与核磁共振成像兼容的腹部模型,用于在进行针式介入治疗时模拟呼吸触发的器官运动。

IF 2.3 3区 医学 Q3 ENGINEERING, BIOMEDICAL International Journal of Computer Assisted Radiology and Surgery Pub Date : 2024-12-01 Epub Date: 2024-06-05 DOI:10.1007/s11548-024-03188-x
Ivan Vogt, Katja Engel, Anton Schlünz, Robert Kowal, Bennet Hensen, Marcel Gutberlet, Frank Wacker, Georg Rose
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引用次数: 0

摘要

目的:为了证明医疗器械的功能性和安全性,通常需要进行体内研究。临床试验既昂贵又复杂,增加了对动物试验的伦理审查。具有多功能的拟人化模型可以克服这些问题,用于医学教育或有效开发图像引导干预期间的辅助系统(如机器人、导航/注册算法)。在这项工作中,我们展示了一个与核磁共振成像兼容且可定制的运动模型,以模拟呼吸触发的器官运动以及人体解剖学:为此,聚乙烯醇冷冻凝胶(PVA-C)是不同尺寸腹部模型体(APB)的肌肉、肝脏、肾脏、肿瘤和剩余腹部组织的基础,具有模拟人体组织的各种特性。此外,还3D打印了半柔性肋骨。运动单元(MU)配有电磁屏蔽步进电机和机械延伸装置,可模拟呼吸模式来移动 APB:结果:APB 的每个区块都符合人体组织的弛豫时间、介电强度和弹性。它具有防霉性能,针刺后可重新密封。在长期储存过程中,APB 的重量减少了 2.3%,弛豫时间变化了 9.3%,弹性变化了 79%。MU 能够在不降低核磁共振成像质量的情况下适当地模拟器官位移:本研究提出了一种新型模块化、低成本的基于 PVA-C 的 APB,用于模拟器官的基本运动。除了进一步的器官运动分析,还需要对 APB 的化学成分进行优化,以确保逼真的运动模拟和可重复的长期使用。该模型可为未来的医生提供多种多样的培训环境,并可有效研发医疗设备,从而减少体内实验。
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MRI-compatible abdomen phantom to mimic respiratory-triggered organ movement while performing needle-based interventions.

Purpose: In vivo studies are often required to prove the functionality and safety of medical devices. Clinical trials are costly and complex, adding to ethical scrutiny of animal testing. Anthropomorphic phantoms with versatile functionalities can overcome these issues with regard to medical education or an effective development of assistance systems during image-guided interventions (e.g., robotics, navigation/registration algorithms). In this work, an MRI-compatible and customizable motion phantom is presented to mimic respiratory-triggered organ movement as well as human anatomy.

Methods: For this purpose, polyvinyl alcohol cryogel (PVA-C) was the foundation for muscles, liver, kidneys, tumors, and remaining abdominal tissue in different sizes of the abdominal phantom body (APB) with the ability to mimic human tissue in various properties. In addition, a semi-flexible rib cage was 3D-printed. The motion unit (MU) with an electromagnetically shielded stepper motor and mechanical extensions simulated a respiration pattern to move the APB.

Results: Each compartment of the APB complied the relaxation times, dielectricity, and elasticity of human tissue. It showed resistance against mold and provided a resealable behavior after needle punctures. During long-term storage, the APB had a weight loss of 2.3%, followed by changes to relaxation times of 9.3% and elasticity up to 79%. The MU was able to physiologically appropriately mimic the organ displacement without reducing the MRI quality.

Conclusion: This work presents a novel modularizable and low-cost PVA-C based APB to mimic fundamental organ motion. Beside a further organ motion analysis, an optimization of APB's chemical composition is needed to ensure a realistic motion simulation and reproducible long-term use. This phantom enhances diverse and varied training environments for prospective physicians as well as effective R&D of medical devices with the possibility to reduce in vivo experiments.

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来源期刊
International Journal of Computer Assisted Radiology and Surgery
International Journal of Computer Assisted Radiology and Surgery ENGINEERING, BIOMEDICAL-RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING
CiteScore
5.90
自引率
6.70%
发文量
243
审稿时长
6-12 weeks
期刊介绍: The International Journal for Computer Assisted Radiology and Surgery (IJCARS) is a peer-reviewed journal that provides a platform for closing the gap between medical and technical disciplines, and encourages interdisciplinary research and development activities in an international environment.
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