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Thermal dose control of ultrasound therapies using MR thermometry images: an in-vitro phantom study

机译:使用MR测温图像对超声疗法的热剂量控制:体外体模研究

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An MR-based thermal treatment controller that delivers a specified thermal dose to a selected target has been developed and evaluated in-vitro using a magnetic resonance (MR) compatible focused ultrasound heating system. The thermal treatment control system has a cascade structure with the main nonlinear dose controller continuously generating the reference temperature trajectory for the secondary constrained, model predictive temperature controller. The control system allows the physician to impose constraints on the maximum allowable temperature elevation at the selected normal tissue location. To reflect hardware imitations and to prevent tissue cavitation, constraint on the maximum transducer power can also be imposed. The combination of a surface coil designed for in-vitro experiments, a gradient echo sequence with k-space reduction and a 3T scanner allowed for fast (1.45s) and low noise (/spl plusmn/0.5/spl deg/C) MR temperature acquisition. The noninvasive thermal images are used during the pre-treatment heating session to characterize the spatial distribution of applied power and effective perfusion, and for the online feedback control of target thermal dose. During the in-vitro phantom experiments, the prescribed thermal dose was delivered to the target while restricting the temperature elevation at a selected normal tissue location to below a specified limit. The results demonstrate the robustness of the developed MR-based thermal dose controller in terms of target dose delivery and normal tissue safety.
机译:已经开发出了一种基于MR的热处理控制器,该控制器将指定的热剂量传递给选定的目标,并使用磁共振(MR)兼容的聚焦超声加热系统进行了体外评估。热处理控制系统具有级联结构,其中主要的非线性剂量控制器连续为次要受约束的模型预测温度控制器生成参考温度轨迹。控制系统允许医生在选定的正常组织位置对最大允许温度升高施加约束。为了反映硬件模仿并防止组织气蚀,还可以施加对最大换能器功率的限制。专为体外实验设计的表面线圈,具有减少k空间的梯度回波序列和3T扫描仪的组合,可实现快速(1.45s)和低噪声(/ spl plusmn / 0.5 / spl deg / C)MR温度获得。在治疗前的加热过程中使用非侵入式热图像来表征施加功率和有效灌注的空间分布,并用于目标热剂量的在线反馈控制。在体外体模实验期间,将规定的热剂量传送到目标,同时将选定的正常组织位置的温度升高限制在指定的极限以下。结果表明,在目标剂量输送和正常组织安全性方面,已开发的基于MR的热剂量控制器具有鲁棒性。

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