Magnetomotive Tissue Displacement Simulation Pipeline for Ultrasound Imaging

Abstract Magnetic Drug Targeting (MDT) utilizes magnetic nanoparticles (MNPs) for localized cancer therapy, but reliable monitoring of their spatial distribution remains a key challenge. Magnetomotive ultrasound (MMUS) addresses this by detecting tissue displacements induced by externally applied magnetic fields. However, interpretation of MMUS signals is difficult due to the complex interaction of magnetic forces, tissue mechanics, and ultrasound signal formation, as well as the lack of ground truth in experimental measurements. In this work, we present a simulation pipeline for MMUS displacement in ultrasound imaging. The framework models the complete signal chain, including magnetic force, tissue mechanical response, ultrasound data acquisition, and displacement estimation. It enables systematic analysis of factors influencing MMUS displacement, such as MNP distribution, tissue properties, and imaging parameters.

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Publication Details

Journal
Current Directions in Biomedical Engineering
Published
2026-10-01
DOI
https://doi.org/10.1515/cdbme-2026-0155
Primary Topic
Characterization and Applications of Magnetic Nanoparticles
Type
article
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Magnetomotive Tissue Displacement Simulation Pipeline for Ultrasound Imaging

H. Ermert, Stefan Lyer, Angelika S. Thalmayer, Christian Marinus Huber et al.
Current Directions in Biomedical Engineering
Characterization and Applications of Magnetic Nanoparticles
article

Magnetomotive Tissue Displacement Simulation Pipeline for Ultrasound Imaging

H. Ermert, Stefan Lyer, Angelika S. Thalmayer, Christian Marinus Huber, Elias Adibi, Lars Hageroth, Navab Karimian, Christian Heim, Stefan Rupitsch, Sebastian Kölbl
article en

Abstract

Abstract Magnetic Drug Targeting (MDT) utilizes magnetic nanoparticles (MNPs) for localized cancer therapy, but reliable monitoring of their spatial distribution remains a key challenge. Magnetomotive ultrasound (MMUS) addresses this by detecting tissue displacements induced by externally applied magnetic fields. However, interpretation of MMUS signals is difficult due to the complex interaction of magnetic forces, tissue mechanics, and ultrasound signal formation, as well as the lack of ground truth in experimental measurements. In this work, we present a simulation pipeline for MMUS displacement in ultrasound imaging. The framework models the complete signal chain, including magnetic force, tissue mechanical response, ultrasound data acquisition, and displacement estimation. It enables systematic analysis of factors influencing MMUS displacement, such as MNP distribution, tissue properties, and imaging parameters.

Current Directions in Biomedical EngineeringVol. 12(1)
University of Freiburg (DE), Friedrich-Alexander-Universität Erlangen-Nürnberg (DE), Universitätsklinikum Erlangen (DE)
Good health and well-being
Openalex Percentile: Top 22%
Characterization and Applications of Magnetic Nanoparticles
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