Diffusion tensor based motion correction enables multi-parametric imaging of human placenta microstructures

Zhexian Sun, Wenjie Wu, Peinan Zhao, A. Odibo, Qing Wang, Yong Wang
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Abstract

Background: Non-invasive in vivo diffusion-weighted magnetic resonance imaging (DWI) of the human placenta allows safe imaging and accurate characterization of the microstructure of the placenta during pregnancy. However, misalignment of different diffusion-weighted images caused by the maternal and fetal motion severely compromised the accuracy of diffusion magnetic resonance imaging (MRI) quantification. In this study, we proposed a diffusion tensor-based registration method customized to correct the image misalignment in DWI and enhance the multi-parametric imaging of human placenta microstructures. Method: We developed a novel registration method based on the diffusion tensor imaging (DTI) model and Fourier-approximated Lie Algebras for Shooting (FLASHC). We extensively tested and validated our method using simulated DWI images, which were contaminated by motion and deformation of the placenta. DWI of the entire uterus was acquired in 86 different directions with bmax = 2000 s/mm2. Our method is quantitatively evaluated using the continuous dice coefficient (cDC) and fitting residue from DTI and diffusion basis spectrum imaging (DBSI). Our method enables the application of advanced and complicated diffusion analysis models and detailed cotyledon-wise quantification of human placenta microstructural features. Result: The proposed method was proven efficient in registering simulated DWI deformed by motion, with increase mean cDC (from 0.78 to 0.93) and decrease mean fitting residue (DTI from 10.95% to 9.01%, DBSI from 8.01% to 3.07%). Similar improvements were found in registering DWI from clinical patients (cDC from 0.79 to 0.86 , DTI from 34.7 to 28.2%, DBSI from 6.5 to 2.8%.). Also, DBSI derived maps showed reasonable pattern after registration. After cotyledon-wise segmentation, region regional increased cellularity ratio was found in one patient with placental cyst and infarction. Conclusion: The proposed registration method provides a robust framework for motion correction in diffusion-weighted MR images and enabled the detailed and accurate quantification of human placenta microstructures.
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基于扩散张量的运动校正实现了人类胎盘微观结构的多参数成像
背景:人类胎盘的无创体内扩散加权磁共振成像(DWI)可以安全成像并准确表征妊娠期间胎盘的微观结构。然而,由于母体和胎儿的运动引起的不同弥散加权图像的不对齐严重影响了弥散磁共振成像(MRI)量化的准确性。在本研究中,我们提出了一种定制的基于扩散张量的配准方法,以纠正DWI中的图像错位,增强人胎盘微结构的多参数成像。方法:提出了一种基于扩散张量成像(DTI)模型和傅里叶近似射击李代数(FLASHC)的配准方法。我们使用受胎盘运动和变形影响的模拟DWI图像对我们的方法进行了广泛的测试和验证。86个不同方向全子宫DWI, bmax = 2000 s/mm2。利用连续骰子系数(cDC)和DTI和扩散基谱成像(DBSI)的拟合残差对我们的方法进行了定量评价。我们的方法能够应用先进和复杂的扩散分析模型和详细的子叶定量人胎盘微观结构特征。结果:该方法对运动变形的模拟DWI进行了有效的拟合,平均cDC从0.78提高到0.93,平均拟合残差(DTI从10.95%提高到9.01%,DBSI从8.01%提高到3.07%)降低。在临床患者的DWI登记中也发现了类似的改善(cDC从0.79到0.86,DTI从34.7到28.2%,DBSI从6.5到2.8%)。同时,DBSI衍生图在配准后呈现出合理的模式。1例胎盘囊肿合并梗死患者经子叶切分后,局部细胞比例增加。结论:所提出的配准方法为扩散加权MR图像的运动校正提供了一个强大的框架,使人胎盘微结构的详细和准确量化成为可能。
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