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用于骨科植入物快速准确磁共振标记的计算机模拟试验台

An In-Silico Testbed for Fast and Accurate MR Labeling of Orthopaedic Implants.

作者信息

Noetscher Gregory M, Serano Peter J, Horner Marc, Prokop Alexander, Hanson Jonathan, Fujimoto Kyoko, Brown James E, Nazarian Ara, Ackerman Jerome, Makaroff Sergey N

出版信息

bioRxiv. 2023 Oct 2:2023.07.16.549234. doi: 10.1101/2023.07.16.549234.

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: - an human model based on the widely available Visible Human Project (VHP) cryo-section dataset; - 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 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 (BMI) of 36. The testbed includes the FEM-compatible 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 orthopaedic implants. The testbed has very recently been approved by the US Food and Drug Administration (FDA) as a medical device development tool (MDDT) for 1.5 T orthopaedic implant examinations.

摘要

使用磁共振(MR)成像技术监测老年人健康状况的一个限制因素是体内植入物的存在。随着人口中可植入设备(骨科、心脏、神经调节)的普及率上升,以及需要进行MRI检查以辅助诊断的疾病(肌肉骨骼疾病、感染或癌症)的普遍性增加,这一问题愈发凸显。本研究描述了一种新型的多物理场植入物建模试验台,通过以下方法并结合两个示例进行说明:- 基于广泛可用的可视人项目(VHP)冷冻切片数据集构建人体模型;- 使用Ansys的有限元方法(FEM)建模软件工作台(电子桌面/机械)对MR射频(RF)线圈进行建模,并对异质介质中的温度上升进行建模。VHP女性模型(250个部分,另有40个组件专门用于表征嵌入式植入物及其周围组织)对应一名60岁、体重指数(BMI)为36的女性。该试验台包括与FEM兼容的人体模型、植入物嵌入程序、通用的可参数化MRI RF鸟笼式双端口线圈模型、用于计算植入物表面和相邻组织热源的工作流程,以及直接与MR线圈模拟器相连的热FEM求解器,以便根据MR成像研究协议确定植入物的发热情况。主要目标是对大型骨科植入物进行MR标记。该试验台最近已获得美国食品药品监督管理局(FDA)批准,作为用于1.5T骨科植入物检查的医疗器械开发工具(MDDT)。

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