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在体内 MRI 引导的激光诱导热疗(MR-LITT)过程中进行实时自动温度调节。

Real-time automatic temperature regulation during in vivo MRI-guided laser-induced thermotherapy (MR-LITT).

机构信息

CNRS, CRMSB, UMR 5536, IHU Liryc, University of Bordeaux, Bordeaux, France.

Certis Therapeutics, Pessac, France.

出版信息

Sci Rep. 2023 Feb 25;13(1):3279. doi: 10.1038/s41598-023-29818-z.

Abstract

Precise control of tissue temperature during Laser-Induced Thermotherapy (LITT) procedures has the potential to improve the clinical efficiency and safety of such minimally invasive therapies. We present a method to automatically regulate in vivo the temperature increase during LITT using real-time rapid volumetric Magnetic Resonance thermometry (8 slices acquired every second, with an in-plane resolution of 1.4 mmx1.4 mm and a slice thickness of 3 mm) using the proton-resonance frequency (PRF) shift technique. The laser output power is adjusted every second using a feedback control algorithm (proportional-integral-derivative controller) to force maximal tissue temperature in the targeted region to follow a predefined temperature-time profile. The root-mean-square of the difference between the target temperature and the measured temperature ranged between 0.5 °C and 1.4 °C, for temperature increases between + 5 °C to + 30 °C above body temperature and a long heating duration (up to 15 min), showing excellent accuracy and stability of the method. These results were obtained on a 1.5 T clinical MRI scanner, showing a potential immediate clinical application of such a temperature controller during MR-guided LITT.

摘要

在激光诱导热疗(LITT)过程中精确控制组织温度有潜力提高这种微创治疗的临床效率和安全性。我们提出了一种使用实时快速容积磁共振测温(每秒 8 层,平面分辨率为 1.4mmx1.4mm,层厚为 3mm)和质子共振频率(PRF)偏移技术自动调节 LITT 过程中体内温度升高的方法。使用反馈控制算法(比例-积分-微分控制器)每秒调整激光输出功率,以迫使目标区域内的最大组织温度遵循预设的温度-时间曲线。在目标温度和测量温度之间的差异的均方根(RMS)范围在 0.5°C 到 1.4°C 之间,用于在体温以上增加 5°C 到 30°C 之间的温度升高和较长的加热持续时间(长达 15 分钟),显示出该方法的出色准确性和稳定性。这些结果是在 1.5T 临床 MRI 扫描仪上获得的,表明在 MR 引导的 LITT 期间,这种温度控制器有潜在的即时临床应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/19b1/9968334/08b829355a90/41598_2023_29818_Fig1_HTML.jpg

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