Bammer Roland, Auer Martin, Keeling Stephen L, Augustin Michael, Stables Lara A, Prokesch Rupert W, Stollberger Rudolf, Moseley Michael E, Fazekas Franz
Department of Radiology, Lucas MRS/I Center, Stanford University, Stanford, California 94305-5488, USA.
Magn Reson Med. 2002 Jul;48(1):128-36. doi: 10.1002/mrm.10184.
SENSitivity Encoding (SENSE) greatly enhances the quality of diffusion-weighted echo-planar imaging (EPI) by reducing blurring and off-resonance artifacts. Such improvement would also be desirable for diffusion tensor imaging (DTI), but measures derived from the diffusion tensor can be extremely sensitive to any kind of image distortion. Whether DTI is feasible in combination with SENSE has not yet been explored, and is the focus of this study. Using a SENSE-reduction factor of 2, DTI scans in eight healthy volunteers were carried out with regular- and high-resolution acquisition matrices. To further improve the stability of the SENSE reconstruction, a new coil-sensitivity estimation technique based on variational calculus and the principles of matrix regularization was applied. With SENSE, maps of the trace of the diffusion tensor and of fractional anisotropy (FA) had improved spatial resolution and less geometric distortion. Overall, the geometric distortions were substantially removed and a significant resolution enhancement was achieved with almost the same scan time as regular EPI. DTI was even possible without the use of quadrature body coil (QBC) reference scans. Geometry-factor-related noise enhancement was only discernible in maps generated with higher-resolution matrices. Error boundaries for residual fluctuations in SENSE reconstructions are discussed. Our results suggest that SENSE can be combined with DTI and may present an important adjunct for future neuroimaging applications of this technique.
灵敏度编码(SENSE)通过减少模糊和失谐伪影,极大地提高了扩散加权回波平面成像(EPI)的质量。对于扩散张量成像(DTI)而言,这样的改进也是可取的,但是从扩散张量导出的测量值可能对任何类型的图像失真极其敏感。DTI与SENSE结合是否可行尚未得到探索,这也是本研究的重点。使用2的SENSE缩减因子,对8名健康志愿者进行了常规和高分辨率采集矩阵的DTI扫描。为了进一步提高SENSE重建的稳定性,应用了一种基于变分法和矩阵正则化原理的新型线圈灵敏度估计技术。使用SENSE时,扩散张量迹线图和分数各向异性(FA)图具有更高的空间分辨率和更少的几何失真。总体而言,几何失真基本消除,并且在几乎与常规EPI相同的扫描时间内实现了显著的分辨率提高。甚至在不使用正交体线圈(QBC)参考扫描的情况下也可以进行DTI。仅在使用更高分辨率矩阵生成的图中可辨别出与几何因子相关的噪声增强。讨论了SENSE重建中残余波动的误差边界。我们的结果表明,SENSE可以与DTI结合,并且可能为该技术未来的神经成像应用提供重要辅助。