Department of Radiology, University of Wisconsin-Madison, Madison, Wisconsin, USA.
Department of Radiology, University of California-Davis, Davis, California, USA.
Magn Reson Med. 2023 Jan;89(1):112-127. doi: 10.1002/mrm.29425. Epub 2022 Oct 5.
To improve image quality and resolution of dynamic susceptibility contrast perfusion weighted imaging (DSC-PWI) by developing acquisition and reconstruction methods exploiting the temporal regularity property of DSC-PWI signal.
A novel regularized reconstruction is proposed that recovers DSC-PWI series from interleaved segmented spiral k-space acquisition using higher order temporal smoothness (HOTS) properties of the DSC-PWI signal. The HOTS regularization is designed to tackle representational insufficiency of the standard first-order temporal regularizations for supporting higher accelerations. The higher accelerations allow for k-space coverage with shorter spiral interleaves resulting in improved acquisition point spread function, and acquisition of images at multiple TEs for more accurate DSC-PWI analysis.
The methods were evaluated in simulated and in-vivo studies. HOTS regularization provided increasingly more accurate models for DSC-PWI than the standard first-order methods with either quadratic or robust norms at the expense of increased noise. HOTS DSC-PWI optimized for noise and accuracy demonstrated significant advantages over both spiral DSC-PWI without temporal regularization and traditional echo-planar DSC-PWI, improving resolution and mitigating image artifacts associated with long readout, including blurring and geometric distortions. In context of multi-echo DSC-PWI, the novel methods allowed ∼4.3× decrease of voxel volume, providing 2× number of TEs compared to the previously published results.
Proposed HOTS reconstruction combined with dynamic spiral sampling represents a valid mechanism for improving image quality and resolution of DSC-PWI significantly beyond those available with established fast imaging techniques.
通过开发利用动态对比灌注加权成像(DSC-PWI)信号时间规律性的采集和重建方法,提高 DSC-PWI 的图像质量和分辨率。
提出了一种新的正则化重建方法,该方法利用 DSC-PWI 信号的高阶时间平滑(HOTS)特性,从交错分段螺旋 k 空间采集重建 DSC-PWI 序列。HOTS 正则化设计用于解决标准一阶时间正则化在支持更高加速时的表示不足问题。更高的加速允许使用更短的螺旋交错来覆盖 k 空间,从而改善采集点扩展函数,并采集多个 TE 以进行更准确的 DSC-PWI 分析。
该方法在模拟和体内研究中进行了评估。HOTS 正则化提供了比具有二次或鲁棒范数的标准一阶方法更准确的 DSC-PWI 模型,代价是增加了噪声。针对噪声和准确性进行优化的 HOTS DSC-PWI 显示出比没有时间正则化的螺旋 DSC-PWI 和传统的 EPI DSC-PWI 显著优势,提高了分辨率并减轻了与长读出相关的图像伪影,包括模糊和几何变形。在多回波 DSC-PWI 的情况下,与以前发表的结果相比,新方法允许体素体积减少约 4.3 倍,提供了 2 倍的 TE 数量。
所提出的 HOTS 重建与动态螺旋采样相结合,为 DSC-PWI 的图像质量和分辨率提供了显著优于现有快速成像技术的有效机制。