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An Inverse Problem Approach to Recovery of In Vivo Nanoparticle Concentrations from Thermal Image Monitoring of MR-Guided Laser Induced Thermal Therapy

机译:从MR引导激光诱导热疗的热图像监测中恢复体内纳米粒子浓度的逆问题方法

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摘要

Quantification of local variations in the optical properties of tumor tissue introduced by the presence of gold-silica nanoparticles (NP) presents significant opportunities in monitoring and control of NP-mediated laser induced thermal therapy (LITT) procedures. Finite element methods of inverse parameter recovery constrained by a Pennes bioheat transfer model were applied to estimate the optical parameters. Magnetic resonance temperature imaging (MRTI) acquired during a NP-mediated LITT of a canine transmissible venereal tumor in brain was used in the presented statistical inverse problem formulation. The maximum likelihood (ML) value of the optical parameters illustrated a marked change in the periphery of the tumor corresponding with the expected location of nanoparticles and area of selective heating observed on MRTI. Parameter recovery information became increasingly difficult to infer in distal regions of tissue where photon fluence had been significantly attenuated. Finite element temperature predictions using the ML parameter values obtained from the solution of the inverse problem are able to reproduce the nanoparticles selective heating within 5°C of measured MRTI estimations along selected temperature profiles. Results indicate the maximum likelihood solution found is able to sufficiently reproduce the selectivity of the NP mediated laser induced heating and therefore the ML solution is likely to return useful optical parameters within the region of significant laser fluence.
机译:由金-二氧化硅纳米粒子(NP)的存在引起的肿瘤组织光学特性的局部变化的量化为监测和控制NP介导的激光诱导热疗法(LITT)程序提供了重大机遇。应用Pennes生物传热模型约束的反参数恢复的有限元方法来估计光学参数。 NP介导的脑中可传播性病的性腺肿瘤的NP介导的LITT期间获得的磁共振温度成像(MRTI)用于提出的统计逆问题公式。光学参数的最大似然(ML)值说明了肿瘤外围的明显变化,这与纳米粒子的预期位置和在MRTI上观察到的选择性加热区域相对应。在光子通量已显着衰减的组织远端区域,很难推断出参数恢复信息。使用从反问题解决方案中获得的ML参数值进行有限元温度预测,能够沿着选定的温度分布图,在测量的MRTI估计值的5°C内再现纳米粒子的选择性加热。结果表明,发现的最大似然解能够充分再现NP介导的激光诱导加热的选择性,因此ML解很可能在显着的激光通量范围内返回有用的光学参数。

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