Literature DB >> 20879325

Simulation of brain mass effect with an arbitrary Lagrangian and Eulerian FEM.

Yasheng Chen1, Songbai Ji, Xunlei Wu, Hongyu An, Hongtu Zhu, Dinggang Shen, Weili Lin.   

Abstract

Estimation of intracranial stress distribution caused by mass effect is critical to the management of hemorrhagic stroke or brain tumor patients, who may suffer severe secondary brain injury from brain tissue compression. Coupling with physiological parameters that are readily available using MRI, eg, tissue perfusion, a non-invasive, quantitative and regional estimation of intracranial stress distribution could offer a better understanding of brain tissue's reaction under mass effect. A quantitative and sound measurement serving this particular purpose remains elusive due to multiple challenges associated with biomechanical modeling of the brain. One such challenge for the conventional Lagrangian frame based finite element method (LFEM) is that the mesh distortion resulted from the expansion of the mass effects can terminate the simulation prematurely before the desired pressure loading is achieved. In this work, we adopted an arbitrary Lagrangian and Eulerian FEM method (ALEF) with explicit dynamic solutions to simulate the expansion of brain mass effects caused by a pressure loading. This approach consists of three phases: 1) a Lagrangian phase to deform mesh like LFEM, 2) a mesh smoothing phase to reduce mesh distortion, and 3) an Eulerian phase to map the state variables from the old mesh to the smoothed one. In 2D simulations with simulated geometries, this approach is able to model substantially larger deformations compared to LFEM. We further applied this approach to a simulation with 3D real brain geometry to quantify the distribution of von Mises stress within the brain.

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Year:  2010        PMID: 20879325      PMCID: PMC2963568          DOI: 10.1007/978-3-642-15745-5_34

Source DB:  PubMed          Journal:  Med Image Comput Comput Assist Interv


  7 in total

1.  HAMMER: hierarchical attribute matching mechanism for elastic registration.

Authors:  Dinggang Shen; Christos Davatzikos
Journal:  IEEE Trans Med Imaging       Date:  2002-11       Impact factor: 10.048

2.  Robust nonrigid registration to capture brain shift from intraoperative MRI.

Authors:  Olivier Clatz; Hervé Delingette; Ion-Florin Talos; Alexandra J Golby; Ron Kikinis; Ferenc A Jolesz; Nicholas Ayache; Simon K Warfield
Journal:  IEEE Trans Med Imaging       Date:  2005-11       Impact factor: 10.048

3.  A robust framework for soft tissue simulations with application to modeling brain tumor mass effect in 3D MR images.

Authors:  Cosmina Hogea; George Biros; Feby Abraham; Christos Davatzikos
Journal:  Phys Med Biol       Date:  2007-11-08       Impact factor: 3.609

4.  A comparative study of biomechanical simulators in deformable registration of brain tumor images.

Authors:  Evangelia I Zacharaki; Cosmina S Hogea; George Biros; Christos Davatzikos
Journal:  IEEE Trans Biomed Eng       Date:  2008-03       Impact factor: 4.538

5.  Model-updated image guidance: initial clinical experiences with gravity-induced brain deformation.

Authors:  M I Miga; K D Paulsen; J M Lemery; S D Eisner; A Hartov; F E Kennedy; D W Roberts
Journal:  IEEE Trans Med Imaging       Date:  1999-10       Impact factor: 10.048

6.  Patient-specific model of brain deformation: application to medical image registration.

Authors:  Adam Wittek; Karol Miller; Ron Kikinis; Simon K Warfield
Journal:  J Biomech       Date:  2006-05-06       Impact factor: 2.712

7.  Mechanical properties of brain tissue in tension.

Authors:  Karol Miller; Kiyoyuki Chinzei
Journal:  J Biomech       Date:  2002-04       Impact factor: 2.712

  7 in total

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