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Model-based evaluation of image-guided fractionated whole-brain radiation therapy in pediatric diffuse intrinsic pontine glioma xenografts.

Authors :
Husband HR
Campagne O
He C
Zhu X
Bianski BM
Baker SJ
Shelat AA
Tinkle CL
Stewart CF
Source :
CPT: pharmacometrics & systems pharmacology [CPT Pharmacometrics Syst Pharmacol] 2021 Jun; Vol. 10 (6), pp. 599-610. Date of Electronic Publication: 2021 May 03.
Publication Year :
2021

Abstract

Radiation therapy (RT) is currently the standard treatment for diffuse intrinsic pontine glioma (DIPG), the most common cause of death in children with brain cancer. A pharmacodynamic model was developed to describe the radiation-induced tumor shrinkage and overall survival in mice bearing DIPG. CD1-nude mice were implanted in the brain cortex with luciferase-labeled patient-derived orthotopic xenografts of DIPG (SJDIPGx7 H3F3A <superscript>WT</superscript> <superscript>/</superscript> <superscript>K27 M</superscript> and SJDIPGx37 H3F3A <superscript>K27M</superscript> <superscript>/</superscript> <superscript>K27M</superscript> ). Mice were treated with image-guided whole-brain RT at 1 or 2 Gy/fraction 5-days-on 2-days-off for a cumulative dose of 20 or 54 Gy. Tumor progression was monitored with bioluminescent imaging (BLI). A mathematical model describing BLI and overall survival was developed with data from mice receiving 2 Gy/fraction and validated using data from mice receiving 1 Gy/fraction. BLI data were adequately fitted with a logistic tumor growth function and a signal distribution model with linear radiation-induced killing effect. A higher tumor growth rate in SJDIPGx37 versus SJDIPGx7 xenografts and a killing effect decreasing with higher tumor baseline (p < 0.0001) were identified. Cumulative radiation dose was suggested to inhibit the tumor growth rate according to a Hill function. Survival distribution was best described with a Weibull hazard function in which the hazard baseline was a continuous function of tumor BLI. Significant differences were further identified between DIPG cell lines and untreated versus treated mice. The model was adequately validated with mice receiving 1 Gy/fraction and will be useful in guiding future preclinical trials incorporating radiation and to support systemic combination therapies with RT.<br /> (© 2021 The Authors. CPT: Pharmacometrics & Systems Pharmacology published by Wiley Periodicals LLC on behalf of American Society for Clinical Pharmacology and Therapeutics.)

Details

Language :
English
ISSN :
2163-8306
Volume :
10
Issue :
6
Database :
MEDLINE
Journal :
CPT: pharmacometrics & systems pharmacology
Publication Type :
Academic Journal
Accession number :
33939327
Full Text :
https://doi.org/10.1002/psp4.12627