Literature DB >> 31441222

An approach for vascular tumor growth based on a hybrid embedded/homogenized treatment of the vasculature within a multiphase porous medium model.

Johannes Kremheller1, Anh-Tu Vuong1, Bernhard A Schrefler2,3, Wolfgang A Wall1.   

Abstract

The aim of this work is to develop a novel computational approach to facilitate the modeling of angiogenesis during tumor growth. The preexisting vasculature is modeled as a 1D inclusion and embedded into the 3D tissue through a suitable coupling method, which allows for nonmatching meshes in 1D and 3D domain. The neovasculature, which is formed during angiogenesis, is represented in a homogenized way as a phase in our multiphase porous medium system. This splitting of models is motivated by the highly complex morphology, physiology, and flow patterns in the neovasculature, which are challenging and computationally expensive to resolve with a discrete, 1D angiogenesis and blood flow model. Moreover, it is questionable if a discrete representation generates any useful additional insight. By contrast, our model may be classified as a hybrid vascular multiphase tumor growth model in the sense that a discrete, 1D representation of the preexisting vasculature is coupled with a continuum model describing angiogenesis. It is based on an originally avascular model which has been derived via the thermodynamically constrained averaging theory. The new model enables us to study mass transport from the preexisting vasculature into the neovasculature and tumor tissue. We show by means of several illustrative examples that it is indeed capable of reproducing important aspects of vascular tumor growth phenomenologically.
© 2019 The Authors. International Journal for Numerical Methods in Biomedical Engineering published by John Wiley & Sons Ltd.

Entities:  

Keywords:  1D-3D coupling; angiogenesis; multiscale models; nonconforming coupling; vascular tumor growth

Mesh:

Year:  2019        PMID: 31441222     DOI: 10.1002/cnm.3253

Source DB:  PubMed          Journal:  Int J Numer Method Biomed Eng        ISSN: 2040-7939            Impact factor:   2.747


  3 in total

1.  A continuum mechanical framework for modeling tumor growth and treatment in two- and three-phase systems.

Authors:  Cass T Miller; William G Gray; Bernhard A Schrefler
Journal:  Arch Appl Mech       Date:  2021-06-09       Impact factor: 2.467

2.  Extension of a multiphase tumour growth model to study nanoparticle delivery to solid tumours.

Authors:  Barbara Wirthl; Johannes Kremheller; Bernhard A Schrefler; Wolfgang A Wall
Journal:  PLoS One       Date:  2020-02-05       Impact factor: 3.240

3.  A poroelastic immersed finite element framework for modelling cardiac perfusion and fluid-structure interaction.

Authors:  Scott I Heath Richardson; Hao Gao; Jennifer Cox; Rob Janiczek; Boyce E Griffith; Colin Berry; Xiaoyu Luo
Journal:  Int J Numer Method Biomed Eng       Date:  2021-02-28       Impact factor: 2.747

  3 in total

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