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Utilization of a hybrid finite-element based registration method to quantify heterogeneous tumor response for adaptive treatment for lung cancer patients

机译:利用基于混合有限元的配准方法量化异质性肿瘤反应以适应性治疗肺癌患者

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摘要

Tumor response to radiation treatment (RT) can be evaluated from changes in metabolic activity between two positron emission tomography (PET) images. Activity changes at individual voxels in pre-treatment PET images (PET1), however, cannot be derived until their associated PET-CT (CT1) images are appropriately registered to during-treatment PET-CT (CT2) images. This study aimed to investigate the feasibility of using deformable image registration (DIR) techniques to quantify radiation-induced metabolic changes on PET images. Five patients with non-small-cell lung cancer (NSCLC) treated with adaptive radiotherapy were considered. PET-CTs were acquired 2 weeks before RT and 18 fractions after the start of RT. DIR was performed from CT1 to CT2 using B-Spline and diffeomorphic Demons algorithms. The resultant displacements in the tumor region were then corrected using a hybrid finite element method (FEM). Bitmap masks generated from gross tumor volumes (GTVs) in PET1 were deformed using the 4 different displacement vector fields (DVFs). The conservation of total lesion glycolysis (TLG) in GTVs was used as a criterion to evaluate the quality of these registrations. The deformed masks were united to form a large mask which was then partitioned into multiple layers from center to border. The averages of SUV changes over all the layers were 1.0 ± 1.3, 1.0 ± 1.2, 0.8 ± 1.3, 1.1 ± 1.5 for the B-Spline, B-Spline+FEM, Demons and Demons+FEM algorithms, respectively. TLG changes before and after mapping using B-Spline, Demons, hybrid-B-Spline, and hybrid-Demons registrations were 20.2%, 28.3%, 8.7%, and 2.2% on average, respectively. Compared to image intensity-based DIR algorithms, the hybrid FEM modeling technique is better in preserving TLG and could be useful for evaluation of tumor response for patients with regressing tumors.
机译:可以根据两个正电子发射断层扫描(PET)图像之间的代谢活性变化来评估肿瘤对放射治疗(RT)的反应。但是,只有在将其相关的PET-CT(CT1)图像正确地注册到治​​疗中的PET-CT(CT2)图像中之前,才能得出预处理PET图像(PET1)中各个体素的活性变化。这项研究旨在调查使用可变形图像配准(DIR)技术来量化PET图像上辐射引起的代谢变化的可行性。考虑了5例接受自适应放射治疗的非小细胞肺癌(NSCLC)患者。在放疗前2周和放疗开始后18分采集PET-CT。使用B样条和变态恶魔算法从CT1到CT2进行DIR。然后使用混合有限元方法(FEM)校正肿瘤区域中产生的位移。从PET1中的总肿瘤体积(GTV)生成的位图蒙版使用4个不同的位移矢量场(DVF)进行了变形。 GTV中总病变糖酵解(TLG)的保留被用作评估这些注册质量的标准。将变形的蒙版组合在一起以形成一个大的蒙版,然后从中心到边界将其分成多层。对于B样条,B样条+ FEM,Demons和Demons + FEM算法,所有图层上SUV变化的平均值分别为1.0±1.3、1.0±1.2、0.8±1.3、1.1±1.5。使用B样条,恶魔,杂种B样条和杂种恶魔进行映射之前和之后的TLG变化分别平均为20.2%,28.3%,8.7%和2.2%。与基于图像强度的DIR算法相比,混合FEM建模技术在保留TLG方面更好,对于评估肿瘤消退的患者的肿瘤反应可能有用。

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