Literature DB >> 17544593

Diffusion tensor magnetic resonance imaging finding of discrepant fractional anisotropy between the frontal and parietal lobes after whole-brain irradiation in childhood medulloblastoma survivors: reflection of regional white matter radiosensitivity?

Deqiang Qiu1, Dora L W Kwong, Godfrey C F Chan, Lucullus H T Leung, Pek-Lan Khong.   

Abstract

PURPOSE: To test the hypothesis that fractional anisotropy (FA) is more severely reduced in white matter of the frontal lobe compared with the parietal lobe after receiving the same whole-brain irradiation dose in a cohort of childhood medulloblastoma survivors. METHODS AND MATERIALS: Twenty-two medulloblastoma survivors (15 male, mean [+/- SD] age = 12.1 +/- 4.6 years) and the same number of control subjects (15 male, aged 12.0 +/- 4.2 years) were recruited for diffusion tensor magnetic resonance imaging scans. Using an automated tissue classification method and the Talairach Daemon atlas, FA values of frontal and parietal lobes receiving the same radiation dose, and the ratio between them were quantified and denoted as FFA, PFA, and FA(f/p), respectively. The Mann-Whitney U test was used to test for significant differences of FFA, PFA, and FA(f/p) between medulloblastoma survivors and control subjects.
RESULTS: Frontal lobe and parietal lobe white matter FA were found to be significantly less in medulloblastoma survivors compared with control subjects (frontal p = 0.001, parietal p = 0.026). Moreover, these differences were found to be discrepant, with the frontal lobe having a significantly larger difference in FA compared with the parietal lobe. The FA(f/p) of control and medulloblastoma survivors was 1.110 and 1.082, respectively (p = 0.029).
CONCLUSION: Discrepant FA changes after the same irradiation dose suggest radiosensitivity of the frontal lobe white matter compared with the parietal lobe. Special efforts to address the potentially vulnerable frontal lobe after treatment with whole-brain radiation may be needed so as to balance disease control and treatment-related morbidity.

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Year:  2007        PMID: 17544593     DOI: 10.1016/j.ijrobp.2007.04.041

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


  37 in total

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Authors:  Nicole Law; Mark Greenberg; Eric Bouffet; Suzanne Laughlin; Michael D Taylor; David Malkin; Fang Liu; Iska Moxon-Emre; Nadia Scantlebury; Jovanka Skocic; Donald Mabbott
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2.  Effects of Surgery and Proton Therapy on Cerebral White Matter of Craniopharyngioma Patients.

Authors:  Jinsoo Uh; Thomas E Merchant; Yimei Li; Xingyu Li; Noah D Sabin; Daniel J Indelicato; Robert J Ogg; Frederick A Boop; John A Jane; Chiaho Hua
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3.  Serial diffusion tensor imaging to characterize radiation-induced changes in normal-appearing white matter following radiotherapy in patients with adult low-grade gliomas.

Authors:  Mohammad Haris; Shaleen Kumar; Mani Karthick Raj; Koilpillai Joseph Maria Das; Shantanu Sapru; Sanjay Behari; Ram Kishore Singh Rathore; Ponnada A Narayana; Rakesh Kumar Gupta
Journal:  Radiat Med       Date:  2008-04

Review 4.  Neurodevelopmental consequences of pediatric cancer and its treatment: applying an early adversity framework to understanding cognitive, behavioral, and emotional outcomes.

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5.  Long-term effects of radiation therapy on white matter of the corpus callosum: a diffusion tensor imaging study in children.

Authors:  Monwabisi Makola; M Douglas Ris; E Mark Mahone; Keith Owen Yeates; Kim M Cecil
Journal:  Pediatr Radiol       Date:  2017-08-26

6.  The Relationship Between Spirituality and the Developing Brain: A Framework for Pediatric Oncology.

Authors:  Rachel S Werk; David M Steinhorn; Andrew Newberg
Journal:  J Relig Health       Date:  2021-02

Review 7.  Imaging radiation-induced normal tissue injury.

Authors:  Mike E Robbins; Judy K Brunso-Bechtold; Ann M Peiffer; Christina I Tsien; Janet E Bailey; Lawrence B Marks
Journal:  Radiat Res       Date:  2012-02-21       Impact factor: 2.841

8.  Cerebral white matter integrity and executive function in adult survivors of childhood medulloblastoma.

Authors:  Tara M Brinkman; Wilburn E Reddick; Joshua Luxton; John O Glass; Noah D Sabin; Deo Kumar Srivastava; Leslie L Robison; Melissa M Hudson; Kevin R Krull
Journal:  Neuro Oncol       Date:  2012-09       Impact factor: 12.300

9.  Differences in brainstem fiber tract response to radiation: a longitudinal diffusion tensor imaging study.

Authors:  Jinsoo Uh; Thomas E Merchant; Yimei Li; Tianshu Feng; Amar Gajjar; Robert J Ogg; Chiaho Hua
Journal:  Int J Radiat Oncol Biol Phys       Date:  2013-03-06       Impact factor: 7.038

10.  Radiation induced brain injury: assessment of white matter tracts in a pre-clinical animal model using diffusion tensor MR imaging.

Authors:  Silun Wang; Deqiang Qiu; Kwok-Fai So; Ed X Wu; Lucullus H T Leung; Jing Gu; Pek-Lan Khong
Journal:  J Neurooncol       Date:  2013-01-20       Impact factor: 4.130

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