Modelling glioblastoma resistance to temozolomide. A mathematical model to simulate cellular adaptation in vitro

Marina Pérez-Aliacar1, Jacobo Ayensa-Jiménez2, Teodora Ranđelović3

  • 1Mechanical Engineering Department, School of Engineering and Architecture, University of Zaragoza, C/ Maria de Luna, Zaragoza, 50018, Spain; Engineering Research Institute of Aragón (I3A), University of Zaragoza, C/ Mariano Esquillor, Zaragoza, 50018, Spain.

PubMed

Insights

Mathematical models and 3D experiments reveal how glioblastoma cells adapt to temozolomide, offering insights into drug resistance mechanisms for improved cancer treatment strategies.

Area of Science:

  • Oncology
  • Mathematical Biology
  • Cancer Research

Background:

  • Drug resistance is a major obstacle in cancer therapy, particularly in glioblastoma, the deadliest brain tumor.
  • Resistance to temozolomide, the standard chemotherapy for glioblastoma, leads to treatment failure and poor patient outcomes.

Purpose of the Study:

  • To develop and validate a mathematical model simulating glioblastoma spheroid adaptation to temozolomide.
  • To understand the mechanisms of acquired drug resistance using a combination of in vitro experiments and computational modeling.

Main Methods:

  • Utilized three-dimensional in vitro glioblastoma spheroid models exposed to temozolomide.
  • Developed a novel mathematical model incorporating internal variables to describe phenotypic changes and drug resistance acquisition.
  • Employed model selection and calibration to match experimental data, followed by sensitivity analysis.

Main Results:

  • Achieved high agreement between experimental (in vitro) and computational (in silico) results.
  • Identified key model parameters influencing drug resistance predictions.
  • Demonstrated the model's utility in exploring intrinsic adaptation mechanisms and distinguishing sensitive from resistant cell populations.

Conclusions:

  • The integrated in silico and experimental framework enhances understanding of glioblastoma drug resistance.
  • This approach can inform the development of novel therapeutic strategies and treatment guidelines for glioblastoma.

Related Concept Videos