Elastometry of clot phantoms via magnetomotive ultrasound-based resonant acoustic spectroscopy.
Benjamin E LevyAmy L OldenburgPublished in: Physics in medicine and biology (2022)
Objective. An ultrasound-based system capable of both imaging thrombi against a dark field and performing quantitative elastometry could allow for fast and cost-effective thrombosis diagnosis, staging, and treatment monitoring. This study investigates a contrast-enhanced approach for measuring the Young's moduli of thrombus-mimicking phantoms. Approach. Magnetomotive ultrasound (MMUS) has shown promise for lending specific contrast to thrombi by applying a temporally modulated force to magnetic nanoparticle (MNP) contrast agents and measuring resulting tissue displacements. However, quantitative elastometry has not yet been demonstrated in MMUS, largely due to difficulties inherent in measuring applied magnetic forces and MNP densities. To avoid these issues, in this work magnetomotive resonant acoustic spectroscopy (MRAS) is demonstrated for the first time in ultrasound. Main results. The resonance frequencies of gelatin thrombus-mimicking phantoms are shown to agree within one standard deviation with finite element simulations over a range of phantom sizes and Young's moduli with less than 16% error. Then, in a proof-of-concept study, the Young's moduli of three phantoms are measured using MRAS and are shown to agree with independent compression testing results. Significance. The MRAS results were sufficiently precise to differentiate between thrombus phantoms with clinically relevant Young's moduli. These findings demonstrate that MRAS has potential for thrombus staging.
Keyphrases
- contrast enhanced
- magnetic resonance imaging
- high resolution
- magnetic resonance
- diffusion weighted
- middle aged
- single molecule
- computed tomography
- contrast enhanced ultrasound
- lymph node
- ultrasound guided
- finite element
- energy transfer
- diffusion weighted imaging
- pet ct
- pulmonary embolism
- mass spectrometry
- combination therapy
- liquid chromatography
- iron oxide