Literature DB >> 27933657

Analysis of temozolomide resistance in low-grade gliomas using a mechanistic mathematical model.

Edouard Ollier1,2,3, Pauline Mazzocco1, Damien Ricard4,5, Gentian Kaloshi6,7,8, Ahmed Idbaih6,7,8, Agusti Alentorn6,7,8, Dimitri Psimaras6,7,8, Jérôme Honnorat9,10,11, Jean-Yves Delattre6,7,8, Emmanuel Grenier1, François Ducray9,10,12, Adeline Samson3.   

Abstract

Understanding how tumors develop resistance to chemotherapy is a major issue in oncology. When treated with temozolomide (TMZ), an oral alkylating chemotherapy drug, most low-grade gliomas (LGG) show an initial volume decrease but this effect is rarely long lasting. In addition, it has been suggested that TMZ may drive tumor progression in a subset of patients as a result of acquired resistance. Using longitudinal tumor size measurements from 121 patients, the aim of this study was to develop a semi-mechanistic mathematical model to determine whether resistance of LGG to TMZ was more likely to result from primary and/or from chemotherapy-induced acquired resistance that may contribute to tumor progression. We applied the model to a series of patients treated upfront with TMZ (n = 109) or PCV (procarbazine, CCNU, vincristine) chemotherapy (n = 12) and used a population mixture approach to classify patients according to the mechanism of resistance most likely to explain individual tumor growth dynamics. Our modeling results predicted acquired resistance in 51% of LGG treated with TMZ. In agreement with the different biological effects of nitrosoureas, none of the patients treated with PCV were classified in the acquired resistance group. Consistent with the mutational analysis of recurrent LGG, analysis of growth dynamics using mathematical modeling suggested that in a subset of patients, TMZ might paradoxically contribute to tumor progression as a result of chemotherapy-induced resistance. Identification of patients at risk of developing acquired resistance is warranted to better define the role of TMZ in LGG.
© 2016 Société Française de Pharmacologie et de Thérapeutique.

Entities:  

Keywords:  low-grade glioma; mathematical model; resistance; temozolomide; tumor growth inhibition

Mesh:

Substances:

Year:  2017        PMID: 27933657     DOI: 10.1111/fcp.12259

Source DB:  PubMed          Journal:  Fundam Clin Pharmacol        ISSN: 0767-3981            Impact factor:   2.748


  4 in total

1.  Tumor growth inhibition modeling of individual lesion dynamics and interorgan variability in HER2-negative breast cancer patients treated with docetaxel.

Authors:  Sreenath M Krishnan; Sofiene S Laarif; Brendan C Bender; Angelica L Quartino; Lena E Friberg
Journal:  CPT Pharmacometrics Syst Pharmacol       Date:  2021-05-02

2.  Computational design of improved standardized chemotherapy protocols for grade II oligodendrogliomas.

Authors:  Víctor M Pérez-García; Luis E Ayala-Hernández; Juan Belmonte-Beitia; Philippe Schucht; Michael Murek; Andreas Raabe; Juan Sepúlveda
Journal:  PLoS Comput Biol       Date:  2019-07-15       Impact factor: 4.475

Review 3.  A Review of Mathematical Models for Tumor Dynamics and Treatment Resistance Evolution of Solid Tumors.

Authors:  Anyue Yin; Dirk Jan A R Moes; Johan G C van Hasselt; Jesse J Swen; Henk-Jan Guchelaar
Journal:  CPT Pharmacometrics Syst Pharmacol       Date:  2019-08-09

4.  Mechanisms and therapeutic implications of hypermutation in gliomas.

Authors:  Mehdi Touat; Yvonne Y Li; Adam N Boynton; Liam F Spurr; J Bryan Iorgulescu; Craig L Bohrson; Isidro Cortes-Ciriano; Cristina Birzu; Jack E Geduldig; Kristine Pelton; Mary Jane Lim-Fat; Sangita Pal; Ruben Ferrer-Luna; Shakti H Ramkissoon; Frank Dubois; Charlotte Bellamy; Naomi Currimjee; Juliana Bonardi; Kenin Qian; Patricia Ho; Seth Malinowski; Leon Taquet; Robert E Jones; Aniket Shetty; Kin-Hoe Chow; Radwa Sharaf; Dean Pavlick; Lee A Albacker; Nadia Younan; Capucine Baldini; Maïté Verreault; Marine Giry; Erell Guillerm; Samy Ammari; Frédéric Beuvon; Karima Mokhtari; Agusti Alentorn; Caroline Dehais; Caroline Houillier; Florence Laigle-Donadey; Dimitri Psimaras; Eudocia Q Lee; Lakshmi Nayak; J Ricardo McFaline-Figueroa; Alexandre Carpentier; Philippe Cornu; Laurent Capelle; Bertrand Mathon; Jill S Barnholtz-Sloan; Arnab Chakravarti; Wenya Linda Bi; E Antonio Chiocca; Katie Pricola Fehnel; Sanda Alexandrescu; Susan N Chi; Daphne Haas-Kogan; Tracy T Batchelor; Garrett M Frampton; Brian M Alexander; Raymond Y Huang; Azra H Ligon; Florence Coulet; Jean-Yves Delattre; Khê Hoang-Xuan; David M Meredith; Sandro Santagata; Alex Duval; Marc Sanson; Andrew D Cherniack; Patrick Y Wen; David A Reardon; Aurélien Marabelle; Peter J Park; Ahmed Idbaih; Rameen Beroukhim; Pratiti Bandopadhayay; Franck Bielle; Keith L Ligon
Journal:  Nature       Date:  2020-04-15       Impact factor: 49.962

  4 in total

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