用交变磁场(AMF)加热金属植入物的可行性。

IF 3
Varun Sadaphal, Bibin Prasad, Walker Kay, Lisa Nehring, Trung Nyugen, John Tepper, Melissa Tanner, Dustin Williams, Nicholas Ashton, David E Greenberg, Rajiv Chopra
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引用次数: 4

摘要

目的:治疗感染的骨科植入物仍然是一个主要的医学挑战,涉及长期的抗生素治疗和翻修手术,仅在美国,每年就给医疗保健系统增加了超过10亿美元的负担。金属植入物暴露在交变磁场(AMF)中产生的热量可以提供一种非侵入性的方法来靶向附着在表面的生物膜。在本研究中,我们构建了一个带有电磁线圈的AMF系统,用于靶向手术植入羊模型的金属板。方法:建立羊腿仿真模型和羊腿活体模型,制备仿组织羊腿模型。这是用来评估加热与AMF系统,并比较实验结果与数值模拟。在这些模型中进行/模拟比较AMF暴露,以确定设计、验证和验证模拟的可行性。结果:该系统产生的磁场强度高达12mT,在10-14 s内实现了65-80°C的板温。在5°C内,组织模拟模体的单次和间歇AMF暴露与数值模拟一致。在活羊金属植入体模型中也观察到实验测量和模拟之间的相似一致。模拟还预测了2-3 mm的组织损伤,使用CEM43热剂量模型,针对65°C的1小时AMF暴露,脉冲延迟2.5和5分钟。结论:本研究证实,AMF技术可以扩大规模,在大型动物模型中使用与先前体外研究相同的加热速率和峰值温度来治疗种植体。此外,数值模拟提供了AMF对金属植入物和周围组织产生的加热的准确预测,并可用于设计用于治疗具有更复杂几何形状的人体假体关节植入物的AMF线圈。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Feasibility of heating metal implants with alternating magnetic fields (AMF) in scaled up models.

Aim: Treatment of infected orthopedic implants remains a major medical challenge, involving prolonged antibiotic therapy and revision surgery, and adding a >$1 billion annual burden to the health care system in the US alone. Exposure of metallic implants to alternating magnetic fields (AMF) generates heat that can provide a noninvasive means to target biofilm adhered to the surface. In this study, an AMF system with a solenoid coil was constructed for targeting a metal plate surgically implanted in a sheep model.Methods: A tissue-mimicking phantom of the sheep leg was developed along with simulation model of phantom and the live sheep leg. This was used evaluate heating with the AMF system and to compare experimental results with numerical simulations. Comparative AMF exposures were performed/simulated in these model for feasibility of design, verification, and validation of simulations.Results: The system produced magnetic field strengths up to 12mT and achieved plate temperatures of 65-80 °C within 10-14 s. Single and intermittent AMF exposures of a tissue-mimicking phantom agreed with numerical simulations within 5 °C. Similar agreement between experimental measurements and simulations was also observed in the live sheep metal implant model. The simulations also predicted 2-3 mm of tissue damage using a CEM43 thermal dose model for 1-h AMF exposures targeting 65 °C for pulse delays of 2.5 and 5 mins.Conclusion: This study confirmed that AMF technology can be scaled up to treat implants in a large animal model with the same rates of heating and peak temperatures achieved in prior in vitro studies. Further, numerical simulations provided accurate predictions of the heating produced by AMF on metal implants and surrounding tissues, and can be used to design AMF coils for treating human prosthetic joint implants with more complex geometrical shapes.

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