Literature DB >> 18313524

Radiation-induced changes in normal-appearing white matter in patients with cerebral tumors: a diffusion tensor imaging study.

Vijaya Nagesh1, Christina I Tsien, Thomas L Chenevert, Brian D Ross, Theodore S Lawrence, Larry Junick, Yue Cao.   

Abstract

PURPOSE: To quantify the radiation-induced changes in normal-appearing white matter before, during, and after radiotherapy (RT) in cerebral tumor patients. METHODS AND MATERIALS: Twenty-five patients with low-grade glioma, high-grade glioma, or benign tumor treated with RT were studied using diffusion tensor magnetic resonance imaging. The biologically corrected doses ranged from 50 to 81 Gy. The temporal changes were assessed before, during, and to 45 weeks after the start of RT. The mean diffusivity of water (<D>), fractional anisotropy of diffusion, diffusivity perpendicular (lambdaperpendicular) and parallel (lambda||) to white matter fibers were calculated in normal-appearing genu and splenium of the corpus callosum.
RESULTS: In the genu and splenium, fractional anisotropy decreased and <D>, lambda||, lambdaperpendicular increased linearly and significantly with time (p<0.01). At 45 weeks after the start of RT, lambdaperpendicular had increased approximately 30% in the genu and splenium, and lambda|| had increased 5% in the genu and 9% in the splenium, suggesting that demyelination is predominant. The increases in lambdaperpendicular and lambda|| were dose dependent, starting at 3 weeks and continuing to 32 weeks from the start of RT. The dose-dependent increase in lambdaperpendicular and lambda|| was not sustained after 32 weeks, indicating the transition from focal to diffuse effects.
CONCLUSION: The acute and subacute changes in normal-appearing white matter fibers indicate radiation-induced demyelination and mild structural degradation of axonal fibers. The structural changes after RT are progressive, with early dose-dependent demyelination and subsequent diffuse dose-independent demyelination and mild axonal degradation. Diffusion tensor magnetic resonance imaging is potentially a biomarker for the assessment of radiation-induced white matter injury.

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Year:  2008        PMID: 18313524      PMCID: PMC2376211          DOI: 10.1016/j.ijrobp.2007.08.020

Source DB:  PubMed          Journal:  Int J Radiat Oncol Biol Phys        ISSN: 0360-3016            Impact factor:   7.038


  43 in total

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2.  Diffusion tensor MR imaging of the human brain.

Authors:  C Pierpaoli; P Jezzard; P J Basser; A Barnett; G Di Chiro
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3.  Evaluation of peritumoral edema in the delineation of radiotherapy clinical target volumes for glioblastoma.

Authors:  Eric L Chang; Serap Akyurek; Tedde Avalos; Neal Rebueno; Chris Spicer; John Garcia; Robin Famiglietti; Pamela K Allen; K S Clifford Chao; Anita Mahajan; Shiao Y Woo; Moshe H Maor
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Review 4.  Neurological complications of radiotherapy and chemotherapy.

Authors:  F Keime-Guibert; M Napolitano; J Y Delattre
Journal:  J Neurol       Date:  1998-11       Impact factor: 4.849

5.  A simplified method to measure the diffusion tensor from seven MR images.

Authors:  P J Basser; C Pierpaoli
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6.  Normal brain maturation during childhood: developmental trends characterized with diffusion-tensor MR imaging.

Authors:  P Mukherjee; J H Miller; J S Shimony; T E Conturo; B C Lee; C R Almli; R C McKinstry
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7.  Radiotherapeutic effects on brain function: double dissociation of memory systems.

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Review 8.  The morphologic effects of radiation administered therapeutically for intracranial gliomas: a postmortem study of 25 cases.

Authors:  P C Burger; M S Mahley; L Dudka; F S Vogel
Journal:  Cancer       Date:  1979-10       Impact factor: 6.860

9.  Cerebral radiation necrosis following treatment of extracranial malignancies.

Authors:  J P Glass; T L Hwang; M E Leavens; H I Libshitz
Journal:  Cancer       Date:  1984-11-01       Impact factor: 6.860

Review 10.  Radiation response of the central nervous system.

Authors:  T E Schultheiss; L E Kun; K K Ang; L C Stephens
Journal:  Int J Radiat Oncol Biol Phys       Date:  1995-03-30       Impact factor: 7.038

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  62 in total

1.  Effects of Surgery and Proton Therapy on Cerebral White Matter of Craniopharyngioma Patients.

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Review 2.  Treatment induced necrosis versus recurrent/progressing brain tumor: going beyond the boundaries of conventional morphologic imaging.

Authors:  Rajan Jain; Jayant Narang; Pia M Sundgren; David Hearshen; Sona Saksena; Jack P Rock; Jorge Gutierrez; Tom Mikkelsen
Journal:  J Neurooncol       Date:  2010-02-24       Impact factor: 4.130

3.  7-Tesla susceptibility-weighted imaging to assess the effects of radiotherapy on normal-appearing brain in patients with glioma.

Authors:  Janine M Lupo; Cynthia F Chuang; Susan M Chang; Igor J Barani; Bert Jimenez; Christopher P Hess; Sarah J Nelson
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4.  Quantitative Imaging Biomarkers of Damage to Critical Memory Regions Are Associated With Post-Radiation Therapy Memory Performance in Brain Tumor Patients.

Authors:  Kathryn R Tringale; Tanya T Nguyen; Roshan Karunamuni; Tyler Seibert; Minh-Phuong Huynh-Le; Michael Connor; Vitali Moiseenko; Mary Kay Gorman; Anisa Marshall; Michelle Devereux Tibbs; Nikdokht Farid; Daniel Simpson; Parag Sanghvi; Carrie R McDonald; Jona A Hattangadi-Gluth
Journal:  Int J Radiat Oncol Biol Phys       Date:  2019-08-10       Impact factor: 7.038

5.  Dose-dependent white matter damage after brain radiotherapy.

Authors:  Michael Connor; Roshan Karunamuni; Carrie McDonald; Nathan White; Niclas Pettersson; Vitali Moiseenko; Tyler Seibert; Deborah Marshall; Laura Cervino; Hauke Bartsch; Joshua Kuperman; Vyacheslav Murzin; Anitha Krishnan; Nikdokht Farid; Anders Dale; Jona Hattangadi-Gluth
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6.  Radiation therapy effects on white matter fiber tracts of the limbic circuit.

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Review 9.  Clinical applications for diffusion magnetic resonance imaging in radiotherapy.

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10.  A longitudinal magnetic resonance elastography study of murine brain tumors following radiation therapy.

Authors:  Y Feng; E H Clayton; R J Okamoto; J Engelbach; P V Bayly; J R Garbow
Journal:  Phys Med Biol       Date:  2016-07-27       Impact factor: 3.609

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