An in silico testbed for fast and accurate MR labeling of orthopedic implants

Author:

Noetscher Gregory M1ORCID,Serano Peter J2,Horner Marc2ORCID,Prokop Alexander3,Hanson Jonathan4,Fujimoto Kyoko5,Brown James6,Nazarian Ara7,Ackerman Jerome89ORCID,Makaroff Sergey N19

Affiliation:

1. Electrical & Computer Eng. Dept, Worcester Polytechnic Institute

2. Ansys

3. Dassault Systèmes Deutschland GmbH

4. Neva Electromagnetics, LLC

5. GE HealthCare

6. Micro Systems Enigineering, Inc, an affiliate of Biotronik

7. Musculoskeletal Translational Innovation Initiative, Department of Orthopedic Surgery, Beth Israel Deaconess Medical Center and Harvard Medical School

8. Harvard Medical School

9. Athinoula A Martinos Center for Biomed. Imaging, Massachusetts General Hospital

Abstract

One limitation on the ability to monitor health in older adults using magnetic resonance (MR) imaging is the presence of implants, where the prevalence of implantable devices (orthopedic, cardiac, neuromodulation) increases in the population, as does the pervasiveness of conditions requiring MRI studies for diagnosis (musculoskeletal diseases, infections, or cancer). The present study describes a novel multiphysics implant modeling testbed using the following approaches with two examples: (1) an in silico human model based on the widely available Visible Human Project (VHP) cryo-section dataset; (2) a finite element method (FEM) modeling software workbench from Ansys (Electronics Desktop/Mechanical) to model MR radio frequency (RF) coils and the temperature rise modeling in heterogeneous media. The in silico VHP-Female model (250 parts with an additional 40 components specifically characterizing embedded implants and resultant surrounding tissues) corresponds to a 60-year-old female with a body mass index of 36. The testbed includes the FEM-compatible in silico human model, an implant embedding procedure, a generic parameterizable MRI RF birdcage two-port coil model, a workflow for computing heat sources on the implant surface and in adjacent tissues, and a thermal FEM solver directly linked to the MR coil simulator to determine implant heating based on an MR imaging study protocol. The primary target is MR labeling of large orthopedic implants. The testbed has very recently been approved by the US Food and Drug Administration (FDA) as a medical device development tool for 1.5 T orthopedic implant examinations.

Funder

National Institutes of Health

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

Reference44 articles.

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3. ACR Manual on MR Safety;American College of Radiology,2020

4. Heating of hip joint implants in MRI: The combined effect of RF and switched-gradient fields;Arduino;Magnetic Resonance in Medicine,2021

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