首页> 外文期刊>Ultrasound in Medicine and Biology >Simultaneous Passive Acoustic Mapping and Magnetic Resonance Thermometry for Monitoring of Cavitation-Enhanced Tumor Ablation in Rabbits Using Focused Ultrasound and Phase-Shift Nanoemulsions
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Simultaneous Passive Acoustic Mapping and Magnetic Resonance Thermometry for Monitoring of Cavitation-Enhanced Tumor Ablation in Rabbits Using Focused Ultrasound and Phase-Shift Nanoemulsions

机译:使用聚焦超声和相移纳米乳液监测空化增强肿瘤消融兔空化增强肿瘤消融的同时无源声学测绘和磁共振测

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Thermal ablation of solid tumorsviafocused ultrasound (FUS) is a non-invasive image-guided alternative to conventional surgical resection. However, the usefulness of the technique is limited in vascularized organs because of convection of heat, resulting in long sonication times and unpredictable thermal lesion formation. Acoustic cavitation has been found to enhance heating but requires use of exogenous nuclei and sufficient acoustic monitoring. In this study, we employed phase-shift nanoemulsions (PSNEs) to promote cavitation and incorporated passive acoustic mapping (PAM) alongside conventional magnetic resonance imaging (MRI) thermometry within the bore of a clinical MRI scanner. Simultaneous PAM and MRI thermometry were performed in anin vivorabbit tumor model, with and without PSNE to promote cavitation. Vaporization and cavitation of the nanoemulsion could be detected using PAM, which led to accelerated heating, monitored with MRI thermometry. The maximum heating assessed from MRI was well correlated with the integrated acoustic emissions, illustrating cavitation-enhanced heating. Examination of tissue revealed thermal lesions that were larger in the presence of PSNE, in agreement with the thermometry data. Using fixed exposure conditions over 94 sonications in multiple animals revealed an increase in the mean amplitude of acoustic emissions and resulting temperature rise, but with significant variability between sonications, further illustrating the need for real-time monitoring. The results indicate the utility of combined PAM and MRI for monitoring of tumor ablation and provide further evidence for the ability of PSNEs to promote cavitation-enhanced lesioning.
机译:固体致瘤掺杂超声(FUS)的热烧蚀是常规手术切除的非侵入性的图像引导替代品。然而,由于热量,该技术的有用性在血管化器官中受到限制,导致长超声处理时间和不可预测的热病变形成。已经发现声学气穴来增强加热,但需要使用外源核和充分的声学监测。在该研究中,我们使用相移纳米乳液(PSNES)来促进空化和在临床MRI扫描仪的孔内旁边的常规磁共振成像(MRI)温度掺入被动声学映射(PAM)。在AninVivorabbit肿瘤模型中进行同时PAM和MRI温度,有和没有PSNE以促进空化。可以使用PAM检测纳米乳液的蒸发和空化,其导致加速加热,用MRI温度监测。从MRI评估的最大加热与集成声发射良好相关,说明空化增强的加热。检查组织的检查显示在PSNE存在下较大的热病变,同时与温度数据一致。在多种动物中超过94个超声处理的固定曝光条件揭示了声排放的平均幅度和导致温度升高的增加,但在超声波之间具有显着的可变性,进一步说明了对实时监测的需求。结果表明,组合PAM和MRI用于监测肿瘤消融的效用,并为PSNES促进空化增强的病变提供进一步证据。

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