefficient and cerebral blood volume in brain gliomas: relation to tumor cell density and tumor microvessel density based on stereotactic biopsies. AJNR Am J Neuroradiol 2008;29:476–82
    Abstract/FREE Full Text
  36. 36.↵
    1. Shellock FG,
    2. Spinazzi A
    . MRI safety update 2008. Part 1. MRI contrast agents and nephrogenic systemic fibrosis. AJR Am J Roentgenol 2008;191:1129–39
    CrossRefPubMedWeb of Science
  37. 37.↵
    1. Bellin MF,
    2. Van Der Molen AJ
    . Extracellular gadolinium-based contrast media: an overview. Eur J Radiol 2008;66:160–67
    CrossRefPubMed
  38. 38.↵
    1. van der Molen AJ,
    2. Bellin MF
    . Extracellular gadolinium-based contrast media: differences in diagnostic efficacy. Eur J Radiol 2008;66:168–74
    CrossRefPubMed
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S.J. Mills, C. Soh, C.J. Rose, S. Cheung, S. Zhao, G.J.M. Parker, A. Jackson
Candidate Biomarkers of Extravascular Extracellular Space: A Direct Comparison of Apparent Diffusion Coefficient and Dynamic Contrast-Enhanced MR Imaging—Derived Measurement of the Volume of the Extravascular Extracellular Space in Glioblastoma Multiforme
American Journal of Neuroradiology Mar 2010, 31 (3) 549-553; DOI: 10.3174/ajnr.A1844

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Candidate Biomarkers of Extravascular Extracellular Space: A Direct Comparison of Apparent Diffusion Coefficient and Dynamic Contrast-Enhanced MR Imaging—Derived Measurement of the Volume of the Extravascular Extracellular Space in Glioblastoma Multiforme
S.J. Mills, C. Soh, C.J. Rose, S. Cheung, S. Zhao, G.J.M. Parker, A. Jackson
American Journal of Neuroradiology Mar 2010, 31 (3) 549-553; DOI: 10.3174/ajnr.A1844
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