Yue Jin Long, Tardieu Marion, Julea Felicia, Boucneau Tanguy, Sinkus Ralph, Pellot-Barakat Claire, Maître Xavier
Imagerie par Résonance Magnétique Médicale et Multi-Modalités, IR4M, CNRS, Univ Paris-Sud, Université Paris-Saclay, Orsay, France. Imagerie Moléculaire In Vivo, IMIV, Inserm, CEA, CNRS, Univ Paris-Sud, Université Paris-Saclay, Orsay, France.
Phys Med Biol. 2017 Nov 1;62(22):8655-8670. doi: 10.1088/1361-6560/aa9164.
Magnetic resonance elastography (MRE) is a non invasive imaging modality, which holds the promise of absolute quantification of the mechanical properties of human tissues in vivo. MRE reconstruction with algebraic inversion of the Helmholtz equation upon the curl of the shear displacement field may theoretically be flawless. However, its performances are challenged by multiple experimental parameters, especially the frequency and the amplitude of the mechanical wave, the voxel size and the signal-to-noise ratio of the MRE acquisition. A point source excitation was simulated and realistic displacement fields were analytically computed to simulate MRE data sets in an isotropic, homogeneous, linearly-elastic, and half-space infinite medium. Acquisition and reconstruction methods were challenged and the joint influence of the aforementioned parameters was studied. For a given signal-to-noise ratio, the conditions on the number of voxels per wavelength were determined for optimizing voxel-wise accuracy and precision in MRE. It was shown that, once data are acquired, the reconstruction quality could even be improved by effective interpolation or decimation so data could eventually fulfill favorable conditions for mechanical characterization of the tissue. Finally, the overall outcome, which is usually computed from the three acquired motion-encoded directions, may further be improved by appropriate averaging strategies that are based on adapted curl of shear displacement field quality-weighting.
磁共振弹性成像(MRE)是一种非侵入性成像方式,有望在体内对人体组织的力学特性进行绝对量化。基于剪切位移场旋度的亥姆霍兹方程代数反演的MRE重建理论上可能是完美的。然而,其性能受到多个实验参数的挑战,特别是机械波的频率和幅度、体素大小以及MRE采集的信噪比。模拟了点源激励,并通过解析计算得到了真实的位移场,以模拟各向同性、均匀、线性弹性和半空间无限介质中的MRE数据集。对采集和重建方法进行了挑战,并研究了上述参数的联合影响。对于给定的信噪比,确定了每波长体素数量的条件,以优化MRE中体素级的准确性和精度。结果表明,一旦采集到数据,通过有效的插值或抽取甚至可以提高重建质量,从而使数据最终满足组织力学表征的有利条件。最后,通常从三个采集的运动编码方向计算得到的总体结果,可以通过基于适应的剪切位移场旋度质量加权的适当平均策略进一步改善。