• français
    • English
    français
  • Login
Help
View Item 
  •   Home
  • Institut de Biomécanique Humaine Georges Charpak (IBHGC)
  • View Item
  • Home
  • Institut de Biomécanique Humaine Georges Charpak (IBHGC)
  • View Item
JavaScript is disabled for your browser. Some features of this site may not work without it.

Non-operable glioblastoma: Proposition of patient-specific forecasting by image-informed poromechanical model

Article dans une revue avec comité de lecture
Author
ccURCUN, Stéphane
259761 Université de Bordeaux [UB]
1001017 Institut de Biomécanique Humaine Georges Charpak [IBHGC]
ccBAROLI, Davide
158767 Computational Materials Engineering [Aachen]
301897 Università della Svizzera italiana = University of Italian Switzerland [USI]
303510 RWTH Aachen University = Rheinisch-Westfälische Technische Hochschule Aachen [RWTH Aachen]
ccROHAN, Pierre-Yves
1001017 Institut de Biomécanique Humaine Georges Charpak [IBHGC]
ccSKALLI, Wafa
1001017 Institut de Biomécanique Humaine Georges Charpak [IBHGC]
ccLUBRANO, Vincent
300075 Centre Hospitalier Universitaire de Toulouse [CHU Toulouse]
BORDAS, Stéphane Pierre Alain
ccSCIUME, Giuseppe
259761 Université de Bordeaux [UB]

URI
http://hdl.handle.net/10985/25444
DOI
10.1016/j.brain.2023.100067
Date
2023-03
Journal
Brain Multiphysics

Abstract

We propose a novel image-informed glioblastoma mathematical model within a reactive multiphase poromechanical framework. Poromechanics offers to model in a coupled manner the interplay between tissue deformation and pressure-driven fluid flows, these phenomena existing simultaneously in cancer disease. The model also relies on two mechano-biological hypotheses responsible for the heterogeneity of the GBM: hypoxia signaling cascade and interaction between extra-cellular matrix and tumor cells. The model belongs to the category of patient-specific image-informed models as it is initialized, calibrated and evaluated by the means of patient imaging data. The model is calibrated with patient data after 6 cycles of concomitant radiotherapy chemotherapy and shows good agreement with treatment response 3 months after chemotherapy maintenance. Sensitivity of the solution to parameters and to boundary conditions is provided. As this work is only a first step of the inclusion of poromechanical framework in image-informed glioblastoma mathematical models, leads of improvement are provided in the conclusion. Statement of significance: In this study, we employ mechanics of reactive porous media to effectively model the dynamic progression of a glioblastoma. Traditionally, glioblastoma tumors are surgically removed a few weeks post-diagnosis. To address this, we focus on a non-operable clinical scenario which allows us to have sufficient time points for the calibration and subsequent validation of our mathematical model. It is paramount to underscore that the tumor’s evolution is significantly influenced by chemotherapy and radiotherapy. These therapeutic effects find incorporation within our mathematical framework. Notably, the approach we present is distinctive for two key reasons: Firstly, the mathematical model inherently captures the complex multiphase and hierarchical nature of brain tissue. Secondly, our constitutive laws factor in the ever-changing properties of cells and tissues, mirroring the local phenotypic alterations observed within the tumor. This work constitutes an initial stride towards systematically integrating multiphase poromechanics into patient-specific glioblastoma growth modeling. As we look ahead, we acknowledge areas for potential enhancement in pursuit of advancing this promising direction.

Files in this item

Name:
IBHGC_BM_2023_URCUN.pdf
Size:
9.083Mb
Format:
PDF
Description:
Non-operable glioblastoma IDH ...
View/Open
CC BY-NC-ND
This document is available under CC BY-NC-ND license

Collections

  • Institut de Biomécanique Humaine Georges Charpak (IBHGC)

Related items

Showing items related by title, author, creator and subject.

  • Oncology and mechanics: Landmark studies and promising clinical applications 
    Article dans une revue avec comité de lecture
    ccURCUN, Stéphane; LORENZO, Guillermo; ccBAROLI, Davide; ccROHAN, Pierre-Yves; ccSCIUME, Giuseppe; ccSKALLI, Wafa; ccLUBRANO, Vincent; BORDAS, Stéphane Pierre Alain (Elsevier, 2022-06)
    Clinical management of cancer has continuously evolved for several decades. Biochemical, molecular, and genomics approaches have brought and still bring numerous insights into cancerous diseases. It is now accepted that ...
  • Single and bi-compartment poro-elastic model of perfused biological soft tissues: FEniCSx implementation and tutorial 
    Article dans une revue avec comité de lecture
    LAVIGNE, Thomas; ccURCUN, Stéphane; ccROHAN, Pierre-Yves; ccSCIUME, Giuseppe; ccBAROLI, Davide; BORDAS, Stéphane Pierre Alain (Elsevier, 2023-05)
    Soft biological tissues demonstrate strong time-dependent and strain-rate mechanical behavior, arising from their intrinsic visco-elasticity and fluid–solid interactions. The time-dependent mechanical properties of soft ...
  • Digital twinning of Cellular Capsule Technology: Emerging outcomes from the perspective of porous media mechanics 
    Article dans une revue avec comité de lecture
    URCUN, Stéphane; ccSKALLI, Wafa; NASSOY, Pierre; BORDAS, Stéphane Pierre Alain; SCIUMÈ, Giuseppe; ccROHAN, Pierre-Yves (Public Library of Science (PLoS), 2021)
    Spheroids encapsulated within alginate capsules are emerging as suitable in vitro tools to investigate the impact of mechanical forces on tumor growth since the internal tumor pressure can be retrieved from the deformation ...
  • Cortex tissue relaxation and slow to medium load rates dependency can be captured by a two-phase flow poroelastic model 
    Article dans une revue avec comité de lecture
    URCUN, Stéphane; ROHAN, Pierre-Yves; SCIUMÈ, Giuseppe; BORDAS, Stéphane P.A. (Elsevier BV, 2021)
    This paper investigates the complex time-dependent behavior of cortex tissue, under adiabatic condition, using a two-phase flow poroelastic model. Motivated by experiments and Biot’s consolidation theory, we tackle ...
  • Cortex tissue relaxation and slow to medium load rates dependency can be captured by a two-phase flow poroelastic model 
    Article dans une revue avec comité de lecture
    URCUN, Stéphane; SCIUMÈ, Giuseppe; BORDAS, Stéphane P.A.; ccROHAN, Pierre-Yves (Elsevier BV, 2021)
    This paper investigates the complex time-dependent behavior of cortex tissue, under adiabatic condition, using a two-phase flow poroelastic model. Motivated by experiments and Biot’s consolidation theory, we tackle ...

Browse

All SAMCommunities & CollectionsAuthorsIssue DateCenter / InstitutionThis CollectionAuthorsIssue DateCenter / Institution

Newsletter

Latest newsletterPrevious newsletters

Statistics

Most Popular ItemsStatistics by CountryMost Popular Authors

ÉCOLE NATIONALE SUPERIEURE D'ARTS ET METIERS

  • Contact
  • Mentions légales

ÉCOLE NATIONALE SUPERIEURE D'ARTS ET METIERS

  • Contact
  • Mentions légales