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A Computational Study on Temperature Variations in MRgFUS Treatments Using PRF Thermometry Techniques and Optical Probes

机译:使用PRF测温技术和光学探针MRGFU处理温度变化的计算研究

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摘要

Structural and metabolic imaging are fundamental for diagnosis, treatment and follow-up in oncology. Beyond the well-established diagnostic imaging applications, ultrasounds are currently emerging in the clinical practice as a noninvasive technology for therapy. Indeed, the sound waves can be used to increase the temperature inside the target solid tumors, leading to apoptosis or necrosis of neoplastic tissues. The Magnetic resonance-guided focused ultrasound surgery (MRgFUS) technology represents a valid application of this ultrasound property, mainly used in oncology and neurology. In this paper; patient safety during MRgFUS treatments was investigated by a series of experiments in a tissue-mimicking phantom and performing ex vivo skin samples, to promptly identify unwanted temperature rises. The acquired MR images, used to evaluate the temperature in the treated areas, were analyzed to compare classical proton resonance frequency (PRF) shift techniques and referenceless thermometry methods to accurately assess the temperature variations. We exploited radial basis function (RBF) neural networks for referenceless thermometry and compared the results against interferometric optical fiber measurements. The experimental measurements were obtained using a set of interferometric optical fibers aimed at quantifying temperature variations directly in the sonication areas. The temperature increases during the treatment were not accurately detected by MRI-based referenceless thermometry methods, and more sensitive measurement systems, such as optical fibers, would be required. In-depth studies about these aspects are needed to monitor temperature and improve safety during MRgFUS treatments.
机译:结构和代谢成像是肿瘤学诊断,治疗和随访的基础。除了良好的诊断成像应用之外,超声波目前在临床实践中出现作为治疗的非侵入性技术。实际上,声波可用于增加目标实体肿瘤内的温度,导致肿瘤组织的细胞凋亡或坏死。磁共振引导的聚焦超声手术(MRGFUS)技术代表了这种超声属性的有效应用,主要用于肿瘤学和神经内科。在本文中;通过一系列实验在组织模仿幽灵和进行前体内皮肤样品中研究MRGFU治疗期间的患者安全性,以迅速识别不需要的温度升高。分析了用于评估处理区域中的温度的所获取的MR图像以比较经典的质子共振频率(PRF)换档技术和转印热量测量方法,以准确评估温度变化。我们利用用于转印热量的径向基函数(RBF)神经网络,并将结果与​​干涉光纤测量进行比较。使用一组干涉式光纤获得实验测量,用于直接在超声区域中定量温度变化的干涉光纤。通过基于MRI的转印热度方法,不准确地检测处理期间的温度增加,并且需要更敏感的测量系统,例如光纤。关于这些方面的深入研究是为了监测温度并在MRGFU治疗期间提高安全性。

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