Image Guided Interventions Laboratory, Faculty of Medicine, Radiology Department, Geneva, Switzerland.
J Mater Chem B. 2019 Feb 14;7(6):927-939. doi: 10.1039/c8tb01491d. Epub 2018 Dec 7.
The purpose of this study was to develop micron-sized droplet emulsions able to increase the heat deposition of high intensity focused ultrasound (HIFU), aiming to accelerate the tumour ablation in highly perfused organs with reduced side effects. The investigated droplets consisted of a perfluorooctyl bromide (PFOB) core coated with a biocompatible fluorinated surfactant called F-TAC. The novelty of this work relies on the use, for this application, of a high boiling point perfluorocarbon core (142 °C), combined with an in-house fluorinated surfactant to formulate the emulsion, yielding quasi-reversible strong interactions between the HIFU beam and the droplets. In order to fine-tune the emulsion size, surfactants with different hydrophobic/hydrophilic ratios were screened. Different concentrations of PFOB droplets were homogeneously embedded in two different MRI compatible materials, exhibiting either ultrasound (US) absorbing or non-absorbing properties. For the US absorbing TMM, the speed of sound at each droplet concentration was also assessed. These TMM were sonicated by 1 MHz HIFU with acoustical power of 94 W at two different duty cycles. The temperature elevation was monitored accurately by MRI proton shift resonance frequency in near real-time. The presence of sono-sensitive droplets induced a significant increase of the HIFU thermal effect that persisted under repeated sonication of the same locus. Optimal enhancement was observed at the lowest concentration tested (0.1%) with an additional temperature rise at the focal point of approximately 4 °C per applied kJ of acoustic energy corresponding to one order of magnitude augmentation of the thermal dose. Furthermore, no deformation of the heating pattern pre- or post-focal was observed.
本研究旨在开发能够增加高强度聚焦超声(HIFU)热沉积的微米级液滴乳剂,旨在减少副作用的情况下,加速高灌注器官中的肿瘤消融。所研究的液滴由全氟辛基溴(PFOB)核组成,该核涂有称为 F-TAC 的生物相容氟表面活性剂。这项工作的新颖之处在于,为了实现这一应用,使用了高沸点全氟碳核(142°C),并结合内部氟表面活性剂来配制乳液,从而在 HIFU 射束和液滴之间产生准可逆的强相互作用。为了微调乳液的大小,筛选了具有不同疏水性/亲水性比值的表面活性剂。不同浓度的 PFOB 液滴均匀嵌入两种不同的 MRI 兼容材料中,表现出超声吸收或不吸收特性。对于具有超声吸收特性的 TMM,还评估了每种液滴浓度下的声速。这些 TMM 由 1 MHz 的 HIFU 以 94 W 的声功率在两个不同的占空比下进行超声处理。通过近实时的 MRI 质子位移共振频率准确监测温度升高。存在声敏性液滴会显著增加 HIFU 的热效应,在同一焦点的重复超声处理下仍能持续存在。在测试的最低浓度(0.1%)下观察到最佳增强效果,在焦点处的额外温升约为 4°C/应用的声能 kJ,相当于热剂量增加一个数量级。此外,在焦点之前或之后未观察到加热模式的变形。