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Non-invasive thermography of laser-induced hyperthermia using magnetic resonance

机译:使用磁共振的激光诱导的热疗的非侵入性热成像

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The possibility to induce selective hyperthermia in a target tissue or organ is of great interest for the treatment of cancer and other diseases. An emerging application of thermotherapy is for choroidal neovascularization, a complication of age-related macular degeneration. The therapy is currently limited because the temperature required for optimal tissue response is unknown. We report here an investigation of near infrared laser-induced heating in an ocular phantom. Magnetic resonance thermography (MRT) was used as a non-invasive method to determine the temperature distribution inside the phantom during exposure to a continuous wave diode laser at 806 nm wavelength with 1 watt maximum output. The laser beam had a quasi-Gaussian profile, with a radius of 0.8-2.4 mm at the target. High quality temperature images were obtained from temperature-dependent phase shifts in the proton resonance frequency with a resolution of 1 deg C or better, using a 2T magnet. A phantom with a layer of bovine RPE melanin of 1.5 mm thickness was used to determine the spatial resolution of the MRT measurements. Three dimensional temperature maps were also constructed showing a spatial resolution of 0.25 mm in all direction. The heat distribution depended on the laser parameters, as well as the orientation of the melanin layer with respect to the incident laser beam. The temperature profiles determined by MRT closely followed predictions of a heat diffusion model, based on the optical properties of infrared light in melanin. These results support the use of MRT to optimize laser-induced hyperthermia in a small organ such as the eye.
机译:在靶组织或器官中诱导选择性热疗的可能性对癌症和其他疾病的治疗具有很大的兴趣。热疗的新兴应用是针对脉络膜新生血管形成,是年龄相关性黄斑变性的并发症。治疗目前有限,因为最佳组织反应所需的温度是未知的。我们在此报告了在眼部幻影中进行了近红外激光诱导的加热。磁共振热成像(MRT)用作非侵入性方法,以确定在暴露于806nm波长的连续波二极管激光器期间模镜内的温度分布,其中最大输出为1瓦。激光束具有拟高斯型材,目标半径为0.8-2.4mm。使用2T磁铁,从质子共振频率中的温度依赖相移,从质子共振频率中的分辨率获得高质量的温度图像。使用具有1.5mm厚度为1.5mm厚的牛RPE黑色素的幻影来确定MRT测量的空间分辨率。还构造了三维温度图,示出了各方向0.25mm的空间分辨率。热分布依赖于激光参数,以及相对于入射激光束的黑色素层的取向。基于黑色素红外光的光学性质,由MRT确定的温度分布紧密地遵循热扩散模型的预测。这些结果支持使用MRT来优化激光诱导的热疗在诸如眼睛的小器官中。

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