Literature DB >> 29889805

Early Axial Growth Outcomes of Pediatric Patients Receiving Proton Craniospinal Irradiation.

Brian De1,2, Oren Cahlon1,2, Kevin Sine2, Dennis Mah2, Eugen B Hug2, Suzanne L Wolden1,2.   

Abstract

Guidelines on proton craniospinal irradiation (p-CSI) target volume selection in children are lacking. We examined the impact of target volume selection on growth of children receiving p-CSI at a institution. Records of 58 patients who received p-CSI were reviewed. Median age at treatment initiation was 8 years (range, 2 to 18 y). Spinal target volumes included whole vertebral body (WVB) in 67% and partial vertebral body (PVB) in 33%. Height z-scores before and after p-CSI were assessed using Centers for Disease Control and Prevention stature-for-age charts. Maximal Cobb angle and height z-score change were compared for WVB versus PVB p-CSI using a t test. Among 93% of patients with detailed data, median follow-up was 19 months (range, 2 to 58 mo) after radiation therapy initiation. Quantitative growth evaluations were available for 64% of patients. Median change in height z-score was -0.5 (range, -2.1 to +0.7) after treatment, representing a decrease (P<0.001) in age-adjusted height. WVB patients had significantly greater reduction in height z-score versus PVB patients (P=0.004) but no difference in Cobb angle change (P>0.05). Despite reluctance surrounding its use in younger patients, PVB p-CSI was associated with similar spinal curvature and less growth suppression as compared with WVB p-CSI; a trial comparing WVB versus PVB in children may be warranted.

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Year:  2018        PMID: 29889805      PMCID: PMC6197896          DOI: 10.1097/MPH.0000000000001242

Source DB:  PubMed          Journal:  J Pediatr Hematol Oncol        ISSN: 1077-4114            Impact factor:   1.289


  28 in total

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Review 2.  Radiographic evaluation of scoliosis: review.

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Journal:  Curr Pediatr Rev       Date:  2014

4.  Towards clinical application: prompt gamma imaging of passively scattered proton fields with a knife-edge slit camera.

Authors:  M Priegnitz; S Barczyk; L Nenoff; C Golnik; I Keitz; T Werner; S Mein; J Smeets; F Vander Stappen; G Janssens; L Hotoiu; F Fiedler; D Prieels; W Enghardt; G Pausch; C Richter
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6.  Effect of spinal irradiation on growth.

Authors:  S M Shalet; B Gibson; R Swindell; D Pearson
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7.  Long-term toxic effects of proton radiotherapy for paediatric medulloblastoma: a phase 2 single-arm study.

Authors:  Torunn I Yock; Beow Y Yeap; David H Ebb; Elizabeth Weyman; Bree R Eaton; Nicole A Sherry; Robin M Jones; Shannon M MacDonald; Margaret B Pulsifer; Beverly Lavally; Annah N Abrams; Mary S Huang; Karen J Marcus; Nancy J Tarbell
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Review 8.  Range uncertainties in proton therapy and the role of Monte Carlo simulations.

Authors:  Harald Paganetti
Journal:  Phys Med Biol       Date:  2012-05-09       Impact factor: 3.609

9.  Comparison of therapeutic dosimetric data from passively scattered proton and photon craniospinal irradiations for medulloblastoma.

Authors:  Rebecca M Howell; Annelise Giebeler; Wendi Koontz-Raisig; Anita Mahajan; Carol J Etzel; Anthony M D'Amelio; Kenneth L Homann; Wayne D Newhauser
Journal:  Radiat Oncol       Date:  2012-07-24       Impact factor: 3.481

10.  Effects of vertebral-body-sparing proton craniospinal irradiation on the spine of young pediatric patients with medulloblastoma.

Authors:  Iain MacEwan; Brian Chou; Jeremy Moretz; Lilia Loredo; David Bush; Jerry D Slater
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  1 in total

1.  Practice Patterns Among Radiation Oncologists Treating Pediatric Patients With Proton Craniospinal Irradiation.

Authors:  Sara Medek; Brian De; Luke Pater; John Breneman; Anita Mahajan; Suzanne Wolden; Ralph E Vatner
Journal:  Pract Radiat Oncol       Date:  2019-07-04
  1 in total

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