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CutFEM-based MEG forward modeling improves source separability and sensitivity to quasi-radial sources: A somatosensory group study

  • Tim Erdbrügger*
  • , Malte Höltershinken
  • , Jan Ole Radecke
  • , Yvonne Buschermöhle
  • , Fabrice Wallois
  • , Sampsa Pursiainen
  • , Joachim Gross
  • , Rebekka Lencer
  • , Christian Engwer
  • , Carsten Wolters
  • *Corresponding author for this work

Research output: Contribution to journalReview Articlepeer-review

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Abstract

Source analysis of magnetoencephalography (MEG) data requires the computation of the magnetic fields induced by current sources in the brain. This so-called MEG forward problem includes an accurate estimation of the volume conduction effects in the human head. Here, we introduce the Cut finite element method (CutFEM) for the MEG forward problem. CutFEM's meshing process imposes fewer restrictions on tissue anatomy than tetrahedral meshes while being able to mesh curved geometries contrary to hexahedral meshing. To evaluate the new approach, we compare CutFEM with a boundary element method (BEM) that distinguishes three tissue compartments and a 6-compartment hexahedral FEM in an n = 19 group study of somatosensory evoked fields (SEF). The neural generators of the 20 ms post-stimulus SEF components (M20) are reconstructed using both an unregularized and a regularized inversion approach. Changing the forward model resulted in reconstruction differences of about 1 centimeter in location and considerable differences in orientation. The tested 6-compartment FEM approaches significantly increase the goodness of fit to the measured data compared with the 3-compartment BEM. They also demonstrate higher quasi-radial contributions for sources below the gyral crowns. Furthermore, CutFEM improves source separability compared with both other approaches. We conclude that head models with 6 compartments rather than 3 and the new CutFEM approach are valuable additions to MEG source reconstruction, in particular for sources that are predominantly radial.

Original languageEnglish
Article numbere26810
JournalHuman Brain Mapping
Volume45
Issue number11
DOIs
Publication statusPublished - 1 Aug 2024
Publication typeA2 Review article in a scientific journal

Keywords

  • finite element method (FEM)
  • MEG forward problem
  • quasi-radial sources
  • realistic head modeling
  • somatosensory evoked fields
  • unfitted FEM
  • volume conductor modeling

Publication forum classification

  • Publication forum level 2

ASJC Scopus subject areas

  • Anatomy
  • Radiological and Ultrasound Technology
  • Radiology Nuclear Medicine and imaging
  • Neurology
  • Clinical Neurology

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