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Temporal/spatial resolution improvement of in vivo DCE-MRI with compressed sensing-optimized FLASH

机译:Vivo DCE-MRI的时间/空间分辨率改进具有压缩传感的闪光灯

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摘要

Dynamic contrast-enhanced magnetic resonance imaging (DCE-MRI) provides critical information regarding tumor perfusion and permeability by injecting a T1 contrast agent, such as Gd-DTPA, and making a time-resolved measurement of signal increase. Both temporal and spatial resolutions are required to be high to achieve an accurate and reproducible estimation of tumor perfusion. However, the dynamic nature of the DCE experiment limits simultaneous improvement of temporal and spatial resolution by conventional methods. Compressed sensing (CS) has become an important tool for the acceleration of imaging times in MRI, which is achieved by enabling the reconstruction of subsampled data. Similarly, CS algorithms can be utilized to improve the temporal/spatial resolution of DCE-MRI, and several works describing retrospective simulations have demonstrated the feasibility of such improvements. In this study, the fast low angle shot sequence was modified to implement a Cartesian, CS-optimized, sub-Nyquist phase encoding acquisition/reconstruction with multiple two-dimensional slice selections and was tested on water phantoms and animal tumor models. The mean voxel-level concordance correlation coefficient for Akep values obtained from ×4 and ×8 accelerated and the fully sampled data was 0.87±0.11 and 0.83±0.11, respectively (n=6), with optimized CS parameters. In this case, the reduction of phase encoding steps made possible by CS reconstruction improved effectively the temporal/spatial resolution of DCE-MRI data using an in vivo animal tumor model (n=6) and may be useful for the investigation of accelerated acquisitions in preclinical and clinical DCE-MRI trials.
机译:动态对比度增强的磁共振成像(DCE-MRI)通过注入T1造影剂(例如GD-DTPA)提供了关于肿瘤灌注和渗透性的关键信息,并使信号增加的时间分辨测量。需要时间和空间分辨率都很高,以达到肿瘤灌注的准确和可重复的估计。然而,DCE实验的动态性质通过常规方法同时提高时间和空间分辨率。压缩传感(CS)已成为加速MRI中的成像时间的重要工具,这是通过实现对数据的重建来实现的。类似地,CS算法可以用于改善DCE-MRI的时间/空间分辨率,描述回顾性模拟的几个作品已经证明了这种改进的可行性。在这项研究中,修改了快速的低角度拍摄序列,以实现笛卡尔,CS优化的副奈奎斯特阶段编码采集/重建,具有多个二维切片选择,并在水体模和动物肿瘤模型上进行测试。从×4和×8加速和完全采样数据获得的Akep值的平均体素级相机相关系数分别为0.87±0.11和0.83±0.11,具有优化的CS参数。在这种情况下,CS重建使得可能的相位编码步骤的减少有效地改善了使用体内动物肿瘤模型(n = 6)的DCE-MRI数据的时间/空间分辨率,并且可用于调查加速的收购临床前与临床DCE-MRI试验。

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